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	<title>researchers &#8211; Fountain Magazine</title>
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		<title>Science Square (Issue 149)</title>
		<link>https://fountainmagazine.com/all-issues/2022/issue-149-sep-oct-2022/science-square-issue-149/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Thu, 01 Sep 2022 00:13:12 +0000</pubDate>
				<category><![CDATA[Issue 149 (Sep - Oct 2022)]]></category>
		<category><![CDATA[bacteria]]></category>
		<category><![CDATA[biofilm]]></category>
		<category><![CDATA[cell]]></category>
		<category><![CDATA[death]]></category>
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					<description><![CDATA[More Evidence that the Moon Came from the Earth Will et al. Indigenous noble gases in the Moon’s interior. Science Advances, Aug 2022. Humankind has always been fascinated with the Moon and studying it for nearly five centuries since Galileo. A recent discovery now adds new evidence to the currently favored &#8220;Giant Impact&#8221; theory which [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-7306" src="https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79.jpg" alt="Science Square (Issue 149)" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2022/09/12a-a79-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<h2>More Evidence that the Moon Came from the Earth</h2>
<p><em>Will et al. Indigenous noble gases in the Moon’s interior. Science Advances, Aug 2022.</em></p>
<p>Humankind has always been fascinated with the Moon and studying it for nearly five centuries since Galileo. A recent discovery now adds new evidence to the currently favored &#8220;Giant Impact&#8221; theory which hypothesizes that the Moon was formed by a massive collision between Earth and another Mars-sized celestial body around 4.5 billion years ago. A group of researchers examined six samples of lunar meteorites collected in Antarctica using an exceptionally sensitive mass spectrometer and found that the meteorites contained noble gases like Neon and Helium, consistent with those found in the Earth’s mantle. Researchers proposed two possible scenarios for how the noble gases became trapped in the Moon’s interior. In the first scenario, impactors got mixed with the lunar mantle during cooling of the magma oceans to solidify over few million years of the Moon’s formation. In the second scenario, the Moon has been formed from a debris field surrounding the Earth where noble gases were directly mixed into the Moon’s interior mass. Discovery of noble gases on the moon may also inform us about its water content, too. If these gases are still there, then water could also been present in the Moon’s interior. Such water resources could be an invaluable resource for future human missions. More broadly, this study suggests that a wide variety of life-forming material can survive giant impacts early in a planet’s life. We now could make more reliable models of how planets and solar systems form and even how life is originated on the Earth.</p>
<h2>Restoring cell functions after death?</h2>
<p><em>Andrijevic et al. Cellular recovery after prolonged warm ischaemia of the whole body. Nature, August 2022.</em></p>
<p>Organ transplantation is an extremely complicated medical process. There is a massive shortage of donor organs. Waiting lists are long. Even if a patient is lucky to match with a donor organ, getting that organ before it dies through cell damage has been a big challenge. A new technology may offer a solution to extend the time that donor organs survive. A group of researchers has recently developed a technology called OrganEx, which can restore cellular activity even after death. Very shortly after the death of an organism, all cells start to die and organs begin to fail. The researchers worked with one hundred pigs to see whether cellular structures could be saved, or cell damage could be reversed, when OrganEx is applied after death. OrganEx has two major components. First is a device that simulates the heart and lung function by pushing a mix of blood and a drug cocktail to the organs. Second is the drug cocktail made of 13 chemical compounds. One hour after death, the pigs were hooked up to the OrganEx machine which pumped the cocktail to the animal&#8217;s organs for six hours. The results were striking; OrganEx could restore critical cell functions after death. While this is a huge step for organ preservation, researchers still have to make more tweaks for the technology to be used in humans. Once fully developed, OrganEx is expected to keep organs outside the body for long-term or transported longer distances.</p>
<h2>Sweat-powered wearable electronic devices</h2>
<p><em>Liu et al. Microbial biofilms for electricity generation from water evaporation and power to wearables. Nature Communications, July 2022.</em></p>
<p>Researchers have developed a biofilm that sticks to the skin like a Band-Aid to harness sweat for electricity that could power wearable devices. The biofilm is made using a type of bacteria called “<em>geobacter sulfurreducens</em>” known for its ability to produce electricity. In this biofilm design, bacteria convert energy from evaporation into electricity by using the moisture on a person’s skin. Most strikingly, researchers found that the biofilm bacteria do not need to be fed because they are dead! They do not need to be alive to produce electricity. The biofilm consists of thin sheets of bacteria colonies (thickness less than 0.1 millimeter) that is sandwiched between two mesh electrodes and sealed with a soft, sticky biopolymer to enable it to grip to the skin. Sticking this biofilm on your skin is like plugging in a battery. This technology has potential to revolutionize wearable electronics by solving the major problem of power supply. Moreover, this is a real green energy-driven device made naturally by the microbes and devoid of any unsustainably produced materials and toxic waste byproducts. The current version of the biofilm can produce enough energy to power small devices such as medical sensors or personal electronics, but the researchers hope to explore larger films that can power even more sophisticated devices.</p>
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		<item>
		<title>Embryonic Stem Cells</title>
		<link>https://fountainmagazine.com/all-issues/2021/issue-139-jan-feb-2021/embryonic-stem-cells/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Fri, 01 Jan 2021 02:43:36 +0000</pubDate>
				<category><![CDATA[Issue 139 (Jan - Feb 2021)]]></category>
		<category><![CDATA[biology]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cancer]]></category>
		<category><![CDATA[cell]]></category>
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					<description><![CDATA[In 1981, scientists discovered ways to derive embryonic stem cells from early mouse embryos. Since then, they have been the subject of intense scrutiny, controversy, and advocacy. They are unique cells, which can be derived from human embryos and can be differentiated into virtually any kind of different cells. In humans, there are about 200 [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img decoding="async" class=" size-full wp-image-7023" src="https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda.jpg" alt="Embryonic Stem Cells" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2021/01/05-a-fda-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>In 1981, scientists discovered ways to derive embryonic stem cells from early mouse embryos. Since then, they have been the subject of intense scrutiny, controversy, and advocacy.</p>
<p>They are unique cells, which can be derived from human embryos and can be differentiated into virtually any kind of different cells. In humans, there are about 200 different types of cells including bone, muscle, and nerve cells, and within these cells there are about 20 different types of structures or organelles. Essentially, stem cells can be derived from human embryos, and with the right enzymes, can be stimulated. For instance, bone cells can originate from osteocyte cells, or liver tissues can come from hepatocytes. </p>
<h3>Stem cell types and research</h3>
<p>There are three types of stem cells:</p>
<ul class="uk-list uk-list-hyphen uk-list-primary">
<li>Embryonic stem cells </li>
<li>Adult stem cells</li>
<li>Induced Pluripotent Stem Cells (iPSC)</li>
</ul>
<p>Embryonic stem cells are derived from human embryos. Adult stem cells are undifferentiated cells (meaning “clean slates” with the potential to change into another cell variant) found throughout the body after development; they multiply via cell division to replenish dying cells and regenerate damaged tissues. Induced Pluripotent Stem Cells (iPSC), which were discovered in 2006, are derived from skin or blood cells that have been reprogrammed back into an embryonic-like pluripotent state that enables the development of an unlimited source of any type of human cell needed for therapeutic purposes. While these types of cells are interesting and certainly worthy of research, this article will focus on embryonic stem cells as they are consistently the most well-known and discussed type by the general public.</p>
<p>Embryonic stem cells are potent and often sought after due to their abilities to proliferate without limit and contribute to any cell type. However, with great power comes great responsibility and stem cells are no exception. Poorly processed cells have been documented to mutate into cancerous tumors that can wreak havoc upon people’s bodies. Bearing this in mind, scientists also do not believe that this should derail stem cell therapies considering that there are DNA tests to check if stem cells will turn out to be problematic or not.</p>
<p>The stem cell project is regularly a subject of ethical debate in both the academic and public sectors. Most embryonic stem cells are derived from embryos that develop from eggs that have been fertilized in vitro—in an in vitro fertilization clinic—and then donated for research purposes with the informed consent of the donors. People willingly donate their eggs for this research, and this process does not constitute child-killing since the eggs are near their zygote phase, not a whole mature embryo. Scientists obtain those types of cells from an embryo which has not yet completed its formation to develop into a human being.  Researchers then use these cells for various treatment and research purposes. It is important to stress that they are not derived from eggs fertilized in a woman’s body and that they are produced in a plastic laboratory culture via clinics in vitro.</p>
<p>Some examples of embryonic stem cells being used in research include the following:</p>
<h3>1. UCLA stem cell gene therapy cures bubble baby disease</h3>
<p>Researchers at UCLA (University of California, Los Angeles) have developed a cure for babies born with Bubble Baby Disease, a rare and life-threatening condition that can be fatal within the first year of life, by using stem cells from multiple patients and gene therapy to correct the genetic mutation of these patients.</p>
<h3>2. Asterias biotherapeutics restores some independence to those suffering from paralysis caused by spinal cord injuries</h3>
<p>Asterias Biotherapeutics spent much of 2016-2017 developing a stem cell therapy to restore upper body motor function to quadriplegic spinal cord injury victims. Through lengthy and rigorous testing in human clinical trials, the therapy was found to be safe for use in people with all patients treated reporting at least some improvements. Asterias is now expanding its clinical trials to include patients with sub-acute injuries.</p>
