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	<title>spiders &#8211; Fountain Magazine</title>
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		<title>Is That a Spider Riding a Balloon?</title>
		<link>https://fountainmagazine.com/all-issues/2021/issue-142-jul-aug-2021/is-that-a-spider-riding-a-balloon/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Jul 2021 00:06:24 +0000</pubDate>
				<category><![CDATA[Issue 142 (Jul - Aug 2021)]]></category>
		<category><![CDATA[electric fields]]></category>
		<category><![CDATA[entomology]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[Silk threads]]></category>
		<category><![CDATA[spiders]]></category>
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					<description><![CDATA[In 1832, 100 km off the coast of Argentina, Charles Darwin observed numerous tiny crimson spiders, sized 2-3 mm, riding the breeze from the sea and then sticking onto the ropes and sails of the HMS Beagle, the ship on which he was touring around the world. He wondered how it would be possible for [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-7150" src="https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b.jpg" alt="Is That a Spider Riding a Balloon?" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2021/07/06-14b-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>In 1832, 100 km off the coast of Argentina, Charles Darwin observed numerous tiny crimson spiders, sized 2-3 mm, riding the breeze from the sea and then sticking onto the ropes and sails of the HMS Beagle, the ship on which he was touring around the world. He wondered how it would be possible for so many spiders to reach a vessel as a group that was very far from land. Darwin realized that these insects, which lived on land and did not have any apparent wings, were able to use tiny but extremely strong silk threads as sails or balloons to glide on wind.</p>
<p>These tiny insects could fly up to an altitude of approximately 4,000 meters using this method. The chemical processes involved in the production of the silk threads that are hardly visible to the eye, but are stronger than steel, are a mystery. While we are still unable to manufacture such advanced threads with all our technology, 45,000-50,000 species of spiders known to humankind can easily produce such threads with different characteristics in conformity with their nutrition, movement, and reproduction styles since the day they are created. They use these threads to set their traps for hunting, to build their nests, or moving around by hanging in midair. These diverse silk threads are synthesized from the amino acids in the special silk “laboratories” in the abdomens of spiders.</p>
<p>In order to find new habitats, these tiny spiders climb upwards until they reach the uppermost tip of a branch or leaf and start to release a silky thread like a kite in the direction of the breeze before they take off. They cling to these threads and start to glide through the air as if they are water skiing or paragliding. In this manner they can travel for hundreds of kilometers and, depending on air currents, they may reach altitudes of 500 meters or even 4,000 kilometers. The widespread explanation is that the dragging or lifting force of the wind can help the spider attached to such threads rise in the air. However, existing aerodynamic models fail to fully explain the ballooning mechanisms [1]. Another model proposed uses electric charges in the atmosphere to explain ballooning [2].</p>
<h2>The miraculous thread that collects electricity</h2>
<p>Amazingly, it has been found that spiders are equipped with the ability to detect electric fields and produce a thread that is charged by electric fields and operates similar to that of a battery. According to the research, the spider produces the special threads that are suitable for the ballooning effect with its sensitive receptors. The spider can also determine the wind direction and force with its mechanosensory hairs and eventually, electric driving force that is sufficient for ballooning is created [3].</p>
<p>In this case, physicists disagree over the main driving force affecting the silk thread: aerodynamic drag caused by the wind; or atmospheric electrostatic force. Based on Darwin&#8217;s observations and estimates, the physical force required for ballooning used to be attributed to the aerodynamic drag at the wind speeds less than 3 meters per second since then, but the extent to which electrostatic forces contribute to the ballooning was never tested.</p>
<p>Several problems arise when only aerodynamic drag is used to explain the ballooning process. For instance, in some species, the spider spreads out several silk threads and glues them together to form a fan or web that functions like a balloon. Some other species of spiders are observed to hold on to silk threads separately in order to move around in light breezes. The effects of an electrostatic force repel these threads so that they do not stick to each other. There are also questions about how spiders can release silk threads for ballooning at high speeds despite low wind speeds.</p>
