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	<title>flies &#8211; Fountain Magazine</title>
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		<title>Flies</title>
		<link>https://fountainmagazine.com/all-issues/2021/issue-139-jan-feb-2021/flies/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Fri, 01 Jan 2021 03:28:33 +0000</pubDate>
				<category><![CDATA[Issue 139 (Jan - Feb 2021)]]></category>
		<category><![CDATA[animals]]></category>
		<category><![CDATA[antibiotics]]></category>
		<category><![CDATA[bacteria]]></category>
		<category><![CDATA[disease]]></category>
		<category><![CDATA[diseases]]></category>
		<category><![CDATA[drink]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[fly]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[germs]]></category>
		<category><![CDATA[hadith]]></category>
		<category><![CDATA[Hadith of the fly]]></category>
		<category><![CDATA[healing]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[materials]]></category>
		<category><![CDATA[microbes]]></category>
		<category><![CDATA[research]]></category>
		<category><![CDATA[saliva]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[university]]></category>
		<category><![CDATA[viruses]]></category>
		<category><![CDATA[wing]]></category>
		<category><![CDATA[Zoology]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2021/issue-139-jan-feb-2021/flies/</guid>

					<description><![CDATA[Athlete’s foot is a frequent infection that millions of people suffer from annually. I once had it during my military service where we had to wear boots almost an entire day. Once during a noon intercession, I performed my ablutions to pray and I placed my feet under the sunlight to dry them. I was [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-7061" src="https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54.jpg" alt="Flies" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>Athlete’s foot is a frequent infection that millions of people suffer from annually. I once had it during my military service where we had to wear boots almost an entire day. Once during a noon intercession, I performed my ablutions to pray and I placed my feet under the sunlight to dry them. I was also hoping that ultraviolet rays from the sun would be good for the infection. Soon, flies swarmed in between my toes. When I could not bear the excessive itching, I tried to kill the flies until I was stopped by a friend who reminded me of the great sage Bediuzzaman’s comments where he called flies “cleaning workers.” At that time, I also remembered Prophet Muhammad’s (peace be upon him) words on flies. So, I patiently endured the nuisance, and repeated the same procedure for the next three or four days. Eventually, my feet were healed and there was no trace of the fungi.</p>
<p>In one of his very interesting hadiths, the Prophet, peace and blessings be upon him, is reported to have said the following about flies: “If a fly falls into your drink, dip it into your drink, then throw it away, for on one of its wings is a disease, and on the other is a cure. It dips the wing with the disease to protect itself” [1]. This hadith has been a reason for much controversy mainly due to germ disease theory.  According to Jonathan C. Brown, “even before modern medicine, the Hadith of the Fly was raising skeptical eyebrows and prompting Sunni defensiveness as early as the writings of Ibn Qutayba (d. 276/889)” [2]. Brown also mentions that this hadith “could be false or it could be true, since scientists used the flesh of a snake to help prepare antidotes to its poison” [3].</p>
<p>Before the microscope was invented it was impossible to define microbes or talk about the anatomy or microbiology of flies as we can today. However, the introduction of experimentation and observation as an important scientific method with the Renaissance served as a turning point in Western scientific revolution. Thus, the “proof-based medicine” conception that relies on experimentation and observation emerged as a precursor to today&#8217;s medicinal and scientific research. The importance of perceptions that rely on causes relating to the material world in persuading the human mind cannot be denied. It is harder to make people believe in something unless they are provided with concrete results that appeal to our five senses. We should not rush to deny any claim solely based upon our preconceptions and prior knowledge without doing any research about it; rather, we should pass our judgment on it after experimentation and observation.</p>
<p>Some people may automatically reject the idea that when a fly falls in our food or drink that we should immerse this microbe-carrying insect completely and they may say that this would not eliminate the microbes. Indeed, it may sound reasonable to assume that this disgusting insect that feeds on all sorts of dirt would cause only diseases. If you have an ample supply of food or water and if you do not have the stomach for it, you can of course refrain from eating or drinking such a food or drink. But, you can hardly advise someone who has very little water or food in a desert or at the time of famine to throw away what they have because of a fly.</p>
<p>We should examine different types of flies in laboratory settings using the method of experimentation and observation. First of all, it is very difficult to prove that someone can contract an illness from eating food in which a fly had fallen into although he or she had immersed that fly completely in that food. If it is proven that someone becomes ill due to a fly&#8217;s alighting in their food, then strong objections can be raised. If it is said that there many diseases caused by flies, no one will deny it. The point is not whether flies carry germs, but whether this advice for being protected from the germs carried by flies is correct or not. As a matter of fact, the advice by the Prophet seeks to protect us from diseases that may be caused by germs carried by flies. The great scholar Bediuzzaman’s words on flies also give us an alternative perspective to consider about these “tiny birds”:</p>
<blockquote>
<p>“…Flies are dutiful about cleaning away noxious substances or germs that cause disease. By sucking up and absorbing harmful germs, they destroy them, and they cause noxious or poisonous substances to change into other harmless forms, thus preventing the spread of many contagious diseases. A sign that they are both laborers for health and cleansing operatives and chemists, serving many instances of wisdom, is the fact that they exist in extremely great numbers. For the things that are valuable and beneficial are multiplied.” [4]</p>
</blockquote>
<p>The hadith of the Prophet and Bediuzzaman’s commentary encourage us to explore more about flies and whether they can be a source of healing in any way.</p>
<p>Flies are very ubiquitous on earth. There are approximately 125,000 species of flies, but only ten species live in our homes and are of concern to us. They feed on garbage and organic waste materials that act as a breeding ground for microbes such as bacteria, fungi, and viruses. The female fly lays down more than 100 eggs in the dung of some animals or in garbage. After one day, the larva emerges to feed on the surrounding organic materials. In two weeks, they become full-grown flies. In four generations, one female fly can lay 1.5 million eggs, but fortunately the majority die due to weather circumstances or become food for birds, reptiles, amphibians, and other insects. A fly can live for 60 days at most.</p>
<p>Given the ecological balance in nature, one comes to accept that there should be species that will remove all sorts of organic waste, garbage, dead animals or plants, and similar things by eating them. Houseflies feed on the rotting corpses of animals while female horseflies suck blood. How can flies, which act as health workers that are charged with the duty of cleaning the world, digest so many diverse amounts of garbage and waste?</p>
<p>Flies get their nourishment differently from other animals. What other animals do for digestion is done by flies outside their bodies. They do not have teeth-like structures in their mouths in order to chew solid, dry food and therefore have to turn such food into liquid form or split it into 0.45-mm or smaller pieces. In this liquid form, flies can easily suck up their food using their suitably shaped mouths. To do this, flies vomit a saliva-like liquid, containing enzymes and acids, and that disintegrates the solid food into something that can easily be digested in a couple of seconds. In this process, some of the microbes in that waste food can be disintegrated while the rest will be sent to the stomach.</p>