<h3>3. UC Irvine scientists engineer stem cells to destroy cancer</h3>
<p>In a study conducted by University of California, Irvine researchers, a stem cell-based technique was devised to find and destroy breast cancer cells that had already metastasized. The cells “feel” the stiffness of the surrounding tissues and destroy the cancer-causing cells.</p>
<p>Embryonic stem cells can remain undifferentiated when they are grown in a well taken care of culture that is under stable conditions. Problems primarily begin to arise if cells are allowed to clump together to form embryoid bodies in which they begin to differentiate, or change into more specific cell variants, spontaneously. Although spontaneous differentiation is a good indication that shows which cultures of embryonic stem cells are healthy, the process is uncontrolled and, therefore, an inefficient strategy to produce cultures of specific cell types. </p>
<p>The ability of stem cells being able to differentiate into hundreds of other types of cells continues to amaze scientists as this is no small discovery. Researchers believe that the possibilities with stem cells are near endless, especially in regard to “regenerative medicine,” the process of “replacing, engineering, or regenerating human cells, tissues, or organs to restore or establish a new function.” It is even believed that even whole organs could be synthetically grown by using them.” Additionally, stem cells have the potential to rebuild healthy tissues, help people with heart disease, diabetes, ALS, Alzheimer’s disease, liver disease, Parkinson’s disease, cancer, and many more illnesses. </p>
<p>In a stem cell transplant, embryonic stem cells are first specialized into the necessary adult cell type. Then, those mature cells replace tissue that is damaged by a disease or injury. This type of treatment could be used to:</p>
<ul class="uk-list uk-list-hyphen uk-list-primary">
<li>Replace neurons damaged by spinal cord injury, a stroke, Alzheimer’s disease, Parkinson’s disease, or other neurological problems.</li>
<li>Produce insulin that could treat people with diabetes and heart muscle cells that could repair damage after a heart attack</li>
<li>Replace virtually any tissue or organ that is injured or diseased.</li>
</ul>
<p>Sometimes scientists use stem cells as a drug. For example, it is possible to inject a stem cell into joints to reduce swelling and pain, or in order to promote the healing processes of soft tissues. Stem cell therapy is performed by injecting the patient’s own stem cells to stimulate the body to repair and replace damaged tissue in any joint or soft tissue structures – such as knees, shoulders, hips, wrists, ankles, elbows, tendons, ligaments and non-healing bone fractures.  Cellular Dynamics, a large biotechnical company, sells human heart cells called cardiomyocytes that are derived from induced pluripotent stem (IPS) cells. Pharmaceutical companies are adapting to this new and innovative trend on a day-to-day basis. Stem cells can also be used to test the quality and safety of investigational drugs by testing them on stem cells that have been transformed into tissue-specific cells. Researchers are able to monitor the side effects before exposing the drug to a patient and thus have a greater expectancy of how their body may respond to the drug. This allows us to test for cures for potentially fatal diseases in ways that would otherwise be risky or unethical.</p>
<p>With all of the aforementioned advantages, stem cells are a fairly new, but exceptionally promising, research area. For some people, it may seem unethical to use stem cells on the grounds that extracting stem cells damages the blastocyst, which is a structure formed in the early development of mammals, more specifically the sixth or the eighth day of the development of an embryo. In 2006, President Bush vetoed the Stem Cell Research Enhancement Act stating that the federal government should not support “the taking of innocent human life.” Although stem cells are very promising for science and can open new doors to many new treatments in the medical field, it looks like there are still differences of opinion on their ethical use. This is perhaps because there is need for more convincing evidence or people are not informed accurately on the details of this research area.</p>
<h3>References</h3>
<ul class="uk-list uk-list-hyphen uk-list-primary">
<li><a href="https://stemcells.nih.gov/info/Regenerative_Medicine/2006Chapter1.htm">https://stemcells.nih.gov/info/Regenerative_Medicine/2006Chapter1.htm</a></li>
<li><a href="https://www.healthline.com/health/stem-cell-research">https://www.healthline.com/health/stem-cell-research</a></li>
<li><a href="https://www.statnews.com/2017/04/26/stem-cells-cancer-mutations/">https://www.statnews.com/2017/04/26/stem-cells-cancer-mutations/</a></li>
<li><a href="https://plato.stanford.edu/entries/stem-cells/">https://plato.stanford.edu/entries/stem-cells/</a></li>
<li><a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5398703/">https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5398703/</a></li>
<li><a href="https://www.mayoclinic.org/documents/the-amazing-stem-cell/doc-20249792">https://www.mayoclinic.org/documents/the-amazing-stem-cell/doc-20249792</a></li>
<li><a href="https://www.unmc.edu/stemcells/educational-resources/history.html">https://www.unmc.edu/stemcells/educational-resources/history.html</a></li>
<li><a href="https://www.cirm.ca.gov/patients/power-stem-cells">https://www.cirm.ca.gov/patients/power-stem-cells</a></li>
<li><a href="https://www.nature.com/news/stem-cells-take-root-in-drug-development-1.10713">https://www.nature.com/news/stem-cells-take-root-in-drug-development-1.10713</a></li>
<li><a href="https://hsci.harvard.edu/examining-ethics-embryonic-stem-cell-research#:~:text=Opponents%20argue%20that%20the%20research,taking%20of%20innocent%20human%20life.%E2%80%9D">https://hsci.harvard.edu/examining-ethics-embryonic-stem-cell-research#:~:text=Opponents%20argue%20that%20the%20research,taking%20of%20innocent%20human%20life.%E2%80%9D</a></li>
</ul>
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		<title>Science Square (Issue 138)</title>
		<link>https://fountainmagazine.com/all-issues/2020/issue-138-nov-dec-2020/science-square-issue-138/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sun, 01 Nov 2020 18:22:31 +0000</pubDate>
				<category><![CDATA[Issue 138 (Nov - Dec 2020)]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[carbon]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[change]]></category>
		<category><![CDATA[climate]]></category>
		<category><![CDATA[forest]]></category>
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					<description><![CDATA[How Octopuses Are Able to Taste by Touching Giesen et al.Molecular Basis of Chemotactile Sensation in Octopus. Cell, October 2020. Octopuses have often captured human interest with the ability to use their eight suction-cup covered tentacles for touch and taste. Scientists have wondered for decades how their appendages work but very few have studied what [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img decoding="async" class=" size-full wp-image-7013" src="https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7.jpg" alt="Science Square (Issue 138)" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2020/11/16-3d7-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<h3>How Octopuses Are Able to Taste by Touching</h3>
<p><em>Giesen et al.Molecular Basis of Chemotactile Sensation in Octopus. Cell, October 2020.</em></p>
<p>Octopuses have often captured human interest with the ability to use their eight suction-cup covered tentacles for touch and taste. Scientists have wondered for decades how their appendages work but very few have studied what happens on a molecular level. In a new report, researchers got a glimpse into how the nervous system in an octopus&#8217; tentacles manage these functions. They identified a novel family of sensors in the first layer of cells inside the suction cups that have adapted to react and detect molecules that do not dissolve well in water. The chemotactile receptors on these sensory cells use those molecules to help the animal figure out what it is touching and whether or not that object is prey. This allows an octopus to distinguish between a rock versus a tasty crab. The underlying mechanism is that there are two types of sensory cells in the suckers that line their tentacles: mechanosensory cells for touch and chemosensory cells for taste.  Both taste- and touch-oriented cells are critical for helping octopuses to decide when to hunt and when to retreat. It is well known that particles on land easily travel through the air before they might be sniffed by a bear or a wolf&#8217;s nostrils. However, the process of smelling or tasting is much less clear in cephalopods that live in the ocean. Some chemicals can travel far from their underwater source and thus make it possible for some creatures to catch a smell of their prey from afar. But for chemicals that don’t move through the ocean easily, a touch-taste strategy can be useful for marine animals, including octopuses. While people tend to perceive five basic tastes – sweet, bitter, sour, salty and umami (meaty) – octopuses experience the world of taste differently. Instead, scientists found the most success by stimulating octopuses to respond to what are called terpenoid molecules, a secretion that is often released by marine invertebrates that functions as a defense or warning signal. They smell these molecules and can, in a way, smell fear in their prey.</p>
<p><img loading="lazy" decoding="async" class="pull-center size-full wp-image-7014" title="Natural Forest Regrowth May Be the Best Method to Combat Climate Change" src="https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c.jpg" alt="Natural Forest Regrowth May Be the Best Method to Combat Climate Change" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2020/11/16A-26c-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3>Natural Forest Regrowth May Be the Best Method to Combat Climate Change</h3>
<p><em>Cook-Patton et al. Mapping carbon accumulation potential from global natural forest regrowth. Nature, September 2020.</em></p>
<p>Reforestation has been considered the leading strategy in the fight to mitigate the effects of climate change with previous studies highlighting the role it can play in capturing and storing atmospheric carbon. There are many ways to incorporate trees into our landscapes, however one of the cheapest and easiest options is to allow forests to regrow on their own if conditions can permit them to. Now, a new study has mapped the potential carbon accumulation in naturally regrown forests over the next 30 years. Researchers from 18 countries brought together more than 13,000 georeferenced measurements of carbon accumulation to generate a wall-to-wall, one-kilometer-resolution map spanning 43 countries that highlights areas with the greatest carbon returns if trees were allowed to reforest naturally. The team demonstrated that natural forest regrowth can capture up to 23 percent of global carbon dioxide (CO<sup>2</sup>) emissions from the atmosphere every year. This is on top of the carbon sequestration already provided by existing forests, which absorb around 30 percent of annual CO<sup>2</sup> emissions. The biggest advantage of natural restoration of forests is that it often requires nothing more than human inaction. Nature is constantly at work doing its duty to restore forests often unseen on the edges of fields, on abandoned pastures, and wherever forests lie degraded or former forest land is abandoned. Moreover, natural forest regrowth may promote the re-establishment of local tree species that are best equipped to survive in a given location and support the many organisms that eat them or dwell amongst their branches and roots.</p>