<p>When the mechanism of silk production is examined it is seen that an external force is needed in order to pull the thread out of the pores of the gland during their production. In this case, how is high acceleration, which is required for the initial take-off, achieved when wind speeds are low? Despite reports that thermal air currents and temperature gradations function as a driving force on hot days, ballooning has been observed also on cloudy and rainy days. Models that take into consideration all the conditions such as humidity, temperature, and wind speed have been made but there are still issues that need to be addressed.</p>
<h2>Is the spider versed in physics?</h2>
<p>The role of electrostatic forces in helping spiders take off has been suspected but has yet to be tested. Eventually, experiments conducted by scientists from the University of Bristol confirmed in a study that spiders both detected electric fields and used them to launch themselves into the air [4]. When they sense a suitable wind spiders climb to the tip of a leaf where the electric charge is highest. They then level their legs, raise their abdomens upward, and start to release the silk thread. As the thread reaches a sufficient length the electric charges of the atmosphere starts to pull. The counteracting force from the earth starts to push the non-conducting thread and thus causes the spiders to take off.</p>
<h2>Electric field</h2>
<p>The distribution of the electric field in the atmosphere is related to a number of biological systems. For instance, bumblebees can detect the electric fields between them and flowers. Honeybees can use electric charges to communicate within their hives. How widespread is the ability to detect and use electrostatic forces among the organisms living on land? The silk produced by spiders is known as a strong insulator; Michael Faraday used it for the first measurements of electrostatic charge, and it was found that this silk collected a net negative charge.</p>
<p>The next question is to ask how these electric fields are formed. The earth is loaded with negative electric charge and the upper parts of the atmosphere are loaded with positive charge due to thousands of storms that occur every day. This atmospheric potential (voltage) gradation between the earth and the sky exists also on sunny days, albeit at a lower degree compared to stormy days. This event can hardly be brushed over as a simple flight of spiders as it involves more wise purposes than meets the eye.</p>
<p>Scientists have discovered that a spider can sense electrostatic forces and determine whether there are suitable conditions for take-off, and even control its altitude during flight, thanks to the special receptor hairs on its legs (trichobothria). The mechanisms involved in adjusting the thickness and length of the thread through the opening and closing of the silk-secreting nozzles, preparing the amino acid mixture in the correct sequence, and releasing the mixture, which is initially in a liquid form but hardens upon contact with air, are so complex that they cannot be found even in modern nylon yarn production plants.</p>
<p>Tens of parameters, such as the ones listed above, have to be created thoroughly, at the perfect time, in the required quantities, in the required order, and without fail in order for spiders to travel through the air using a parachute- or sail-like system, which they perform as if they were specially trained for that. There are such knowledge, power, will, and wise purpose involved in all these activities that they cannot be attributed to mere chance.</p>
<h2>References</h2>
<ol>
<li>Humphrey J.A.C. (1987). Fluid mechanic constraints on spider ballooning. Oecologia. 73: 469–477.</li>
<li>Gorham, P.W. (2013). Ballooning spiders: the case for electrostatic flight. Archiv, archiv:1309.4731v, arxiv.org/abs/1309.4731.</li>
<li>Morley, E.L. and Robert, D. (2018). Electric Fields Elicit Ballooning in Spiders. Curr Biol. 28(14): 2324–2330.e2</li>
<li>Ibid.</li>
</ol>
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		<title>Spider Silks</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-131-sep-oct-2019/spider-silks/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Sep 2019 21:48:48 +0000</pubDate>
				<category><![CDATA[Issue 131 (Sep - Oct 2019)]]></category>
		<category><![CDATA[artificial]]></category>
		<category><![CDATA[cloth]]></category>
		<category><![CDATA[dragline]]></category>
		<category><![CDATA[entomology]]></category>
		<category><![CDATA[fibers]]></category>
		<category><![CDATA[formation]]></category>
		<category><![CDATA[gluey]]></category>
		<category><![CDATA[manufacture]]></category>
		<category><![CDATA[people]]></category>
		<category><![CDATA[produced]]></category>
		<category><![CDATA[proteins]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[scientists]]></category>
		<category><![CDATA[silk]]></category>
		<category><![CDATA[silks]]></category>
		<category><![CDATA[spider]]></category>
		<category><![CDATA[spiders]]></category>
		<category><![CDATA[synthetic]]></category>
		<category><![CDATA[thread]]></category>