<p>These foods and microbes taken inside in the form of vomit are sent to a sac called a “crop” if they are not small enough to go through the digestive tract. Flies produce fresh saliva regularly during which the vomit moves between their mouths and crops. Eventually, the sufficiently liquefied food is sent to the stomach which contains enzymes and acidic content as well as partially disintegrated microorganisms.</p>
<h3>What does scientific research tell us?</h3>
<p>Based on the theory that flies must have remarkable antimicrobial defenses and resistance to survive the bacteria from rotting dung, meat, and fruit, a team at the department of biological sciences at Macquarie University in Australia set out to identify those antibacterial properties.</p>
<p>“Our research is a small part of a global research effort for new antibiotics, but we are looking where we believe no one has looked before,” said Joanne Clarke, who presented the group&#8217;s findings at the Australian Society for Microbiology Conference in Melbourne.</p>
<p>Clarke&#8217;s research showed that flies produce their own antibiotics, and this was tested on four different fly species. Such research may lead to better treatments for human infections from Escherichia coli and other virulent bacteria even, perhaps, Staphylococcus aureus (MRSA).</p>
<p>Upon preliminary results, a global pharmaceutical company decided to support the research over the next six months by trying to isolate antibiotic compounds from the material collected from the flies. The research team is trying to identify the specific antibacterial compounds. As antibiotics that will eventually be invented and chemically synthesized come from the body surface of flies, not from other fungi or bacteria, it is believed that any gene that gives resistance to microbes will not be easily transferred to pathogens and the new antibiotic form will have longer and more effective treatment duration [5].</p>
<p>Later, Russian doctors had developed interest in this topic and observed that flies contain many substances that can be more effective than traditional medications and certain fly larvae have very strong therapeutic effects [6].</p>
<p>Noting that flies should be kept away from hospitals, Professor Juan Alvarez Bravo at the University of Tokyo expressed his support for such research, saying, “But soon we will witness a rapid treatment for many diseases, which consists of extracts from flies” [7].</p>
<p>Some researchers at Auburn University of the United States discovered a protein in the fly’s saliva which can accelerate the lengthy process of healing wounds and chronic skin cracking. Entomologists Ed and Mary Cupp managed to isolate the protein which houseflies inject into their prey to increase blood flow in the skin of their prey. Mary Cupp and surgeon Steven Swaim demonstrated that surgical incisions, skin ulceration, and diabetic foot lesions treated with solutions that combine antibiotics and this protein heal faster and stronger than incisions treated with antibiotics alone [8, 9].</p>
<p>In another study, it was found that epithelial cells forming the inner layers of the front and back intestines of the fly protect it from the bacteria it swallows thanks to a special cuticular lining, and in this way, bacteria never directly touch the intestinal epithelium and cannot give any damage to it. In this study, it was noted that people nurtured a radical approach to flies and that fly control has been abused for the sake of human health, suggesting that flies may be the source of novel germicides that make use of their antimicrobial digestive enzymes, lysozyme, and antimicrobial peptides [10].</p>
<p>Viruses cause many diseases in cattle, sheep, and birds. These diseases include encephalitis, aphthous fever (foot and mouth diseases), and duck plague which can be transferred to people through infected animals. Some crops such as potatoes, tomatoes, bananas, and sugarcane can also be destroyed by viral infections.</p>
<p>Flies carry the viruses of many diseases which are consequently transferred to man&#8217;s food, drink, and body. Of these viral diseases are common flu, measles, mumps, chickenpox, warts, yellow fever, infectious liver diseases, some cases of paralysis, some types of cancer, and some chronic diseases of the central nervous system.</p>
<p>El-Naggar, Zaghloul, from Egypt, indicates that some of the disease-causing viruses may directly infect living beings and cause damage to their cells, while there is a type of virus which infects bacteria cells known as “bacteriophage.” These viruses, which can kill the bacteria they infect in a short time, are known as “virulent bacteriophage.” Those viruses that do not kill the bacteria they infect are called “temperate bacteriophage” [11].</p>
<p>After a bacteriophage infects a bacterium, more than 100 viruses are released from that bacterium and each of these viruses can infect new bacteria. The spreading of infection may continue until all vulnerable bacteria cells die. After it was discovered that bacteriophages are parasites of bacteria, they started to be used in treating the diseases caused by bacteria. However, their use in this manner declined after the discovery of antibiotics. Yet, the interest in phage treatment was revived after the emergence of bacterial resistance to antibiotics [12].</p>
<p>Researchers from Stanford University announced that they found a substance in flies that can improve the human immune system [13].</p>
<p>The work by Rehab Mohammed Atta from the Microbiology and Immunology Department, National Research Center, Cairo, Egypt, is quite remarkable [14]. In this research, the extracts taken separately from the left and right wings of flies were used against the bacteria and fungi calculated on nutrient “agar” media in the laboratory. It was demonstrated there was both bacterial and fungal growth for the left wing extract plates while no bacterial or fungal growth was reported for the right ones.</p>
<p>Given the fact that the garbage and rotting corpses on which flies feed from contain numerous dangerous bacteria, it is quite reasonable that it contains antibacterial materials necessary for its survival. In this case, the fly&#8217;s needs might be of service as sources of antibiotics that can prevent epidemics among human beings, and this may be the reason why they were created in the first place: not to be a source of nuisance but a source of healing for us.</p>
<p>Aj-Taili, et al., from the department of medical microbiology, Qassim University in Saudi Arabia, conducted an experiment using water, honey, and various fruit juices in different cups. They found no germ in the solution in which the whole body of fly was immersed while the solution in which only one wing of the fly was dipped indicated the presence of germs [15].</p>
<p>In sum, we can say that antibacterial materials produced in the bodies of flies protect them against the microbes in their environments and that these microbes can prevent epidemics among human beings. At the very least, this topic deserves in-depth research. Atta&#8217;s study confirms the virtue of the hadith that says, “The best way to release this vital antidote is to dip the fly in a liquid because these substances are concentrated on the outer surface of the fly body and wing.” Abduldaem al-Kaheel refers to this study in his website: “This is logical because the fly has a lot of harmful bacteria on the outside of her body and therefore in order to continue in her life, it should also carry anti-bacterial materials; these materials were furnished by God to protect it from viruses and diseases.” In the light of these studies, the need for conducting more research for obtaining antibiotics from the right wing of the fly is clear [16].</p>
<h3>References</h3>
<ol>
<li>Abu Dawud, At&#8217;imah, 49. Also see Bukhari, Tib, 57, Bed&#8217;u al-Khalk 17; Ibn Majah, Tib, 31, Nasa&#8217;i, Far&#8217;, 11.</li>
<li>Brown, Jonathan A. C. 2009. Hadith: Muhammad’s Legacy in the Medieval and Modern World, p. 264.</li>
<li>Ibid. p. 255.</li>
<li>Nursi, Bediuzzaman Said. 2008. <em>The Gleams</em>. The Light, Inc. p. 376.</li>
<li>Danny Kingsley, ABC Science Online, 1 October 2002, The new buzz on antibiotics. Clarke, J., Gillings, M. and Beattie, A. (2002). Hypothesis-driven drug discovery. Microbiology Australia, pp. 8–10.</li>
<li>Petersburg State University, (2006). The fly effect: Russian Scientists Invent new medicine with the help of flies.</li>