<p>However, natural regrowth may not always be the answer. For example, at sites that are highly degraded, or seed sources are far away, actively planting trees can help to start or speed recovery while helping to establish the right species mix for current and future conditions. While planting trees can sometimes be necessary it should usually be the last option since it is one of the most expensive and often least successful methods of combating climate change. It is estimated that humanity should collectively plant about a trillion trees over the next three decades to effectively fight climate change, which averages out to about a thousand new trees planted in the ground every second and assumes that every tree survives and grows in a healthy manner. Once the cost of nurseries, soil preparation, seeding, and thinning are accounted for, it would easily cost hundreds of billions of dollars. If natural forest growth is cheaper and better then why not work to protect the existing trees and let forests to grow on their own?</p>
<h3><em style="font-size: 14px;"><img loading="lazy" decoding="async" class="pull-center size-full wp-image-7015" title="Humans are born with brains prewired to see words and letters" src="https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616.jpg" alt="Humans are born with brains prewired to see words and letters" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2020/11/16B-616-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" />Li et al. Innate connectivity patterns drive the development of the visual word form area. Scientific Reports, October 2020</em></h3>
<p>A new study suggests that humans are born with a part of the brain that is prewired to be receptive to seeing words and letters. Researchers analyzed brain fMRI scans of 40 newborns and found that the “visual word form area” (VWFA) was already connected to the language network of the brain, which is akin to the scans of 40 adults. These findings are quite surprising considering some researchers had hypothesized that the pre-reading VWFA starts out like any other part of the visual cortex that are sensitive to seeing faces, scenes, or other objects and only becomes selective to words and letters as children learn to read or at least as they learn language. However, a new study shows that even at birth, the VWFA is more functionally connected to the language network of the brain than it is to other areas. It is likely that experience with spoken and written language will strengthen connections with specific aspects of the language circuit and further differentiate this region&#8217;s function from its neighbors as a person gains literacy. The main goal of this study is to learn how the brain becomes a “reading brain” and to help understand the differences in reading behavior, which could become useful in the study of dyslexia and other developmental disorders.</p>
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		<title>How Do Ants Know Trigonometry?</title>
		<link>https://fountainmagazine.com/all-issues/2020/issue-138-nov-dec-2020/how-do-ants-know-trigonometry/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sun, 01 Nov 2020 18:03:08 +0000</pubDate>
				<category><![CDATA[Issue 138 (Nov - Dec 2020)]]></category>
		<category><![CDATA[ant]]></category>
		<category><![CDATA[ants]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[desert]]></category>
		<category><![CDATA[direction]]></category>
		<category><![CDATA[distance]]></category>
		<category><![CDATA[entomology]]></category>
		<category><![CDATA[find]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[home]]></category>
		<category><![CDATA[hypothesis]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[nest]]></category>
		<category><![CDATA[nests]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[return]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[scientists]]></category>
		<category><![CDATA[shortest]]></category>
		<category><![CDATA[sky]]></category>
		<category><![CDATA[steps]]></category>
		<category><![CDATA[sun]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2020/issue-138-nov-dec-2020/how-do-ants-know-trigonometry/</guid>

					<description><![CDATA[Think of yourself as a desert ant. You leave your nest to search for food early in the morning in the deserts of Tunisia, except you do not know where to find food. You, therefore, walk randomly in the desert in a circuitous outward path from your nest until you find food. If you would [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-7002" src="https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f.jpg" alt="How Do Ants Know Trigonometry?" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2020/11/12-c8f-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<p>Think of yourself as a desert ant. You leave your nest to search for food early in the morning in the deserts of Tunisia, except you do not know where to find food. You, therefore, walk randomly in the desert in a circuitous outward path from your nest until you find food. If you would find food, how do you get it back to your home? How do you go back without having left for yourself any traces or signs in the wasteland, without knowing where you located, and most importantly, without ending up stranded in the scorching heat of the desert? Could you accomplish coming back each day with food? Well, desert ants can.</p>
<p><span id="more-5675"></span></p>
<p>To find out how ants can do this, scientists observed their behavior, and surprisingly they have found that ants did not follow back on the same trail they randomly took after they left their nests. Instead, ants took a direct route as if they already knew where the nest exactly located. How do these ants find the closest way and shortest distance to their nest from their current locations? Former studies had found that red and forest ants secrete a chemical substance to mark their paths. They leave a trail of chemical scents or visual traces behind them—like leaving a trail of breadcrumbs to help you find your way home. However, the structure of desert sands and conditions are not consonant with containing chemicals that will carry an odor or leave visual cues. Even if such markings have made, it is hard to guarantee that they will remain intact long enough considering the harsh conditions of the desert. As in Hansel and Gretel fairy tale kids who could not return home for the breadcrumbs they had left on the trail eaten by birds. Therefore, these desert ants must be equipped with another cognitive mechanism so that they can return to their nests before succumbing to the midday heat.  </p>
<p>Black desert ants (<em>Cataglyphis fortis</em>) emerge from their nests in the heat of desert sand, which rises to 70 degrees with the rise of the morning sun, to search for the remains of other insects that were not as heat resistant as they are. They can only survive for one hour on the hot sand and under the blazing sun, which means that within an hour, they must find their food and bring it back home without getting lost. The journey is quite arduous and dangerous each day. If the slightest confusion occurs and they are not able to return to their nest in time, then it could cost them their lives.</p>
<p>Scientists conducted a series of research in the scorching deserts of Tunisia to find out how desert ants take their food to their nests in the shortest route possible. Researchers first determined an anthill and plotted the terrain around it to set up a coordinate plane. They observed that the ants left their nests very early in the morning to begin their daily search for food, and many of them eventually found grubs that had been planted by the scientists. However, researchers moved the ants to locations that they had not previously been to after the ant began carrying the food back to their nests. The attempt was to understand whether there was a “sign placement system” within the ants. This system would encourage the ant to find its last known location, in this instance where it had picked up, then find its way back home. However, the ant instead began heading directly to its nest. It was as if the ant determined its position concerning its nest and set off for it immediately. This experiment was repeated on many ants numerous times and with the same consistent results. The ants, as soon as they had placed on the ground, moved to the nest relative to there. With a wondrous intrinsic coding of some neurons in their nervous systems, they traveled the distance between their new location and the nest in the shortest way possible. In addition to this, the margin of error was very nominal; they found their nests with a ten percent error in the average distance of 500-meters and with an error of only two degrees in angle. Additionally, a fascinating discovery revealed that the ants could calculate errors in their navigation systems. As they approach their destination, they would make adjustments if they need to by moving back and forth in parallel lines to reach the nest with minimum error. </p>
<p>Scientists determined that desert ants have about a thousand lenses in their compound eyes (remember that a human eye has only one lens) and 80 lenses in each of their eyes that can detect polarized light that comes from different points in the sky. Polarized light occurs when sunlight enters the atmosphere of Earth, hits air molecules and other particles, and then scatters in all directions. This dispersion leads to polarization, and the light that starts to vibrate in many planes begins to vibrate in only one plane. Therefore, the strongest of them is a distinct polarization that always makes a 90-degree angle towards the sun. The lens system in the eyes of desert ants uses this polarization to form a kind of Sky Map. These ants will occasionally stop and robotically move their heads while returning to their nest. This brief period allows the ants to make this sky map by surveying the sky and making a mental note of its layout. Researchers believe that ants can then calculate the direction that they need to travel to return to their nest. They repeat this movement along the way to continually update their sky maps. If they cannot find their home, then they utilize a patterned search method with a set of circular motions. It means that each ant knows how far it is from their nest at every point of their journey.</p>
<p>Then, how do ants find their direction to the nest? Perhaps they were guided by the position of the sun in the sky is. To test this hypothesis, researchers placed a set of mirrors to make ants perceive the sun in a different state than where it ordinarily would be. It observed that the ants changed their directions according to the new state of the sun. However, this finding raised another question; researchers wondered how the time of day would affect the ants since the sun moves across the sky during the day. However, this finding raised another question; researchers wondered how the time of day would affect the ants since the sun moves across the sky during the day.</p>