		<category><![CDATA[threads]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2019/issue-131-sep-oct-2019/spider-silks/</guid>

					<description><![CDATA[The parable of those who take to them other than God for guardians (to entrust their affairs to) is like a spider: it has made for itself a house, and surely the frailest of houses is the spider&#8217;s house. If only they knew this! (Qur’an, 29:41) A prehistoric Greek fairytale says a young girl named [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img decoding="async" class=" size-full wp-image-6764" src="https://fountainmagazine.com/wp-content/uploads/2019/09/08-565.jpg" alt="Spider Silks" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2019/09/08-565.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2019/09/08-565-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/09/08-565-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/09/08-565-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/09/08-565-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<blockquote>
<p><em>The parable of those who take to them other than God for guardians (to entrust their affairs to) is like a spider: it has made for itself a house, and surely the frailest of houses is the spider&#8217;s house. If only they knew this! </em>(Qur’an, 29:41)</p>
</blockquote>
<p>A prehistoric Greek fairytale says a young girl named Arachne was a superb spinner and knitted the most gorgeous cloth. She dared the goddess Athena to a competition. When Athena saw Arachne’s stunning work, she ripped the cloth and hit the young girl. Disgraced, Arachne committed suicide by hanging herself. Athena regretted and transformed Arachne into a spider, so that she could whirl repeatedly and endlessly. Arachnida is the scientific name for spiders. It comes from the young girl in the famous Greek fairytale.</p>
<p>Although usually feared and disliked by people, spiders in fact make life easy for us by feeding on mosquitoes, flies, and locusts, thus saving our crops and eliminate the need for man-made insecticides which pose environmental problems. Besides, spiders are much less dangerous than people think they are; most spiders are keen to avoid interaction with people and will bite only when wounded or scared. Even poisonous spiders are rarely as dangerous as popular myths would have us believe: though black widows are poisonous, and their bites painful, they rarely kill people. If handled properly and quickly the adverse consequences of a black widow’s bite typically diminish in a few hours, and, after a couple of days’ rest or cessation of activities, the victim will fully recuperate [1].</p>
<p>There are countless features of spiders. But their silk is exceptionally unique and this article covers its various aspects.</p>
<h3>Spider silk</h3>
<p>Biomaterials, having developed over millions of years, frequently surpass man-made substances in their properties. Spider silk is an exceptionally stringy biomaterial which is made almost completely of substantial proteins. Silk fibers have stretchy powers similar to steel and some silks are practically as elastic as rubber on a weight-to-weight basis. In uniting these two properties, silks disclose a hardiness that is two to three times that of artificial fibers like Nylon or Kevlar. In addition, spider silk is also antimicrobial, hypoallergenic, and completely biodegradable [2].</p>
<p>The power of spider silk, so fragile in manifestation, is astonishingly great. A filament can be outstretched as much as one half its normal length before breaking, and has a tensile strength exceeded only by fused quartz fibers. Fine fibers are sturdier than others, the power to some degree depending on the velocity with which they are pulled out of the spider&#8217;s body. The higher the speed, the superior the strength.</p>
<p>Most of the silken fibers are not single fibers but are made up of two or more strings. A thread may be as fine as a millionth of an inch in width but, frequently, it is ten or twenty times as dense, and the assemblage of these threads unsurprisingly creates larger threads of a diversity of thicknesses. Furthermore, some threads are gluey whereas others are not.</p>
<p>Scientific research demonstrates that a single thread of spider silk, thick as a pencil, could stop a 747 Jumbo Jet in flight, and that on an equivalent footing, the spider’s silk is stronger than steel, per unit weight. It has been shown that the dragline silk of the golden orb spider is one of the planet’s hardest threads.</p>
<p>Spiders employ silk for webs, but also for trap lines, draglines, ballooning lines, for egg pouches and nursery nets, for compartments in which to sleep through winter or to copulate, and for entrapping and wrapping their victims. Silk for all these objectives is not accomplished with one kind of gland; there are at least seven distinct kinds. A few distinctive spiders have as many as six kinds and probably have more than six hundred independent glands; others have fewer than this [1].</p>
<h3>Mechanism behind the formation of spider silk</h3>