<li>Bravo, J. A. (1994). The ointment in the fly: antibiotics. New antibiotic derived from a common fly. The Economist (US).</li>
<li>Ed and Mary Cupp (2005). Protein in Fly Saliva Speeds Healing of Incisions Wounds. Auburn University. R Am Ex Ars Medica, Inc., 7:23.</li>
<li>Protein in Fly Saliva Speeds Healing of Incisions, Wounds 20-Jan-2005. www.newswise.com/articles/protein-in-fly-saliva-speeds-healing-of-incisions-wounds</li>
<li>Nayduch, D. and Burrus, R.G. (2017). Flourishing in Filth: House Fly–Microbe Interactions Across Life History. Special Collection: Filth Fly–Microbe Interactions. Annals of the Entomological Society of America, 2017, Vol. 110, No. 1.</li>
<li>El-Naggar, Zaghloul, (2010). Housefly Falls into One’s Drink! 09 September 2010. www.quranandscience.com/quran-science/sunnah-science/204-housefly-falls-into-ones-drink-274</li>
<li>Aydogan, D.Y., Hadimli, H.H. (2016). Bakteriyofaj Tedavisi (Bacteriophage Treatment), Etlik Vet. Mikrobiyol. Derg.; 27 (1): 38–47.</li>
<li>Stanford University Medical Center, 2007. Fruit Fly Insight Could Lead to New Vaccines. Science Daily. www.sciencedaily.com/releases/2007/03/070308220904.htm</li>
<li>Atta, R. M. (2014): Microbiological Studies on Fly Wings (Musca domestica) Where Disease and Treat. World Journal of Medical Sciences 11 (4): 486–489.</li>
<li>Aj-Taili, S.I., A.A.R. Al-Misnid and K.D. Al-Uteybi, (2002). Wing One and the Other Disease Carrying the Cure. Qassim University. Danny Kingsley.</li>
<li>Abduldaem al-Kaheel, 1995. New facts: fly have a cure, www.kaheel7.com/eng.</li>
</ol>
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		<item>
		<title>Cryptochrome: The Compass of Animals</title>
		<link>https://fountainmagazine.com/all-issues/2020/issue-133-jan-feb-2020/cryptochrome-the-compass-of-animals/</link>
		
		<dc:creator><![CDATA[Numan Erciyes]]></dc:creator>
		<pubDate>Wed, 01 Jan 2020 22:58:14 +0000</pubDate>
				<category><![CDATA[Issue 133 (Jan - Feb 2020)]]></category>
		<category><![CDATA[animals]]></category>
		<category><![CDATA[biology]]></category>
		<category><![CDATA[birds]]></category>
		<category><![CDATA[cryptochrome]]></category>
		<category><![CDATA[earth]]></category>
		<category><![CDATA[field]]></category>
		<category><![CDATA[fields]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[fruit]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[life]]></category>
		<category><![CDATA[magnetic]]></category>
		<category><![CDATA[migratory]]></category>
		<category><![CDATA[navigate]]></category>
		<category><![CDATA[north]]></category>
		<category><![CDATA[pole]]></category>
		<category><![CDATA[poles]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[sea]]></category>
		<category><![CDATA[turtles]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2020/issue-133-jan-feb-2020/cryptochrome-the-compass-of-animals/</guid>

					<description><![CDATA[Animals such as butterflies, turtles, and birds are given the ability to perceive the Earth’s magnetic field and navigate themselves accordingly. Migratory species also benefit from the sun, stars, and even scents in nature as they from one place to another. Magnetic fields and poles Modern studies have focused on how animals perceive the Earth’s [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img decoding="async" class=" size-full wp-image-6817" src="https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa.png" alt="Cryptochrome: The Compass of Animals" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa.png 1920w, https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa-300x188.png 300w, https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa-1024x640.png 1024w, https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa-768x480.png 768w, https://fountainmagazine.com/wp-content/uploads/2020/01/10-2aa-1536x960.png 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>Animals such as butterflies, turtles, and birds are given the ability to perceive the Earth’s magnetic field and navigate themselves accordingly. Migratory species also benefit from the sun, stars, and even scents in nature as they from one place to another.</p>
<h3>Magnetic fields and poles</h3>
<p>Modern studies have focused on how animals perceive the Earth’s magnetic field and act accordingly. We need to look closer at the Earth’s “magnetic polar points” to understand how magnetic fields work exactly.</p>
<p>It is important not to confuse geographic and magnetic poles. There is a layer called the “inner core” in the center of our Earth where all substances are in a fluid state, similar to those seen in volcanic eruptions. Volatile and molten elements such as nickel and iron form a magnetic electric field above the Earth. This is also the force that is responsible for causing our compasses to point north. At the center, the Earth’s magnetic field changes due to these fluid substances. That is, our compass does not always show the “true north,” i.e. the exact geographical north.</p>
<p>As of the last decade, the Earth’s magnetic pole has kept moving at a rate of about 55 km per year. The magnetic north pole, found in Canada in 1831, has now shifted 2300 km and approached Siberia. Scientists say that about 780 thousand years ago, today&#8217;s southern and northern magnetic poles were exactly the opposite. Although the magnetic poles shift, the Earth’s magnetic field continues to function properly. This is imperative for protecting all life on Earth, as a balanced magnetic field protects our planet from the magnetic effects of solar flares and solar winds.</p>
<h3>Effects of polar shift</h3>
<p>A new magnetic map of our planet is released every five years due to the fact that our magnetic poles are constantly shifting. This does not affect most people on a daily basis, however it does present a challenge for people and vehicles that rely on a compass. Due to the shift, a difference called “magnetic declination angle” occurs between the magnetic north pole and the geographic north pole. This angle varies according to the location. For example, in Canada the magnetic deflection angle is 13 degrees whereas in Brazil it is 20 degrees. In order to determine their exact location, military and civilian aircraft and ships manually or automatically calculate their location based on the angle of deviation and navigate accordingly. Even if we are not aware, our mobile phones are automatically updated according to this calibration. In physics, the formula known as Lenz’s Law, or a tool called a gaussmeter, can be used to calculate the Earth’s magnetic field.</p>
<h3>Cryptochromes</h3>
<p>This complex and intricate system affects most animal life on Earth, including birds, insects, and fruit flies. So, if these magnetic poles keep changing how do animals find their way? Most creatures utilize cryptochromes, a type of flavoprotein that affects their body clock.</p>
<p>Cryptochrome (CRY) [1] is found to play a leading role in this regard. Cryptochrome-2, one of the two cryptochrome photoreceptors, has been proven to be instrumental in regulating the daily life rhythm of beings by fine-tuning their body clocks and assisting certain animals such as migratory birds, king butterflies, and fruit flies to navigate their migratory paths accurately.</p>
<p>Years of research conducted by Steven Reppert and his team at the University of Massachusett’s School of Medicine on fruit flies and butterflies revealed the function of cryptochrome-2.</p>
<p>According to the research published in <em>Nature</em> magazine in 2009 [2], Dr. Reppert and his team found that flies could not adjust themselves to a new magnetic field without any form of cryptochrome, but that they could regain their sensitivity to a magnetic field only after cryptochrome-2 production.</p>
<p>During the study, the genetic structure of fruit flies was examined and it was ensured that they produced cryptochrome-2.</p>
<p>Speaking to the BBC, Dr. Reppert emphasized that they developed a system to understand how the perception of the magnetic field works in fruit flies. They sought the answer to the question, if cryptochrome-2 was to be transferred from animals to flies, can these proteins act like magnetic sensors in other forms? They have found out that human beings were the most effective option among all vertebrates to yield cryptochrome for this purpose. Their experiment with butterflies yielded the same results. They observed that flies without cryptochromes did not show any signs of magnetic field detection only until their genetic structure was intervened to produce a human version of the molecule.</p>