<p>In another part of the experiment, the researchers caught the ants after they found the bait, closed a box over them, and kept them inside the box for several hours so that they could not see the sun and its movements. It expected that the ants would have trouble finding their way back after they were released since a long time had passed, and the sun was in a drastically different position in the sky. However, they once again returned home by using the shortest distance possible. It understood that the desert ants were aware that time was passing even though they could not see the sun.</p>
<p>We now understand that ants determine their direction home by using the sun, but we still do not know how they figure out the distance they must travel to return to their nest. Researchers have developed three hypotheses to explore this phenomenon. The first hypothesis was the energy hypothesis. According to this hypothesis, the ants were able to know how much energy they needed on the way back by calculating it they had spent until they reached their food. The depletion of their energy meant the end of their journey. An ant loaded with extra weights to test this hypothesis as soon as it reached its food. The scientists thought that if their body weight increased, then they would not be able to strike reach the nest since they would spend more energy on the return trip. However, in this case, it did not affect the ants, and they returned home in the shortest way possible regardless of their weight.</p>
<p>The second hypothesis was the optical-flow hypothesis. In this hypothesis, it believed that the ants had visual memory, and this was how they remembered the way back. To prove this, scientists prevented the ants from seeing their surroundings by blindfolding the ants when they found their food source. However, the blindfold did not prevent the ants from obtaining the shortest distance back home. As a follow-up to this experiment, the researchers placed an extensive television screen in front of the ants showing an endless desert on the television screen to make the ants feel as if they had crossed the entire desert in this simulation. They used various types of simulations, but the result did not change; the ants found their way. </p>
<p>The last test involved the pedometer hypothesis. It surmised that ants could be counting their steps to determine how far they had traveled. To test whether they were doing so, researchers attached stilts made of hair strands to the legs of one group of ants after they found the food. As their legs now extended, they could move with longer scale steps. Another group of ants had their legs cut below the knee, thus shortened to increase the number of steps needed to walk the required distance back. They then observed the return journey of both groups of ants. The results were astounding; the ants with shorter legs had concluded their course before reaching the nest, while the ants with longer legs ended up passing the nest. Thus, it understood that the ants counted their steps according to the distance they traveled.</p>
<p>The findings reveal that the ants are created with an internal system that keeps track of the steps they take and re-calibrates itself on the way back. People make these complex calculations with measuring instruments and by knowing the laws of trigonometry. However, these small creatures find their way directly back without using any tools or computer applications. They do not use their perception to find direction, and they do not use any other directional methods because they all remember direction and distance as they move forward. If you look at this situation, what would be your simplest explanation? You can only have one definition: These little creatures can measure distances and angles precisely by applying mathematical calculations and trigonometry within their conditions. Since the first day of their existence, these creatures show only a few of the shreds of evidence of the divine power created them out of nothing with wondrous systems and superior abilities in their bodies.</p>
<blockquote>
<p>I have put my trust in God, my Lord, and your Lord. No living creature is there, but He holds it by its forelock and keeps it under His complete control. Undoubtedly, my Lord is on a straight path (He governs all that exists and carries out His decrees rightly and with absolute justice). (Surah Hud, 56)</p>
</blockquote>
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		<title>Science Square (Issue 131)</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-131-sep-oct-2019/science-square-issue-131/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sun, 01 Sep 2019 21:48:52 +0000</pubDate>
				<category><![CDATA[Issue 131 (Sep - Oct 2019)]]></category>
		<category><![CDATA[algorithm]]></category>
		<category><![CDATA[amputee]]></category>
		<category><![CDATA[attachment]]></category>
		<category><![CDATA[bond]]></category>
		<category><![CDATA[caregiver]]></category>
		<category><![CDATA[cats]]></category>
		<category><![CDATA[control]]></category>
		<category><![CDATA[electricity]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[finger]]></category>
		<category><![CDATA[hand]]></category>
		<category><![CDATA[heat]]></category>
		<category><![CDATA[humans]]></category>
		<category><![CDATA[magnetic]]></category>
		<category><![CDATA[movements]]></category>
		<category><![CDATA[object]]></category>
		<category><![CDATA[prosthetic]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[robotic]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[study]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2019/issue-131-sep-oct-2019/science-square-issue-131/</guid>

					<description><![CDATA[Smart prosthetic hand combines both human and robot control Zhuang et al. Shared human–robot proportional control of a dexterous myoelectric prosthesis. Nature Machine Intelligence, September 2019. Holding an object in your hand might seem easy, but it’s actually a very complicated and challenging task; if, for instance, an object starts to slip, you typically have [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-6768" src="https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b.jpg" alt="Science Square (Issue 131)" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/09/12-d7b-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3>Smart prosthetic hand combines both human and robot control</h3>
<p><u>Zhuang et al. Shared human–robot proportional control of a dexterous myoelectric prosthesis. Nature Machine Intelligence, September 2019.</u></p>
<p>Holding an object in your hand might seem easy, but it’s actually a very complicated and challenging task; if, for instance, an object starts to slip, you typically have a couple of milliseconds to react. Scientists have been trying new approaches for improved control of robotic hands, particularly for use by amputees. A recent technology was able to combine individual finger control and automation for improved grasping and manipulation by successfully merging the fields of neuroengineering and robotics. This interdisciplinary approach was tested on three amputees and seven non-amputee subjects. The neuroengineers achieved the intended finger movement from muscular activity on the amputee&#8217;s stump, allowing for individual finger control of a prosthetic hand, which had never been done before. The robotics team enabled the robotic hand to take hold of objects and maintain contact with them for robust grasping. The amputee first performed a series of hand movements in order to train the algorithm through a machine learning paradigm. This taught the algorithm to decode user intention and translate it into finger movements of the prosthetic hand. Concurrently, sensors placed on the amputee&#8217;s stump detected muscular activity, which trained the algorithm to learn which hand movements corresponded to which patterns of muscular activity. Once the user&#8217;s intended finger movements were acquired, this information could then be used to control individual fingers on the prosthetic hand. When the user tried to grasp an object, the robotic automation initiated. The algorithm told the prosthetic hand to close its fingers when an object was in contact with sensors on the hand’s surface. This automatic grasping was designed to infer the shape of objects and grasp them based on tactile information alone, without any help of visual signals. The robotic hand has the ability to react within 400 milliseconds, and it is equipped with pressure sensors all along the fingers: it can react and stabilize the object before the brain can actually perceive that the object is slipping. While this promising technology can be used in in several neuro-prosthetic applications such as bionic hand prostheses and brain-to-machine interfaces, there are still many challenges remaining to implement this technology in a commercially available prosthetic hand for amputees. It is currently being tested and improved.</p>
<p><img loading="lazy" decoding="async" class=" size-full wp-image-6769" src="https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead.jpg" alt="" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/09/13-ead-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3>Cats securely bond with people, too</h3>
<p><u>Vitale et al. Attachment bonds between domestic cats and humans. Current Biology, September 2019.</u></p>
<p>Dogs have long been regarded as man’s best friend. They’re sociable, faithful, and obedient. Cats, on the other hand, are often described as more aloof, mysterious, and independent. But a new study suggests that cats actually bond with their owners in similar ways to how humans and dogs bond with companions. The most established way to study human attachment behavior is to observe an infant&#8217;s response to a reunion with their caregiver following a brief absence in a novel environment. When a caregiver returns, secure infants quickly return to relaxed exploration while insecure individuals engage in excessive clinging or avoidance behavior. These tests had been previously run with humans, primates, and dogs; researchers decided to run the same test with cats. 79 kittens and 38 adult cats and their caregivers were recruited. During the test, an adult cat or kitten spent two minutes in a novel room with their caregiver followed by two minutes alone. Then, they had a two-minute reunion. The cats&#8217; responses to seeing their owners again were classified into attachment styles. The results show that cats bond in a way that&#8217;s surprisingly similar to infants. In humans, 65% of infants are securely attached to their caregiver and domestic cats and kittens mirrored this, as about 65% of them securely bonded to their people. After the first round of tests, the researchers enrolled half the kittens used in the study in a training and socialization course. The other half served as a control group. Researchers then found the same results, suggesting the training did not have an effect on kittens’ attachment behavior toward their owners. This indicates that once a cat forms a bond, it seems to remain stable over time. This social flexibility may have helped facilitate the success of the species in human homes. It is still not clear what the factors are that shape the caretaker relationship, but it’s likely a miraculous complex mix of genetics, personality, and experience.</p>