<p>A batch of scientists headed by researchers from the RIKEN Center for Sustainable Resource Science (CSRS) have scrutinized spider silk and discovered that a formerly undiscovered organizational constituent is critical to how the proteins form into the beta-sheet conformation that gives the silk its extraordinary power [3]. If humans can cultivate equivalents to spider silk, they could be applied in industrial and medical applications. It is well-known that the beta-sheets in spider silk are significant to its strength, but how the sheets are created is scantily comprehended, making it difficult to produce synthetic variations. It is hard to comprehend the process: the silk is originally produced as soluble proteins, which very swiftly crystalize into a solid form.</p>
<p>To explain this, the CSRS scientists obtained silk proteins using genetically altered bacteria that can generate silk from a golden orb-web spider (Nephila clavipes) and then executed multifaceted examinations of the soluble proteins. They discovered that the reiterating area is comprised of two designs – unsystematic spirals and a design called polyproline type II helix. Their investigations confirmed that the polyproline type II helix is critical for the creation of the stiff construction, which can then be rapidly converted into beta-sheets, letting the silk be swiftly intertwined. Fascinatingly, it was discovered that pH – which is supposed to be significant for the molecular exchanges of the N- and C- terminus areas – does not play a significant role of the foldup of the recurring areas, and that it is rather the elimination of water and mechanistic forces through the silk gland. </p>
<p>According to Keiji Numata, who is a project leader of JST ImPACT and led the research group, “Spider silk is a wonderful material, as it is extremely tough but does not contain harmful substances and is readily biodegradable, so it does not exert any harmful load on the environment” [4]. Numata hopes that this discovery may lead to the production of artificial silk that will prove useful for society.</p>
<h3>Analysis of silk</h3>
<p>The silk itself is a material identified as a “scleroprotein.” When created in the glands it is a fluid; only when dragged outside the body does it solidify into thread. Once it was believed that contact with air produced the toughening, but it currently looks that the drawing-out activity alone is accountable for the change.</p>
<p>To carry out the exertion done by the glands, a spider is armed with spinnerets, usually six in number. These are as accommodating as fingers; they can be prolonged, compacted, and overall be applied like human hands. In the “spinning field,” where the spinnerets are congregated, single threads are joined into numerous compound threads, and some of the dehydrated threads may be covered with a gluey substance. Thus, a completed thread may be thin or thick, dry or sticky. It may also have the look of a bead-trimmed necklace. For the last kind, the spider spins rather unhurriedly and, drawing out the gluey thread, lets it go with a jolt. The liquid thus is organized in beads spread out lengthwise across the completed line.</p>
<p>The strand known as the dragline may be understood as a spider&#8217;s “life line” because it performs as a lifeguard in all kinds of situations. The dragline goes along with the spider, no matter where or how far it journeys, winding out from spinnerets at the back of the body. It forms a portion of the building of webs, it grips its tiny builder firmly in problematic places, and it helps in absconding from adversaries. When a spider is inactive in a web, the dragline enables a rapid descent and escape. It allows energetic chasing spiders to jump from buildings, cliffs, or any tall position with absolute security. [1]  </p>
<h3>Benefits of spider silk to us</h3>
<p>The silk of the silkworm could be very profitable and marketable. There are, however, challenges. One is the changing thickness of a spider’s strand; the other is that it doesn’t well endure the interweaving process. Housing and feeding large numbers of silkworms is not difficult. But housing and feeding large numbers of spiders? There are enormous difficulties.</p>
<p>Native inhabitants of New Guinea have used spider silk in a variety of conditions. They make fishing nets, traps, and such objects as bags, headdresses that will keep away rain, and caps. These are not formed from single threads but from tangled, warped threads. The aboriginals of North Queensland, Australia, look to spiders for their angling supplies.</p>
<p>Spider silk has been valuable to the manufacturers of such complex instruments as astronomical telescopes, guns, and engineers’ levels. The threads, being exceedingly fine but nonetheless robust, are outstanding for sighting marks. Throughout the Second World War, there was a significant demand for spider thread for surveying and laboratory instruments. Black widow spiders were utilized for the manufacture of this silk.</p>
<p>One drawback to the use of spider silk in industry is that it might slump in a moist environment. To overcome this problem, strands of platinum or etching on glass plates take its place in such instruments as periscopes and bombsights. [1]</p>