<p>In another experiment carried out by scientists, a group of migratory birds had iron nuggets, some of which were magnetized to scramble the Earth’s magnetic field, attached to their feet. It was observed that the birds with magnetized nuggets lost their migration path and the birds with unmagnetized nuggets could navigate as easily as usual.</p>
<p>Of course, birds could not know these exact calculations that many people do not even know. Pathfinding skills are “programmed” into birds before they are born so that even if the magnetic field shifts this wonderful mechanism in animals always delivers them to the right location.</p>
<h3><strong>The loggerhead sea turtles</strong></h3>
<p><em>As soon as they hatch on the east coast of Florida, the loggerhead sea turtles, </em><em>Caretta Caretta</em><em>s, swim into Sargasso Sea, migrate into the North Atlantic Circle, and then subsequently into the Atlantic Ocean. The turtles first swim to the northeast towards Europe, then to the south, and return to North America after spending 5-10 years in this hot and nutrient-rich migratory loop.</em></p>
<p><em>Dr. Kenneth Lohmann and his team at the University of North Carolina wanted to observe whether loggerhead sea turtles used regional magnetic fields to find their migration paths. They set up a mechanism in a large water tank that was installed with coils in order to form multiple magnetic fields. 79 newly hatched turtles were then clad in cloth vests with wires connected to a computerized monitoring system and left in the same tank. Juvenile turtles were subjected to magnetic fields equivalent to those that exist at critical points of the North Atlantic Cycle, such as in the north of Florida, off the coast of Portugal, and at the southern end of the cycle. As a result, it was observed that in every magnetic field simulated in the experiment, the turtles begin to swim in the opposite direction. For instance, when the magnetic field in the northeastern part of the loop was applied, the animals headed south. In a real ocean setting, this direction keeps them on the right track and prevents them from entering icy waters and dying of hypothermia.</em></p>
<h3>How do animals do it?</h3>
<p>There are several research works documenting that not only birds, but also bats, ants, foxes, deer, and even cows feel magnetic fields.</p>
<p>Animals generally migrate to find more suitable reproductive, feeding and living areas for themselves. It is amazing how they know which way to go as soon as they are born. How do they decide that a place they’ve never been to is most suitable for them? How did they learn those navigational skills?</p>
<p>It is amazing to observe this intricate and interlinked system between the Sun, the Earth, and all the living things in it: while the rays of the Sun are needed for life, the harmful ones among them need to be shielded away from the Earth with a magnetic field, a field which is detected by a protein in animals so they can travel to places to continue their lives.</p>
<h3>Human cryptochrome</h3>
<p>Cryptochrome proteins are also present in the human body [3]. Cryptochrome-2 is especially functional and is linked more to adjusting biological rhythm rather than perceiving the Earth’s magnetic field.</p>
<p>Dr. Aziz Sancar, Chemistry professor and Nobel Prize winner, observed in his experiments of circadian clocks [4] that the cryptochrome pigment located in the eye, skin, and part of the brain regulated the circadian rhythm of mammals.</p>
<p>Currently, many theories are proposed and experiments are conducted on discovering the extent that human beings can perceive the Earth’s magnetic field.</p>
<p>Meanwhile, the wisdom behind the constant shift in the Earth’s magnetic pole awaits to be revealed.</p>
<h3>Notes</h3>
<ol>
<li>https://en.wikipedia.org/wiki/Cryptochrome</li>
<li>Buchen, Lizzie. “Butterflies’ Migrational Timekeeper Found.” <em>Nature</em>, September 24, 2009.</li>
<li>Discovered between 1996 and 1998 in humans by Aziz Sancar and his colleagues, cryptochrome is one of the four genes that set the circadian clock in mice. This protein is also a member of a family of proteins including photolyase, DNA’s repair enzyme, on which Prof. Aziz Sancar has worked throughout his scientific career.</li>
<li>Rhythmic behavior and physiological changes that have a 24-hour cycle and regulate the day and night cycles of living beings. </li>
</ol>
<h3>Further reading</h3>
<p>Attenborough, David. 1998. <em>The Life of Birds</em>, Princeton University Press Princeton, New Jersey.</p>
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		<title>I Do Not Kill Flies!</title>
		<link>https://fountainmagazine.com/all-issues/2015/issue-103-january-february-2015/i-do-not-kill-flies-january-2015/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Jan 2015 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 103 (January - February 2015)]]></category>
		<category><![CDATA[Acrobatic flight masters]]></category>
		<category><![CDATA[air]]></category>
		<category><![CDATA[antibiotics]]></category>
		<category><![CDATA[ceiling]]></category>
		<category><![CDATA[eye]]></category>
		<category><![CDATA[eyes]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[flight]]></category>
		<category><![CDATA[fly]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[movements]]></category>
		<category><![CDATA[plane]]></category>
		<category><![CDATA[receptors]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[scientists]]></category>
		<category><![CDATA[source]]></category>
		<category><![CDATA[stroke]]></category>
		<category><![CDATA[surface]]></category>
		<category><![CDATA[times]]></category>
		<category><![CDATA[wing]]></category>
		<category><![CDATA[wings]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2015/issue-103-january-february-2015/i-do-not-kill-flies-january-2015/</guid>

					<description><![CDATA[The flies are surely &#8220;acrobatic flight masters.&#8221; They can detect the necessary angle of lift-off depending on the strength and direction of the wind through the receptive molecules (receptors) they have. They can lift off vertically immediately after this calculation is made, and can reach speeds of 6 miles per hour. Flies have two wings [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>The flies are surely &#8220;acrobatic flight masters.&#8221; They can detect the necessary angle of lift-off depending on the strength and direction of the wind through the receptive molecules (receptors) they have. They can lift off vertically immediately after this calculation is made, and can reach speeds of 6 miles per hour.</p>
<p>Flies have two wings that are capable of moving independently from each other; these wings go back and forth on a single axis during flight. Technically, the unequal angles of the wings to the abdominal region could have prevented flight. Yet in the case of flies, this abnormal situation is not a hindrance and results in a harmonious wing stroke.</p>
<p><span id="more-1734"></span></p>
<p>Let&#8217;s bring our palms together over our head and then lower them near our legs. How many times can we make this movement in a second? Let&#8217;s say two, three, or maybe four times if we are really quick. Flies have the ability to stroke their wings hundreds of times in just a second. There are benefits associated with this series of movements. The surface of the wings and the rear section of the head are equipped with sensitive hairs that are in charge of registering air currents and mechanical pressures and conducting relevant flight data to the brain. The unwanted effects of air currents towards the body surface and wings during the flight are detected via these hairs that house receptors. Thus, the wings are controlled according to the signals arriving from the brain. Therefore, a fly can feel an air curtain (like an insect screen) against it instantly and often times flies away. Sometimes, they also stroke their wings hundreds of times per second to avoid the negative effects of air resistance on the wings. Without these receptors and serial wing movements, the air current would stick to the wing&#8217;s surface and would not let the fly, well, fly.</p>
<h3><b>Is it a fly or a plane?</b></h3>
<p>We sometimes witness comparisons between the flight specifications of planes and flies. However, it is a great injustice to the fly to be put in the same basket as a plane. The products of modern technology, such as a plane, are invented after drawing inspiration from the meaningful skills of animals like a fly. It is not possible to build planes with a wing width smaller than 15 centimeters; there are disadvantages to wings smaller than that in terms of generating lift. On the other hand, flies have much smaller and more fragile wing structures (relative to their bodies) and can maintain their flight in a perfect fashion. When a fly extends its rear legs, covered with hairs designed especially for cleaning the wings, and sweeps them over its wings, doesn&#8217;t this suggest a fly is more impressive than a plane?</p>