<p><img loading="lazy" decoding="async" class=" size-full wp-image-6770" src="https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f.jpg" alt="" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/09/14-58f-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3>An efficient and green way to convert heat into electricity</h3>
<p><u>Zheng et al. Paramagnon drag in high thermoelectric figure of merit Li-doped MnTe. Science Advances, September 2019.</u></p>
<p>A recent discovery could help scientists to develop more efficient ways to generate electricity from heat that would have been otherwise wasted, such as heat coming from car exhaust, industrial processes, and interplanetary space probes. In principle, magnetic fields can be used to generate electricity. If we move a magnet through a coil or wire, the magnet pushes and pulls electrons that create an electrical current. Magnets themselves don’t have energy, but they can control energy currents through the created magnetic field. The main problem with magnets is that when a magnet is heated up, it loses most of its magnetic properties and becomes a so-called paramagnet. Until this discovery, scientists believed that paramagnets couldn’t be used for generating electricity. In the new study, researchers found a way of designing thermoelectric semiconductors that can convert heat to electricity. The tiny particles in paramagnets, so called paramagnons, ended up producing enough spin to push an electron, for only a billionth of a millionth of a second – apparently long enough to make paramagnets viable energy-harvesters. This breakthrough in the conventional understanding of magnetic properties could lead to more research into how magnets and energy interact to potentially facilitate electricity production from heat that is otherwise wasted and oftentimes harmful to the environment.</p>
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		<title>Science Square (Issue 130)</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-130-july-aug-2019/science-square-issue-130/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Mon, 01 Jul 2019 23:58:04 +0000</pubDate>
				<category><![CDATA[Issue 130 (July - Aug 2019)]]></category>
		<category><![CDATA[2019]]></category>
		<category><![CDATA[average]]></category>
		<category><![CDATA[behavior]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[climate]]></category>
		<category><![CDATA[coli]]></category>
		<category><![CDATA[delivery]]></category>
		<category><![CDATA[device]]></category>
		<category><![CDATA[drug]]></category>
		<category><![CDATA[global]]></category>
		<category><![CDATA[infection]]></category>
		<category><![CDATA[large]]></category>
		<category><![CDATA[levels]]></category>
		<category><![CDATA[light]]></category>
		<category><![CDATA[oxygen]]></category>
		<category><![CDATA[pathogens]]></category>
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					<description><![CDATA[The hottest month on record for the planet Global Climate Report. NOAA National Centers for Environmental Information (http://www.ncdc.noaa.gov). July 2019. It’s summer, and it is hot out there; but if it feels like record-breaking temperatures are becoming more common globally, they are. The National Oceanic and Atmospheric Administration and European Copernicus Climate Change Service announced [&#8230;]]]></description>
										<content:encoded><![CDATA[<h3>The hottest month on record for the planet</h3>
<p><u>Global Climate Report. NOAA National Centers for Environmental Information (http://www.ncdc.noaa.gov). July 2019.</u></p>
<p>It’s summer, and it <em>is</em> hot out there; but if it feels like record-breaking temperatures are becoming more common globally, they are. The National Oceanic and Atmospheric Administration and European Copernicus Climate Change Service announced that July 2019 was the hottest month across the globe ever measured since measurements began, in 1880. Global temperatures averaged 16.73°C in July, which is 0.95 °C higher than the 20th-century average of 15.78°C . Average Antarctic sea-ice coverage was 8.5% below the 1981-2010 average. And sea ice coverage was 10.5% below the overall average, which is based on records beginning in 1979. The scientists also released geographical data, showing that the regions where temperatures varied furthest from averages, were Alaska, Central Europe, Northern and Southwestern parts of Asia, and certain regions in Africa and Australia. These findings corroborate scientific predictions regarding the effects of man-made climate change. Human activities, primarily from burning fossil fuels, emit carbon dioxide and other greenhouse gases that trap heat in the atmosphere. Increasing greenhouse gas emissions are associated with warmer global surface temperatures. The planet’s 10 hottest years on record have all fallen in the past two decades. Scientists and policymakers around the globe are also feeling this heat.</p>
<p>Unless significant measures to curb greenhouse gas emissions are adopted, scientists expect temperature records to keep falling. Scientists say global temperatures could increase by at least 3°C this century, which will create conditions on Earth that have not been seen in more than 2 million years. Given the notable trends in higher temperatures and natural disasters, we might be pushing the climate system toward states that we haven’t seen in our societal experience – and even in our species’ experience.</p>
<h3>Manipulation of brain circuits using smartphone-controlled device</h3>
<p><u>Qazi R et al. Wireless optofluidic brain probes for chronic neuropharmacology and photostimulation. Nature Biomedical Engineering, August 2019.</u></p>
<p>Scientists recently designed a device that can regulate brain circuits using a tiny brain implant controlled by a smartphone. This bluetooth-enabled device utilizes replaceable lego-like drug cartridges to target neurons with drugs and light. Existing methods to deliver drugs and light to the brain typically involve metal tubes and optical fibers. These tools are rigid and can substantially damage the brain’s soft tissue over time. Moreover, this bulky equipment often limits the patient’s movement because of the wired connections, making them unfit for long-term use. To achieve chronic remote-controlled drug delivery without exhaustion and evaporation of drugs, scientists invented a neural device with a replaceable drug cartridge, which could allow neuroscientists to study the same brain networks for several months without depleting the drug supply. These “plug-n-play” drug cartridges were integrated into a brain implant for mice with a soft and ultrathin probe (about the thickness of a human hair), which consisted of microfluidic channels and tiny LEDs (smaller than a grain of salt), for unlimited drug doses and light delivery. The implant is regulated via a smartphone, allowing researchers to trigger precise combinations and sequences of drug and light delivery. In animal models, these stimuli can be triggered with the target outside of the laboratory, allowing researchers to wirelessly instill changes in the animal’s brain while in its natural habitat. Using these neural devices, researchers are now able to perform fully automated animal studies where the behavior of one animal could positively or negatively affect behavior in other animals by conditional triggering of light and/or drug delivery. This device will allow researchers to better dissect the neural circuit basis of behavior and how specific neuromodulators in the brain tune behavior in various ways. In addition, the device can be utilized in complex pharmacological studies to develop potentially new therapeutics for pain, addiction, and emotional disorders.</p>
<h3>The secret weapon of E.Coli </h3>
<p><u>Melson E. at al. The sRNA DicF integrates oxygen sensing to enhance enterohemorrhagic Escherichia colivirulence via distinctive RNA control mechanisms. Proceedings of the National Academy of Sciences, June 2019.</u></p>
<p>Scientists have revealed how E. coli (Escherichia coli) bacteria seeks out the most oxygen-free parts of your colon to cause the worst infection possible. E. coli normally live in the intestines of healthy people and animals. Most varieties of E. coli are harmless or cause relatively brief diarrhea. But a few particularly nasty strains can cause cramps, diarrhea, vomiting – even kidney failure and death. Children are particularly at risk. A new study uncovers how this foodborne pathogen knows where and when to begin colonizing the colon on its way to making you sick. Bacterial pathogens typically colonize a specific tissue or organ in the host. Therefore, as part of their infection strategies, bacterial pathogens precisely time deployment of proteins and toxins to these specific colonization niches in the human host. This allows the pathogens to save energy and avoid detection by our immune systems and ultimately cause disease. The researchers in this study identified how E.Coli detects low oxygen levels in the large intestine and then produces proteins that allow it to attach to host cells and establish infection. Oxygen actually diffuses from the intestinal tissue into the gut, and there are comparably higher levels in the small intestine than the large. Remarkably, E. coli specifically waits until it has reached the-low oxygen large intestine before striking. E. coli controls this process via a small form of RNA that activates particular genes when oxygen levels are low. This is the point when the infection really gets established and the bacteria are able to begin to manufacture harmful Shiga toxins. The researchers predict that other bacterial pathogens, such as Shigella and Salmonella, likely utilize a similar control mechanism. Researchers suggest that if we can find a way to block oxygen sensing, we may be able to prevent the infection by allowing E. coli to pass harmlessly through the body.</p>
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		<title>Science Square (Issue 129)</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-1298-may-jun-2019/science-square-issue-129/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Wed, 01 May 2019 23:35:15 +0000</pubDate>
				<category><![CDATA[Issue 129 (May - Jun 2019)]]></category>
		<category><![CDATA[Artificial photosynthesis]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[ceiling]]></category>
		<category><![CDATA[co2]]></category>
		<category><![CDATA[efficient]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[fuel]]></category>
		<category><![CDATA[gut]]></category>
		<category><![CDATA[immune]]></category>
		<category><![CDATA[intestines]]></category>
		<category><![CDATA[opa]]></category>
		<category><![CDATA[oral]]></category>
		<category><![CDATA[photosynthesis]]></category>
		<category><![CDATA[process]]></category>
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		<category><![CDATA[responses]]></category>
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		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[scientists]]></category>
		<category><![CDATA[segments]]></category>
		<category><![CDATA[sense]]></category>
		<category><![CDATA[water]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2019/issue-1298-may-jun-2019/science-square-issue-129/</guid>