<h3><b>It challenges mountaineers! </b></h3>
<p>A fly challenges mountain climbers by easily moving on the four walls and ceiling of a room – and even on slippery surfaces like glass. What is its secret?</p>
<p>Its ability to stand or walk on the ceiling without being defeated by gravity is possible via some of its organs. The final sections of fly&#8217;s legs are like hooks and the tip of this hook is equipped with suction pads. When flies touch a surface, a sticky fluid is secreted from the suction pads. Flies can remain suspended on the ceiling with the help of this fluid. When it approaches the ceiling, extends its legs to the front and flips towards the opposite direction of its approach, it sticks to the ceiling on its abdomen.</p>
<h3><b>The grand architecture in the eye of the fly</b></h3>
<p>Can you complete a jigsaw puzzle of 8000 pieces in a second without any missing pieces? It seems impossible, but let&#8217;s accept that you have. Can you fit this puzzle into an area that&#8217;s just a couple of square millimeters? It&#8217;s not possible for a man of intelligence to pass this test. However, the fly completes this miraculous task every time it uses its eyes in our rooms. We are unaware of the fact that the fly, which draws patterns of colors under the sun light, has such amazing eyes. Its eye is created to contain nearly 8000 ommatidium, which function almost as small eyes. Different areas can be seen via each ommatidium and once images are put together in the brain, the whole picture forms. Through these tiny eyes, shaped as hexagons that resemble honey combs, a fly can see as close as 2 mm – and can even see behind its body! Because of the wise hexagonal design, the ommatidia are placed in the most economical way possible; there are no missing spaces which could cause a lack of clarity. The optical speed of a fly&#8217;s eye is nearly 4-10 times faster than the human eye. Flies can see the ultraviolet section of the light spectrum and this allows them to evade predators easily in dim environments. Every time a fly uses its eyes, it&#8217;s as if it gives the message, &#8220;Look at how miraculously I&#8217;ve been created. Do you think that my creation could have been in vain?&#8221; Such complexity is an inspiration to scientists as they try to develop new technologies.</p>
<p>One of the features of flies that surprises scientists most is the way they use a neural network of a very limited number of neurons to perform so many complex movements. Biologist Michael Dickinson expresses his astonishment as to how a neural system of such small scale can accomplish all of these features.</p>
<h3><b>Do not ever kill a fly!</b></h3>
<p>Flies consume plenty of energy during flight. A regular supply of oxygen is needed to compensate for the energy they use. Air is inhaled via a constriction of the abdominal muscles when the fly lands on a surface. However, during the flight, air enters via the serial movements of the wings. Air that enters through the openings of the chitin layer surrounding the fly is transported to cells via small channels.</p>
<p>Flies locate their food via their smell receptors. Thus, a fly in the air easily lands on the food source that it detects. The taste organ detects whether the food is an ideal source or not. Usually, their choices of food are human foods, waste remains, and dirt. There are two tubes located in the mouth of the house fly. It sucks liquid food with one of the tubes; saliva containing enzymes is secreted on the food source with the other hose so that digestion is facilitated. A fly secretes plenty of saliva in order to liquefy the solid foods it prefers.</p>
<p>Flies that use dirt and waste as a nutritional source are considered as disease contracting pests. However, this is a major fallacy. Flies are actually the health officers of the ecosystem. They turn microorganisms ineffective as they take in their food; the digestive enzymes that they carry play role in completing this important task. Due to this important task, it should be remembered that killing a fly is very unfortunate. Great scholar, Bediuzzaman Said Nursi, notes that flies are assigned to terminate unhealthy microorganisms and materials.</p>
<p>Scientists led by Prof. Andy Beattie have noticed that flies are resistant to all kinds of dirt, including from meat and manure. He said that these organisms should be super resistant to infections, otherwise they could not survive and that our work to gain antibiotics from them has been partially successful. In fact, studies focused on obtaining antibiotics from flies started in the past century. English and Swedish scientists isolated certain antibiotics from flies in 1930 and 1947. Efforts to isolate antibiotics from flies continue today.</p>
<h3><b>Reproduction in black flies! </b></h3>
<p>Black flies reproduce quickly. In suitable humidity and temperature, eggs start to hatch in just 10 hours. Larvae feed on liquid materials, though they need bacteria living on solid food to convert it into liquid form. Therefore, an acid is secreted inside the digestive track of the fly that can terminate most of the bacteria. Thus, the insect becomes free of bacteria, ready to fly. One fly can lay more than 100 eggs at one time and between 600 and 1000 in their lifetime. They can lay eggs again after just three days.</p>
<p>When looking at the information we have, it&#8217;s clear that flies are acrobatic flight masters with mind blowing features. We should abandon the negativity towards flies and contemplate the perfection of creation by considering their many remarkable skills – and working to discover even more secrets about them.</p>
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		<title>Science Square (Issue 99)</title>
		<link>https://fountainmagazine.com/all-issues/2014/issue-99-may-june-2014/science-square-may-2014/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Thu, 01 May 2014 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 99 (May - June 2014)]]></category>
		<category><![CDATA[age]]></category>
		<category><![CDATA[animals]]></category>
		<category><![CDATA[biting]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[circadian]]></category>
		<category><![CDATA[clock]]></category>
		<category><![CDATA[Control weight]]></category>
		<category><![CDATA[early]]></category>
		<category><![CDATA[elephants]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[gender]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[light]]></category>
		<category><![CDATA[morning]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[showed]]></category>
		<category><![CDATA[stripes]]></category>
		<category><![CDATA[study]]></category>
		<category><![CDATA[voices]]></category>
		<category><![CDATA[weight]]></category>
		<category><![CDATA[Zebra stripes]]></category>
		<category><![CDATA[zebras]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2014/issue-99-may-june-2014/science-square-may-2014/</guid>

					<description><![CDATA[Elephants can distinguish human languages Elephants can determine ethnicity, gender, and age from acoustic cues in human voices. McComb et al. February 2014, PNAS. African elephants (Loxodonta africana) are the largest land animals on Earth and they have been facing the danger of extinction due to habitat loss and illegal hunting for their ivory tusks. [&#8230;]]]></description>
										<content:encoded><![CDATA[<h3>Elephants can distinguish human languages</h3>
<p><em>Elephants can determine ethnicity, gender, and age from acoustic cues in human voices. McComb et al. February 2014, PNAS.</em></p>
<p>African elephants (Loxodonta africana) are the largest land animals on Earth and they have been facing the danger of extinction due to habitat loss and illegal hunting for their ivory tusks. Elephants are also known to be very intelligent creatures and a recent study showed that they can even differentiate between human languages. Researchers at Amboseli National Park in Kenya played two different recordings of human voices for elephants. One group of voices belonged to local Maasai men, who happen to have violent encounters with elephants from time to time while herding their cattle. Other voices belonged to Kamba men, who are farmers or employees of the national park, and usually pose no threat to the elephants. In both cases, researchers played the same phrase, &#8220;Look, look over there, a group of elephants is coming,&#8221; in two different languages. When elephants heard Maasi voices, they demonstrated defensive behaviors, such as gathering together, investigative smelling through their trunks, and moving cautiously away from the stimuli. Interestingly, elephants showed a greater reaction to the voices of Maasi men than Maasi women or boys, suggesting that they can even differentiate the gender and age of humans. In contrast, when they heard Kamba voices, of any gender or age, they did not show any concern. Ability to recognize predators is a crucial skill for many animals, and elephants seem to be capable of pinpointing the ethnicity, gender, and age of a potential predator, perhaps through recognizing acoustic cues in human voices. This ability serves as an early warning system for elephants and it could become very useful, especially when the predator is out of sight.</p>
<h3>Set your alarm early to control weight</h3>
<p><em>Timing and intensity of light correlate with body weight in adults. Reid JK et al. February 2014, PLOS ONE</em></p>
<p>Early sunlight exposure in the morning has been found to lower a person&#8217;s body mass index (BMI). A recent study showed that 20-30 minutes of morning light controls approximately 20% of the variation in a person&#8217;s BMI. This effect was independent of physical activity, caloric intake, sleep timing, age, or season. Our bodies have an internal body clock called the &#8220;circadian clock.&#8221; It roughly controls 24-hour cycles of physical, mental, and behavioral activities. Light is the most potent regulator of our circadian clock. It sends strong signals to our brain and body, which in turn regulate our energy balance and metabolism. Previous studies showed that animals with an altered circadian clock gain weight even though they don&#8217;t eat more. Similarly, new research with study subjects showed that missing out on the early rays of sun shifts our circadian clock and alters our appetite, satiety, and even the way that our body processes food, which ultimately leads to weight gain. In modern times, we live and work indoors, thus are often not able to get enough light in the morning. While the daylight is the best source, experts think that standing by the windows or even using a strong desk lamp would be sufficient to properly synchronize our circadian clock in the morning.</p>
<h3>Mystery of zebra stripes solved</h3>
<p><em>The function of zebra stripes. Caro T. et al. March 2014, Nature Communications</em></p>
<p>The black and white stripes of zebras have intrigued people for centuries. Scientists have speculated many hypotheses for the purpose of these stripes, such as camouflage, heat management, social implications, etc. A new systematic study analyzed 7 different equid species with stripes on their bodies and mapped their geographic locations. Then, researchers generated a statistical model by comparing the stripe patterns of these animals and their environmental conditions. Strikingly, they discovered a clear overlap between the range of striped animals and where biting flies, like horseflies or tsetse flies, are highly populated. Scientists noticed greater striping among animals in regions where there were more flies. These results suggest that having stripes may protect zebras from biting flies. Zebras, unlike other African hooved mammals living in the same area, are particularly susceptible to biting, as their hair is shorter than the pinchers of the biting flies. A separate work has shown that some flies tend to avoid black-and-white striped surfaces, supporting the hypothesis that biting flies may avoid the striped surfaces of zebras. As much as these results are encouraging, no one actually observed zebras in the wild to see if biting flies avoid landing on them, in part because it&#8217;s almost impossible to stay that close to zebras. The next challenge for the researchers is to observe this phenomena live in the wild.</p>
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		<title>Forensic Entomology: How Insects Solve Murder Cases</title>
		<link>https://fountainmagazine.com/all-issues/2006/issue-53-january-march-2006/forensic-entomology-how-insects-solve-murder-cases/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Jan 2006 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 53 (January - March 2006)]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[case]]></category>
		<category><![CDATA[data]]></category>
		<category><![CDATA[death]]></category>
		<category><![CDATA[eggs]]></category>
		<category><![CDATA[entomology]]></category>
		<category><![CDATA[evidence]]></category>
		<category><![CDATA[ferry]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[forensic]]></category>
		<category><![CDATA[Forensic Entomology]]></category>
		<category><![CDATA[hours]]></category>
		<category><![CDATA[insect]]></category>
		<category><![CDATA[insects]]></category>
		<category><![CDATA[killer]]></category>
		<category><![CDATA[larvae]]></category>
		<category><![CDATA[man]]></category>
		<category><![CDATA[murder]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[sickle]]></category>
		<category><![CDATA[skipper]]></category>
		<category><![CDATA[time]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2006/issue-53-january-march-2006/forensic-entomology-how-insects-solve-murder-cases/</guid>

					<description><![CDATA[In a homicide case or any accident that results in death, it is essential to know the exact time and place where the death occurred. Insects and their larvae may yield elaborate data, such as the amount of time that has elapsed after death, whether the body has been moved to another site, or whether [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a homicide case or any accident that results in death, it is essential to know the exact time and place where the death occurred. Insects and their larvae may yield elaborate data, such as the amount of time that has elapsed after death, whether the body has been moved to another site, or whether the body has been disturbed by the killer after returning to the crime scene. The study of insect evidence in criminology is called “forensic entomology.”</p>
<p>The earliest records belong to ancient China. In 1235 Sung Tz&#8217;u, a Chinese “death investigator,” wrote a book entitled The Washing Away of Wrongs (translated by McKnight, 1981) in which what was known in forensic science at that time was detailed. In this text, an actual forensic entomology case was recounted, with the best known historic case being given. A murder had been committed in a little village in China. A man had been hacked to death with a rice-harvesting sickle. Because the village was one where rice was grown, everyone possessed a sickle, which meant that there were therefore many suspects. A professor at UC Davis, Robert Kimsey, explains how the murderer was caught; “The local magistrate very cleverly lined up every one of the farmers with their sickles out in the field. He walked up and down the line and pointed to the man who had committed the murder. The evidence he used to identify this man as a murderer-who later confessed, by the way-was the fact that green bottle flies were attracted to this man&#8217;s sickle. And nobody else, of course, had green bottle flies on their sickle because the flies were only attracted to a surface that had blood on it. No matter how rigorously you cleaned your sickle, you would still have remnants which these flies would be able to detect.”</p>
<p>Since those times, forensic entomology has made great progress. The way insect evidence helps justice works through the successive colonization of a corpse by a predictable succession of arthropod species. Different types of insects start coming right after death occurs. Organic remains, like flesh, blood, waste material, bone marrow, and hairs all attract certain types of insects. Owing to the time difference between the decaying body parts, the flies arrive at different times. They consume the parts that are nutritious for them and leave the body for another group.</p>
<p>As a manifestation of the divine name Quddus (the All-Holy), dead bodies decompose and nature is kept clean. Thus, the process started by microorganisms is made faster by the insects. Blow flies are among the first group of workers in this respect, whereas the dermestids, for instance, do their duty in the later stages of decomposition. The larvae of dermestids are not found before the body dry outs. The larvae and adults feed on dry skin and hair, as well as other dry dead organic animal matter. Dermestids are a common pest in homes, as well as being undesirable in insect collections and taxidermists collections at museums.</p>