					<description><![CDATA[Artificial photosynthesis transforms CO2 into liquefiable fuels Yu and Jain. Plasmonic photosynthesis of C1–C3 hydrocarbons from carbon dioxide assisted by an ionic liquid. Nature Communications, May 2019. Scientists have recently established a reliable “artificial photosynthesis” paradigm to produce fuels from water, carbon dioxide, and visible light. With the help of sunlight, chemical reactions between water [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-6718" src="https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31.jpg" alt="Science Square (Issue 129)" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/05/tech1-d31-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3><strong>Artificial photosynthesis transforms CO<sub>2 </sub>into liquefiable fuels</strong></h3>
<p><u>Yu and Jain. Plasmonic photosynthesis of C1–C3 hydrocarbons from carbon dioxide assisted by an ionic liquid. Nature Communications, May 2019.</u></p>
<p>Scientists have recently established a reliable “artificial photosynthesis” paradigm to produce fuels from water, carbon dioxide, and visible light. With the help of sunlight, chemical reactions between water and CO<sub>2</sub> are catalyzed in plants to generate and store solar energy in the form of glucose. This process is called photosynthesis. In the new study, the researchers developed an artificial process that uses the same mechanisms of natural photosynthesis to convert CO<sub>2</sub> and water into liquid fuel by using electron-rich gold nanoparticles as a catalyst. Gold nanoparticles function in the same role as chlorophyll in natural photosynthesis in the absorbing of light and transferring electrons and protons to catalyze the chemical reactions between CO<sub>2</sub> and water. They are known to be efficient at absorbing light and do not break down or degrade like other metals. The energy stored in the bonds of the hydrocarbon fuel can be freed by the conventional method of combustion or by new-generation, environmentally-friendly power fuel cells, thus producing electrical current. By converting CO<sub>2 </sub>into more complex molecules like propane, green-energy technology is now one step closer to using excess CO<sub>2</sub> to store solar energy for use when the sun is not shining and in times of peak demand. While the development of this CO<sub>2</sub>-to-liquid fuel may be exciting for proponents of green-energy technology, the artificial photosynthesis process is nowhere near as efficient as it is in plants. New methods should be developed to increase the efficiency of the catalysts and downstream chemical reactions at much higher scales.</p>
<h3><strong>Brain area that watches for walls identified</strong></h3>
<p><u>Henriksson et al. Rapid Invariant Encoding of Scene Layout in Human OPA. Neuron, May 2019.</u></p>
<p>Neuroscientists have identified the part of the human brain whose duty is to help us perceive the barriers which define the navigable space around us, such as walls or ceilings, so that so we can avoid bumping into things and navigate safely through our environment. By way of vision we have an almost instant sense of where we are in space. Although this process feels effortless, it requires the coordinated activity of multiple brain regions and neurons working together to give us this sense of our surroundings. This process has remained unknown. But thanks to a new study, we are a step closer to solving the puzzle. Using cutting-edge brain-imaging technologies, researchers examined the mental responses of volunteers as they were shown images of various three-dimensional scenes. The images depicted a typical room with three walls, a ceiling, and a floor, but then were abruptly changed by the removal of a wall or a ceiling. By doing this repeatedly, the team could pinpoint how the participant’s brain encoded every scene. In the brain scans of the volunteers, one brain area called the occipital place area (OPA) clearly stood out. OPA activity represented the geometry of the scenes and activity patterns, reflected the presence or absence of each component, such as a ceiling or a wall, and projected a detailed picture of the overall configuration. Interestingly, OPA seemed to ignore the surface appearance of the various components such as colors or textures in order to focus only on the geometric patterns. The OPA managed to perform all the necessary computations needed to get a sense of a room&#8217;s layout extremely fast – in just 100 milliseconds. In the future, the research team plans to incorporate virtual reality technology to create more realistic 3D environments for participants to experience, hopefully achieving much deeper insights into how our brains process and makes sense of the visual information.</p>
<h3><strong>Gut segments are organized by function</strong></h3>
<p><u>Esterházy D. et al. Compartmentalized gut lymph node drainage dictates adaptive immune responses. Nature, April 2019.</u></p>
<p>As food enters our intestine, it goes through a windy and lengthy journey. A new study provides new insights into how our intestines maximize nutrient uptake while protecting the body from potentially dangerous invading microbes. At first glance, the intestines appear to have a uniform tissue structure. But when scientists looked at them closer, they found that our food-processing canal seems to consist of multiple compartments that pace the immune system&#8217;s reactions to the food passing through. Scientists uncovered these functional intestine segments in mice when they examined the intestinal structures called gut draining lymph nodes, which orchestrate immune responses. The researchers found that nodes in different parts of the intestines had different cell composition, and they saw different immune responses between segments when they challenged the mice with a pathogen. They observed less aggressive defenses in the first segments where nutrients are absorbed, and more forceful responses at the end, where pathogens are eliminated. Researchers plan to exploit these immunological differences between the gut segments for treating gastrointestinal disorders. For example, by targeting immune-suppressing drugs to the specific gut segment where they&#8217;ll have the most effect, it might be possible to dampen their side-effects. The spectrum of immune responses along the intestines could also be used to make new and better oral vaccines. Thus far, scientists&#8217; efforts to design oral vaccines have been hampered by the difficulty of generating a robust immune response; it is possible that the muted immune response at the beginning of the intestines might be part of the reason why oral vaccines tend to be less effective than injections. Thus, targeting the distant end of the intestine might be much more efficient way of inducing the immune response required.</p>
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		<title>Science Square (Issue 128)</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-128-mar-apr-2019/science-square-issue-128/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Fri, 01 Mar 2019 21:16:18 +0000</pubDate>
				<category><![CDATA[Issue 128 (Mar - Apr 2019)]]></category>
		<category><![CDATA[based]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[charge]]></category>
		<category><![CDATA[dna]]></category>
		<category><![CDATA[dragline]]></category>
		<category><![CDATA[electricity]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[engineered]]></category>
		<category><![CDATA[heart]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[materials]]></category>
		<category><![CDATA[printed]]></category>
		<category><![CDATA[printing]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[silicone]]></category>
		<category><![CDATA[silk]]></category>
		<category><![CDATA[small]]></category>
		<category><![CDATA[snow]]></category>
		<category><![CDATA[vessels]]></category>
		<category><![CDATA[world]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2019/issue-128-mar-apr-2019/science-square-issue-128/</guid>

					<description><![CDATA[{module Science Square (Issue 128)} First miniature human heart printed Noor N et al. 3D Printing of Personalized Thick and Perfusable Cardiac Patches and Hearts.  Advanced Science, April 2019. In a major breakthrough, researchers have &#8220;printed&#8221; the world&#8217;s first 3D vascularized engineered heart using a patient&#8217;s own cells and biological materials. This could have huge [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-6702" src="https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657.jpg" alt="" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/03/17-01-657-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<p>{module Science Square (Issue 128)}</p>
<h3>First miniature human heart printed</h3>
<p><u>Noor N et al. 3D Printing of Personalized Thick and Perfusable Cardiac Patches and Hearts.  Advanced Science, April 2019.</u></p>
<p>In a major breakthrough, researchers have &#8220;printed&#8221; the world&#8217;s first 3D vascularized engineered heart using a patient&#8217;s own cells and biological materials. This could have huge repercussions for human health: the World Health Organization said that last year, ischemic heart disease and stroke were the world&#8217;s leading cause of death for both men and women. Heart transplantation is currently the only treatment available to patients with end-stage heart failure. Given the serious shortage of heart donors, scientists have been trying to develop new “3D organ printing” approaches to regenerate the diseased heart. Past studies were only able to print simple tissues without blood vessels. The new study showed for the first time that an entire heart with cells, blood vessels, ventricles, and chambers could be successfully engineered and printed. The researchers first took a biopsy of fatty tissue from patients and separated the cellular and a-cellular materials of the tissue. While the cells were reprogrammed to become pluripotent stem cells, the extracellular matrix – a 3D network of extracellular macromolecules such as collagen and glycoproteins – were processed into a personalized hydrogel that served as the printing &#8220;ink.&#8221; After being mixed with the hydrogel, the cells were then robustly differentiated to cardiac or endothelial cells to create patient-specific, immune-compatible cardiac patches with blood vessels and, subsequently, an entire heart. The heart was 3D-printed in about three hours and was too small for humans. It was the size of a rabbit’s heart (~ 2.5 centimeters). But it is completely biocompatible and, most importantly, matches the patient, which reduces the chances of organ rejection inside the body. A human-sized heart might take a whole day to print and would require billions of cells, compared to the millions used to print these mini-hearts. While it’s not clear if a printer can produce hearts that are equal or superior to human ones, perhaps by printing patches there will be a possibility to improve or take out diseased areas in the heart and replace them with something that works. Researchers hope that maybe in 10 years, there will be organ printers in the finest hospitals around the world, and these procedures will be conducted routinely.</p>
<h3>Bacterial factories for spider silk</h3>
<p><u>Zhang F et al. Synthetic Biology for Microbial Production of Protein-based Materials, the American Chemical Society (ACS) National Meeting &amp; Exposition, Spring 2019.</u></p>