<p>The first month after death is the most effective time for the application of forensic entomology. When death takes place, the insects start to arrive within minutes. However, it should be noted that insect evidence does not always tell us about the exact time of death. But at least we can infer that death occurred at a time that is greater than the age of the larvae that are developed in the body. If we have sound knowledge about the life cycles of the relevant insects, we can make more accurate predictions.</p>
<p>Another thing entomology helps us find out is the location of a murder. Sometimes a victim is moved after a murder in order to get rid of important evidence. For instance, a victim can be taken to a mountainous area after being killed in a town at low altitude. Entomologists can tell you about the habitat of the insects found on the body and give one a good idea about where the murder took place. Many insects live in very special geographical conditions. The altitude, temperature, and vegetation all affect the types of insects that live in the area. Furthermore, a meticulous entomological study will tell you whether the body has been, moved, the season in which it was killed, and whether the murder was committed indoors or outdoors.</p>
<p>Entomologists even help forensic experts with the cause of death. Particularly when the body has already decayed, it can be difficult for the police to determine the cause of death. In normal conditions, insects lay their eggs in certain parts of a body. If there are open wounds however, they will also lay their eggs there. So, if any eggs are found in unusual spots they indicate a probable wound.</p>
<p>When a murder or suicide is suspected to have resulted due to poisoning and if the body is decomposed, toxicological analyses that are made on the insects or the larvae taken from the body can help.</p>
<p>Bergeret (1855), who resided near Paris was the first westerner to use insects as forensic indicators. The body of a baby was found behind the plaster mantle in a house, and an investigation was begun. Bergeret determined that the assemblage of insects associated with the corpse pointed to a state of decay that dated back several years; consequently, the question of guilt was thrown upon the earlier occupants of the house, and not upon the current ones.</p>
<p>Case histories have documented the utility of medicocriminal entomology and point out the unique contributions that this field of science has made. Nuorteva et al. (1967, 1974) presented a series of cases from Finland in which blow flies were used as indicators for indoor as well as outdoor death scenes, and where the immature (larval) or adult stages were used for identification. Leclercq (1969) provided a typical case scenario and outlined how insect data were used to corroborate information obtained from other sources. Bernard Greenberg (1985) outlined several cases, including a description of how laboratory fly-rearing data were used to calculate the number of accumulated degree hours (ADH) required for certain blow fly species to develop, and how such data were applied to the solution of a murder case in Illinois. In another recent case, Greenberg described how the absence of insects in a seemingly straightforward death scene led to a killer&#8217;s confession. A window next to the victim had been open when the body was found, thus giving the impression that the murderer had forced entry into the room the night before. However, the air conditioned room was cool, even though it was very hot outdoors. In reality, the killer was known to the victim, had a key, and had returned to “set the stage,” opening the window just prior to feigning discovery of the corpse. The insects thus had insufficient time to colonize the body as the window had been closed prior to the return of the killer. When confronted by this biological reality as pointed out by medicocriminal entomology, the killer confessed.</p>
<p>A Hungarian ferry skipper had been condemned to life imprisonment for the murder of a postmaster, whose stabbed body had been found one evening in September on the ferry. The ferry skipper had arrived at 18:00 that day, and the body of the murdered postmaster had been found some hours later. The autopsy was performed the next day at 16:00. Masses of yellowish fly eggs and numerous newly hatched larvae of 1 to 2 mm in length were present, and the findings were recorded in the autopsy report. No attention was paid to this observation at the trial, however. On assumed evidence, the ferry skipper was condemned to life imprisonment in spite of his swearing that he was innocent. Eight years later the case was reopened. At the new trial, Dr. Mihalyi pointed out that no sarcophagous flies are active in Hungary after 18:00 in the month of September. He also recalled some of his experiments indicating that, at a temperature of 26 degrees Celsius, the yellowish eggs of Lucilia caesar (L.) hatch after 13 hours, those of L. sericata (Meigen) hatch after 10-11 hours, and those of Phormia terranovae Robineau-Desvoidy 14-16 hours after oviposition. These data, when applied to the case of the ferry skipper, led to the conclusion that it was not possible for the eggs to have hatched if they had been laid during the day the autopsy was performed, and that they must have been laid during the previous day before 18:00, since the flies are not active after this time. Dr. Mihalyi&#8217;s data on oviposition was verified and, on the basis of this and other evidence, the ferry skipper was released from prison.</p>
<p>Entomology, along with other sciences whisper in our ear that in “the Book of the Universe” there are different signs that lead us to the truth; they are there for us to use if we search for them and fulfill the requirement of causes. This is when the world will open its mysteries to us.</p>
<h3><b>Reference</b></h3>
<ul>
<li>http://www.ucdmag.ucdavis.edu/su99/Feature_Bugs.html</li>
<li>http://www.research.missouri.edu/entomology/chapter1.html#history</li>
<li>http://folk.uio.no/mostarke/forens_ent/casehistories/ferry_skipper.html</li>
<li>The illustration is taken from the poster of the annual Insect Fear Film Festival at the University of Illinois, Feb. 2005.</li>
</ul>
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		<title>Listening to a Fly</title>
		<link>https://fountainmagazine.com/all-issues/2004/issue-45-january-march-2004/listening-to-a-fly/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Jan 2004 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 45 (January - March 2004)]]></category>
		<category><![CDATA[create]]></category>
		<category><![CDATA[creatures]]></category>
		<category><![CDATA[eat]]></category>
		<category><![CDATA[eggs]]></category>
		<category><![CDATA[enzymes]]></category>
		<category><![CDATA[flies]]></category>
		<category><![CDATA[fly]]></category>
		<category><![CDATA[flying]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[germs]]></category>
		<category><![CDATA[god]]></category>
		<category><![CDATA[larvae]]></category>
		<category><![CDATA[organs]]></category>
		<category><![CDATA[people]]></category>
		<category><![CDATA[produce]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[wings]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2004/issue-45-january-march-2004/listening-to-a-fly/</guid>

					<description><![CDATA[&#8220;Surely, those whom you invoke, apart from God, will never create a fly even if they combine together for the purpose. If the fly takes something from them, they cannot rescue it from him.&#8221;; (Qur&#8217;an 22:73) Good day my dear friends! I know you are tired of me, I bother you so often, especially in [&#8230;]]]></description>
										<content:encoded><![CDATA[<blockquote>
<p>&#8220;Surely, those whom you invoke, apart from God, will never create a fly even if they combine together for the purpose. If the fly takes something from them, they cannot rescue it from him.&#8221;; (Qur&#8217;an 22:73)</p>
</blockquote>
<p>Good day my dear friends! I know you are tired of me, I bother you so often, especially in hot weather; but would you mind listening to me a little? I don&#8217;t understand why you are so proud! Did God create just you, and someone else created me? Some people do claim that I and all the other creatures evolved just by chance, in a process they call evolution, but I wouldn&#8217;t pay attention to them if I were you. Our Lord, God, created you and me, and the whole universe. Then why do you see me as being so unimportant? Of course, my Lord made humans superior and gave them an honorable place in this world, but this is only for those humans who recognize God Almighty and who pray to Him. If someone does not recognize the Creator, then this person will fall lower than me; I know my Lord, and I do not change my behavior. I don&#8217;t do anything but what He taught me. True, I am not tested as you all are, but I am happy with my lot. I carry out my duties obediently.</p>
<p>Although I do many useful things, most of you (except for the zoologists among you) aren&#8217;t aware of what my uses are. Some people even say, &#8220;Why has this black bug been created? It is of no use.&#8221;</p>
<p>If you just look at my wings, you can see that they are like a perfect work of art. Think about it, what would be more difficult, producing a large watch or a small and sophisticated one? Obviously producing a small watch is much more complicated. But one must remember that nothing is easy or difficult for God, He just says &#8220;Be&#8221; and He can create anything. By saying, &#8220;Be&#8221; He can create a microorganism or an elephant in an instant.</p>
<p>Just as you have organs that carry out the biological functions in your body that are necessary for your survival, I also have organs and systems in my body which carry out similar functions. The only difference between yours and mine is their structure and working principle. For instance, we both have hearts. Your heart pumps the blood to the body via the veins, and my heart pumps the blood to the spaces between my organs. You use your lungs for breathing while I have capillary tubes called trachea which transfer air directly to my tissues. The organs in my head are composed of many small particles. Each one of my eyes is created from hundreds of small hexagonal structures called ommatidia. Each has its own lens, a pigment cell that isolates it from the others, and a crystal cone. A special protein called chitin covers my body. Each one of my hairs acts as a special receiver, allowing me to detect all vibrations. Chitin is made up of a protein, which is durable and not permeable to water.</p>
<p>My mouth is shaped like a tube, while my tongue is like a sponge, helping me to taste my food. My feet, made up of chitin, are very thin and formed of many parts with a hook at the tip, making it easy for me to climb vertical surfaces.</p>
<p>There are hollow tubes in my wings, making them very light and strong. The hammer-like organs (halter organs) under my wings help me to balance while flying. There are some know-it-alls out there who claim that these organs were secondary wings that lost their function during evolution, but they seem to forget that there are many insects that have secondary wings. If this is so, why did I need to &#8220;lose&#8221; mine? It is hard to understand why these people do not try to understand reality. Actually, God created me with one pair of wings and two organs to help with balancing. These organs have nothing to do with mutations, adaptation, selection or evolution. Although my ancestors did mutate at times as all living things have done, we have never changed or evolved. Some of us are weak and some are strong; this is a rule of God. This rule is necessary for the ecological balance to be maintained. Some flies will be food for other living creatures, while some will survive to produce more flies. I have not heard of any other flies evolving into a new living creature.</p>
<p>I can fly better than you. You have imagination and knowledge, and you have the ability to improve yourselves, yet you still have not been able to invent a machine that can fly as well as I can. I can turn a somersault in a tight space. I can walk on the ceiling. I can sense the approach of your hand. I can take off so easily that I do not even need a &#8220;runway&#8221; like airplanes do before taking off. Airplanes can be used for destroying other things, but us flies help to build a better world. My Creator (God) has given me coordination in flight; I do not crash into other things and do not cause any damage while flying. The Qur&#8217;an (22:73) says: &#8220;Oh mankind! A parable is set forth, so listen to it: Surely, those whom you invoke, apart from God, will never create a fly even if they combine together for the purpose. If the fly takes something from them, they cannot rescue it from him.&#8221;</p>
<p>The Qur&#8217;an is a miraculous book; yet, unfortunately some people do not understand this yet. Even if all human beings were to work together, they would not be able to build a small &#8220;fly&#8221;. If I take something from you, you cannot get it back from me. For example, when I snatch a piece of your food, I simply pour digestive enzymes on it and it melts. These enzymes break the food into pieces and make them liquid. Then I am able to drink this liquid. Well now, it would be impossible for you to convert this food back to its original form. Let me show you my nutrition cycle on the right.</p>
<p>When someone mentions the words &#8220;flight and insect&#8221;, it is most normal to think of only one insect, the common house fly, but there are in fact many species of flying insects: approximately 90,000. Since we have wings, we are all called &#8220;diptera&#8221;. There are many of us on the earth; from this one can conclude that there will be useful as well as harmful insects among us. Some of our friends take pollen from flower to flower, making honey for you to eat. We eat a variety of foods; some eat meat, some eat vegetables, while others eat fruit.</p>
<p>My friends and I who belong to the Musca type are the most frequently encountered flies in your neighborhood. We, like the other species of flying insects, increase our reproduction rate with increases in temperature. We produce large numbers of eggs. The maggots that you see in rotten food are in fact my larvae. The female fly leaves her eggs on the food you leave out in the open. These eggs hatch in a few days, the time being longer or shorter depending on the temperature. The larvae have a great appetite for everything and they grow fast as they eat everything they encounter. Then they enter a dormant period and retreat into cocoons. After a short while, they come out with bodies that are totally different anatomically. If you were to tell this to someone without a great deal of know-ledge, they would never believe that these crawling larvae will turn into flying creatures one day. It is hard to predict or understand such a huge change. There lies a great wisdom in both our forms. For example, if we did not exist, only bacteria would be able to help decay the dead and this would take too long. But, thanks to my larvae and their presence everywhere in large numbers, this process is completed in a matter of few days. Due to their speedy consumption of decaying matter, maggots have been used often in medicine. They have been used to get rid of decaying tissue on the wounds that aren&#8217;t healing, and in this way they speed up the healing process.</p>
<p>Now, I also want to remind you of an unfairness that you do to me and all other flies. As you know, our eggs develop and spread fast during the warm summer season; each of us can produce hundreds of eggs. We go all over the place to find food and sometimes we find it in your trash or in animal droppings. Those who see us in these places mistakenly accuse us of carrying and spreading disease. But the reverse is true; we consume the germs that spread quickly in hot weather. These germs grow on food all by themselves, we don&#8217;t produce them. Germs are living creatures too, and they use their abilities bestowed on them by God to grow everywhere. All we do is clean the environment by eating them as we feed. We are able to digest germs thanks to the strong digestive enzymes that we carry. Despite what is believed, I am a clean animal. I clean myself all the time, using the digestive enzymes in my saliva. If it weren&#8217;t for me, the germs would grow and spread faster.</p>
<p>I hope that from now on you won&#8217;t try to shoo me away when you see me on your hand. Instead, I hope that you will watch how I move and observe me more closely; witness the fine art in me. When you think about me, consider what I have told you. Don&#8217;t you think that you should change your opinion about me?</p>
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