<p>Spider silk has always fascinated researchers due to its lightweight and superior strength and numerous applications in areas such as drug delivery, smart textiles, and artificial muscles. It is one of the strongest natural materials in the world. It is thinner than a human hair, but its strength is more than that of steel, pound for pound. Since farming spiders is incredibly inefficient, scientists have been trying for decades to find a way to mass produce the material from genetically modified bacteria, yeast, and even goat milk, but these efforts have always fallen short. The biggest challenge was that the genetic information for dragline silk is a long string of repeating DNA, and, in previously tested organisms, cellular machinery arbitrarily alters or chops up such DNA sequences. To circumvent this problem, researchers precisely separated the repeating DNA into bits and inserted each repeating piece separately into bacterial genome. These smaller DNA pieces produced small peptides that ended up combining in bacteria and formed a strand of silk. The researchers also added to the end of each strand a chemical tag that glued the individual fibers together. This method was able to produce 2 grams of spider silk for each liter of bacteria and the resulting material behaved exactly like dragline silk. Its tensile strength was measured at 1.03 gigapascals, about the same as for naturally produced dragline silk. The engineered silk’s toughness measured 114 megajoules per cubic meter, compared with around 100 megajoules for silk made by spiders. And the engineered silk strands could stretch 18 percent before breaking, the same as natural dragline silk. The new silk was developed in part with NASA funding for applications such as giving astronauts a means of producing tough materials while on Mars. But the substance could be used in designing stronger materials for robotic, medical, or textile applications.</p>
<h3>Electricity from falling snow</h3>
<p><u>Ahmet A et al. All printable snow-based triboelectric nanogenerator. Nano Energy, April 2019.</u></p>
<p>Researchers have designed a new device with which we can now obtain electricity from falling snow. This new energy conversion method could become a new source of electricity in the future, especially in remote areas, as it does not need batteries. Researchers called it a Snow-based TriboElectric NanoGenerator, or Snow TENG. It is inexpensive, small, thin, and flexible like a sheet of plastic. After starting a charge from static electricity, energy is generated from the exchange of electrons. Snow is already positively charged by giving up its electrons, while silicone, a rubber-like material which consists of silicon atoms and oxygen atoms, is combined with carbon, hydrogen, and other elements to be negatively charged. When the positive-charged snow falls onto the surface of the silicone, the charges interact, and the Snow TENG captures the charge, which allows it to turn snowfall into electricity. 30% of Earth’s surface is covered by snow each winter, which is also the time when solar panels, one of the most reliable renewable sources of energy, aren’t very effective. Snow accumulation reduces the amount of sunlight that reaches the solar array, which makes them unable to operate. Snow TENG could be integrated into solar panels and provide a continuous power supply, even at a time when it’s snowing. Researchers used 3D printing to design the small device. It consists of a layer of silicone and an electrode which can capture the electric charge. Given that silicone is widely used in the industry, this method could dramatically reduce the global costs of producing electricity.</p>
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		<title>Science Square (Issue 127)</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-127-jan-feb-2019/science-square-issue-127/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Tue, 01 Jan 2019 22:52:41 +0000</pubDate>
				<category><![CDATA[Issue 127 (Jan - Feb 2019)]]></category>
		<category><![CDATA[accurate]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[cool]]></category>
		<category><![CDATA[disk]]></category>
		<category><![CDATA[fabric]]></category>
		<category><![CDATA[galaxy]]></category>
		<category><![CDATA[heat]]></category>
		<category><![CDATA[high]]></category>
		<category><![CDATA[map]]></category>
		<category><![CDATA[material]]></category>
		<category><![CDATA[milky]]></category>
		<category><![CDATA[numbers]]></category>
		<category><![CDATA[people]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[speech]]></category>
		<category><![CDATA[spiral]]></category>
		<category><![CDATA[stars]]></category>
		<category><![CDATA[technology]]></category>
		<category><![CDATA[warped]]></category>
		<category><![CDATA[ways]]></category>
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					<description><![CDATA[A new Artificial Intelligence (AI) approach to translate brain waves into speech Akbari et al. Towards reconstructing intelligible speech from the human auditory cortex. Scientific Reports January, 2019. In a recent study, researchers demonstrated that brain signals from the human auditory cortex can be reconstructed into intelligible speech with a high rate of success. In [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-6677" src="https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a.jpg" alt="Science Square (Issue 127)" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/01/12-06a-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<h3><strong>A new Artificial Intelligence (AI) approach to translate brain waves into speech</strong></h3>
<p><u>Akbari et al. Towards reconstructing intelligible speech from the human auditory cortex. Scientific Reports January, 2019.</u></p>
<p>In a recent study, researchers demonstrated that brain signals from the human auditory cortex can be reconstructed into intelligible speech with a high rate of success. In the study, the brain signals from the auditory cortexes of five participants (suffering from epilepsy) were recorded while they were listening to stories and numbers being read. Researchers specifically chose epilepsy patients as they were already undergoing a clinical procedure involving the placement of electrodes into the temporal lobe of their brains. This procedure is called invasive electrocorticography. The researchers then spoke 10 numbers into the ears of the test subjects: zero to nine. Each number produced a unique response in the brain. The sound produced by the vocoder in response to those brain signals was analyzed and cleaned up by neural networks, a type of artificial intelligence that mimics the structure of neurons in the biological brain. Remarkably, the robotic translations were successfully understood by 75% of people enlisted to test the technology. These results suggest a hopeful future for the Brain-Computer Interface. In particular, this new technology has great potential at giving a voice to people who are paralyzed or severely injured. Despite the potential, the path for a practical device is still long. To go beyond simple numbers and access the thoughts that go with speaking, the researchers will have to probe a different part of the brain known as the Broca area. It is found in the frontal lobe and linked to speech production and language processing.</p>
<h3><strong>Milky Way is warped and twisted, not flat</strong></h3>
<p><u>Chen, et al. An intuitive 3D map of the Galactic warp’s precession traced by classical Cepheids. Nature Astronomy February, 2019.</u></p>
<p>Astronomers have been studying the Earth’s home galaxy, the Milky Way, for centuries in efforts to get a better understanding of its size, structure, and place in the universe. While modern instruments have provided invaluable details about our galaxy and others, a truly accurate model of our galaxy has been missing. Researchers have recently built, for the first time, an accurate 3D map of the Milky Way. We often think of spiral galaxies as a flat thin disk of stars that orbit around a central region, where billions of stars provide the massive gravitational force to hold everything together. However, a new study showed that the Milky Way’s gas disk is no longer confined to a thin plane, but is instead organized in an S-like, warped appearance. The researchers determined the Milky Way’s exact shape at high accuracy by measuring the distances to so-called Cepheid variable stars. Cepheids are young stars that can be up to 20 times as massive and 100,000 times as bright as our Sun. These high stellar masses live fast and die young, sometimes after only a few million years. They also show day-to month-long pulsations, which are observed as changes in their brightness. Combined with a Cepheid’s observed brightness, its pulsation period can be used to obtain highly reliable distances.  By using the data of 1,339 Cepheid stars as benchmarks, researchers were able to map out accurate distances between objects in the Milky Way. Interestingly, in the Milky Way’s outer regions, they found that the S-like stellar disk is warped in a progressively twisted spiral pattern. Researchers suggested that the Milky Way’s warped spiral pattern is most likely caused as a result of rotational forcing or “torques” by the massive inner disk. The further stars are from the center of the galaxy, the weaker their gravitational pull is. This new morphology is expected to provide a crucial updated map of our galaxy’s stellar motions and the origins of the Milky Way’s galaxy.</p>
<p> </p>
<h3><strong>Smart fabric self-cools or self-insulates depending on conditions</strong></h3>
<p><u>Zhang et al. Dynamic gating of infrared radiation in a textile. Science, February 2019</u></p>
<p>Decades of innovation in fabrics have yielded high-tech materials that react to hot and cold conditions, allowing them to keep marathon runners cool or alpine hikers warm. However, there was never a material that could change the insulating properties of fabric in response to the environment. A recently developed fabric is the first to automatically warm wearers up or cool them down as needed. Infrared radiation is the primary way the body releases heat and is the focus of this new technology. When the condition is warm or moist, like when a body sweats, the fabric allows the infrared radiations to pass through. Conversely, in cool and dry conditions, the fabric traps the surrounding heat that escapes. The fibers are made of two different synthetic materials coated in carbon nanotubes – one absorbs water, and the other repels it. When the material gets hot and wet during sweating, the strands twist and warp. This distortion brings the strands of yarn closer together, which opens the pores in the fabric to allow heat to escape. When a wearer is too cool, this mechanism is blocked, trapping heat close to the skin. The reaction takes place almost instantly. The garment cools people down before they realize that they are getting hot. Athletes perhaps will be the first people to wear clothes made from the material, but it could be useful for infants, people with disabilities, and the elderly. Researchers say it could be in production within months as the base material is easily available and the carbon coating can be effortlessly added during the standard dying process.</p>
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		<title>Timing of Medication</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-127-jan-feb-2019/timing-of-medication/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Jan 2019 22:20:43 +0000</pubDate>
				<category><![CDATA[Issue 127 (Jan - Feb 2019)]]></category>
		<category><![CDATA[biological]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cancer]]></category>
		<category><![CDATA[cell]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[clock]]></category>
		<category><![CDATA[clocks]]></category>
		<category><![CDATA[cycles]]></category>
		<category><![CDATA[damage]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[dna]]></category>
		<category><![CDATA[drug]]></category>
		<category><![CDATA[drugs]]></category>
		<category><![CDATA[genes]]></category>
		<category><![CDATA[health]]></category>
		<category><![CDATA[periods]]></category>
		<category><![CDATA[repair]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[rhythms]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[treatment]]></category>
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					<description><![CDATA[We are all aware of the fact that there is certain rhythm and order in the movement of the sun and the earth, as well as other planets along their pre-assigned orbits. This order has ongoing without a glitch for possibly billions of years. The day and the night become longer and shorter on a [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img loading="lazy" decoding="async" class=" size-full wp-image-6664" src="https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca.jpg" alt="Timing of Medication" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/01/08b-0ca-1536x960.jpg 1536w" sizes="auto, (max-width: 1920px) 100vw, 1920px" /></p>
<p>We are all aware of the fact that there is certain rhythm and order in the movement of the sun and the earth, as well as other planets along their pre-assigned orbits. This order has ongoing without a glitch for possibly billions of years. The day and the night become longer and shorter on a schedule, and this is how we can develop calendars by calculating seasons, months, and days.</p>
<p>The movements of celestial bodies impact in multiple ways the biosphere in which we live. Trees shed leaves or bloom, some animals hibernate, and others enter reproduction season.</p>
<p>Time advances not linearly but in cycles. The internal systems by which the metabolisms of living things are organized are made to work according to numerous biological clocks that depend on the cyclical nature of time. These biological clocks are sometimes based on the length of a day and sometimes on long cyclical patterns that may span years. Periods of sunspots followed by explosions on the surface of the sun, for example, cause the reproduction cycles of populations of lynx and hare to peak every 11 years. This cycle is also tied to an increase in the production of wheat and certain species of fish breeding in abundance. The internal clock of the human metabolism is likewise organized during the day.</p>
<p>Scientists have long since noticed and started to research the different reactions of the human body to different time intervals throughout the day. It was realized that pains eased during certain times of day and intensified during others. There are also rising and falling cycles for hormones and the nervous system. These coincided with periods of hunger, meals, and sleep.</p>
<p>It has been found that certain changes occur in the physical and mental makeup of humans during the year, seasons, month and day. Researchers agree that every human has a unique physical and mental clock, but there are generally broad similarities. The scientific field researching these is called chronobiology. Researchers in chronobiology have demonstrated that certain changes occur, according to time periods, in the endocrine and autonomic nervous system as well as the body’s water and salt balance.</p>
<p>Other studies have focused on biological changes with respect to space.  The regulation of the body’s biological rhythm is found to be influenced by the movements and positions of the earth on its own axis, the moon around the earth, and the earth around the sun. As the atmospheric environment changes, so do living things.</p>
<p>Towards the end of the 1960s, scientists found that a synthetic corticosteroid drug called methylprednisolone was more reliable for treatment of arthritis and asthma when taken in the morning rather than at other times. “These rhythms might affect responses to cancer treatment,” says Eric Holland, a neurosurgeon at Fred Hutchinson Cancer Research Center, adding that there are optimal times for administrating radiation in mice.</p>
<p>A forty-three-year-old patient with 27 tumors in her liver whose drug treatment for colon cancer did not work volunteered for a trial and recovered from cancer after rescheduling the administration of her drugs. Oncologist Francis Lévi was so amazed by this effect on the patient that he became a supporter of chronotherapy, or time-cycled treatment. To Lévi, who works at Warwick Medical School in the United Kingdom, timing can prove even more important than dose. In the trial, the patient was first wired up to a device like a clock so that metabolic rhythms could be better monitored. The patient had extremely regular sleep-wake cycles, which Dr. Lévi believed was likely to have contributed to the success of the treatment. This novel understanding did not spread before because researchers could not explain molecular foundations of daily rhythms, or circadian cycles, until 10 years ago, and clinical data was inconsistent.</p>
<p>Lévi and his team randomly divided 186 chemotherapy patients into two groups. They administered medicine to one group in accordance with the participants’ biological clocks and to the other group according to the standard procedure. More than 50% of the former responded well, whereas the rate remained at only 29% for the latter. Another study found that 298 patients who had heart operations in the morning were twice as likely to have unsuccessful operations and develop complications as compared to 298 patients who had operations in the afternoon. To prevent the effects of the surgeon’s selection of patients, the same surgeons operated both in the morning and in the afternoon.</p>
<p>The 2017 Nobel Prize for the field of physiology was awarded to three American biologists, Jeffrey C. Hall, Michael Rosbash, and Michael W. Young, for their study into biological rhythms. Their research presents remarkable insights into the reasons why the biological rhythms of plants, animals and humans are created in coordination with the movements of the earth. The researchers used the fruit fly, an exemplary organism, and found the genes that controlled its daily biological rhythm. Discovering that these genes initiate the secretion of a protein that accumulated overnight and dwindled during the day, the researchers revealed that these proteins caused a mechanism made to work in a certain rhythm when the time was right. It was like a watch had been set inside the fruit flies’ cell.</p>
<p>It is estimated that approximately 80% of our genes follow night and day rhythms (and also possibly seasonal rhythms). Indeed, it has been identified that fits of asthma and epileptic seizures develop according to certain daily rhythms. The products expressed by the genes that are active in most tissues peak early in the day and in the afternoon and reach lows after dinner and before bedtime. All these activities are carried out by the “molecular biological watches” written in our genes. If we can better understand our internal clocks, researchers believe they could discover breakthroughs in the treatment of up to 150 diseases, including cancer.</p>
<h3>The time machine</h3>
<p>Many tissues in the body have their own time schedules arranged by regular cycles in which numerous innate “clock genes” envelop the body like a net. The timing of all these clocks can have a powerful impact on metabolic activity, the increase in the number of immune cells, and many other things. “The best advice I can offer is don’t mess with your body clock,” says Professor Derk-Jan Dijk, director of the Surrey Sleep Research Center in the city of Guildford, England. [1]</p>
<p>The biological clock is an extraordinary system. A group of neurons in the hypothalamus in the brain, called the suprachiasmatic nucleus, are assigned as the central clock for all these activities in the body. The signals from this region play a role in initiating and finalizing the activities of the genes, which channel drugs to their molecular targets and help produce enzymes that destroy drugs. “Clock” genes are found virtually in every organ and tissue, and they are particularly important during cancer treatments, because interventions performed during such critical processes as the cycle of cellular division and growth and repair of DNA damage become significant for killing cancerous cells.</p>
<p><em>Cisplatin</em>, an effective drug used for almost 50% of solid tissue cancers, kills malignant cells by binding to their certain parts, yet because the drug is toxic to the kidneys, lungs, and nervous system, efforts have been made to develop less toxic versions. Just as a cell develops cancer due to DNA damage, so is the destruction of the cancerous cell started by damaging the cell’s DNA. For this reason, some drug trials focus on blocking the DNA repair of the cancerous cell.</p>
<p>Observations made on the appearance and repair of DNA damage showed, as expected, that DNA damage was repaired more easily during certain periods of the day, leading to the hope that cancer can be treated through DNA repair if drugs are administered in tandem with this cycle. If optimal periods could be established for numerous normal cells to repair their DNA damage, administration of drugs can both optimize the useful effects of drugs and minimize toxicity of drugs with toxic properties.</p>
<p>The human organism and cells are not static, but dynamic. The behavior of our cells changes dramatically before and after a meal. Similarly, the movement and frequency of numerous materials circulated in our body when we are sleeping are different from when we are awake. Therefore, if the amount of a material doubles after lunch followed by a cup of coffee and if the material negates a drug taken by a patient, then that drug can be administered when this material is at its lowest in the body. For example, if the material is at a minimum at two in the morning, the drug can be given at that time, ensuring that the effect is maximized.</p>
<p>The studies into “<em>man, the unknown</em>” are bound to lead to many more discoveries about both treatments of diseases and the knowledge, power, and wisdom waiting to be found in the creation.</p>
<h3>Note</h3>
<ol>
<li>https://woolcock.org.au/new-2/why-you-shouldnt-mess-with-your-body-clock-expert</li>
</ol>
<h3>References</h3>
<ul>
<li>Leder, K., Pitter, K., LaPlant, Q. (2014). Mathematical Modeling of PDGF-Driven Glioblastoma Reveals Optimized Radiation Dosing Schedules. <em>Cell. </em>Cilt <em>156</em>, Sayı 3, s. 603-616.</li>
<li>Lévi, F., Zidani, R. &amp; Misset, J.-L. (1997): Randomized multicentre trial of chronotherapy with oxaliplatin, fluorouracil, and folinic acid in metastatic colorectal cancer. <em>Lancet </em>350, 681–686.</li>
<li>Peeples , L. (2018). Medicine’s secret ingredient — it’s in the timing. Synchronizing drug delivery with a patient’s body clock can yield clear benefits. But will the data be enough to overcome long-standing hurdles? <em>Nature 556</em>, 290-292 (2018).</li>
<li>“Why You Shouldn’t Mess with Your Body Clock: Expert,” woolcock.org.au. August 7, 2018.</li>
</ul>
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