<p>Spider’s silk also might have healing properties. Due to its antibacterial properties and because the silk is abundant in vitamin K, it may be efficient at clotting blood. Because of the problems in obtaining and handling extensive amounts of spider silk, the largest known piece of cloth made of spider silk is an 11 by 4-foot (3.4 by 1.2 m) fabric made in Madagascar in 2009. Eighty-two persons labored for a period of four years to gather over one million golden orb spiders and extract silk from them. [5]  </p>
<h3>Applications of spider silk</h3>
<p>As mentioned, human beings have been using spider silk for thousands of years.</p>
<p>The manufacture of contemporary synthetic super-fibers such as Kevlar (bulletproof material) includes petrochemicals, which adds to pollution. Kevlar is also strained from concentrated sulphuric acid. In comparison, the manufacture of spider silk is totally ecologically sustainable.  It is created by spiders at ambient temperature and pressure and is strained from water.  Furthermore, silk is totally biodegradable. If the manufacture of spider silk ever becomes industrially practical, it could be a substitute for Kevlar and be used to create a varied extent of articles such as: bulletproof vests, wear-resistant lightweight clothing, ropes, nets, seat belts, parachutes, rust-free boards on motor vehicles or boats, biodegradable bottles, bandages, surgical thread, artificial tendons or ligaments, and backings for weak blood vessels. [6] </p>
<h3>Synthetic spider silk [5]</h3>
<p>Duplicating the multifaceted settings needed to make threads that are similar to spider silk has been difficult to both research and manufacture. Through genetic engineering, <em>Escherichia coli</em> bacteria, yeasts, plants, silkworms, and animals have been utilized to produce spider silk proteins. Yet, these synthetic threads have diverse, simpler features than those of a spider. Manmade spider silks have lesser and unsophisticated proteins than natural dragline silk, and have subsequently half the diameter, strength, and flexibility.</p>
<p>One tactic is to remove the spider silk gene and utilize additional life forms to generate the spider silk. Canadian biotechnology company Nexia effectively produced spider silk protein in transgenic goats that passed the gene for it; the milk made by the goats comprised noteworthy amounts of the protein: 1-2 grams of silk proteins per liter of milk. To make spider silk, Nexia utilized damp whirling and pressed the silk protein across minor extrusion cavities in order to mimic the performance of the spinneret, but this process was not adequate to duplicate the sturdier characteristics of innate spider silk.</p>
<p>In March 2010, investigators from the Korea Advanced Institute of Science and Technology was able to produce spider silk by means of the bacteria <em>E. coli</em>, altered with definite genes of the spider Nephila clavipes. This tactic removes the necessity of milking spiders.</p>
<p>It should be noted that the manufacture of spider silk is not easy and there are intrinsic difficulties. First of all, spiders cannot be cultivated like silkworms since they are flesh-eaters and will merely eat each other if in proximity to each other. The silk produced is very slight, so 400 spiders would be required to make only one square yard of cloth. The other problem is, silk also toughens when subjected to air, which makes working with it problematic.</p>
<p>A different tactic is to study how spiders whirl silk and then replicate this process to make artificial spider silk. The silk itself would also have to be synthetically produced. Chemical production of spider silk is not feasible at present due to the absence of information about the makeup of silk. Randolph V. Lewis, Professor of Molecular Biology at the University of Wyoming in Laramie, has introduced silk genes into <em>Escherichia coli</em> bacteria so that the recurring sections of spidroin 1 and spidroin 2 efficaciously come to form. Others theorize about the likely gene introduction into fungi and soya plants. It may also be possible to modify the silk genes for precise intentions. </p>
<p><strong>Why a spider’s house is the frailest of houses</strong></p>
<p>Spider silk is stronger than steel, but the Qur’an (29:41) states that the flimsiest of houses is the spider’s house. The per unit weight of the dragline silk of the golden orb spider is one of the world’s hardest fibers. Webs are combinations of many kinds of spider silk, all able to be produced by the same spider. The web radials are strong, but the somewhat feebler circumferential (quasi-circular concentric) fibers are flexible and gluey to absorb the energy of a flying insect and hold it in place. The strongest of all is the fiber, which the spider uses for transport, the dragline silk. In summary, the spider fabricates both sturdy as well as feeble fibers and the web it weaves to catch flying insects is weaker; this may be the reason why it is referred to in the Qur’an as the “frailest” of houses.</p>
<h3>Conclusions</h3>
<p>Scientists are foreseeing many potential uses for biosilk. Textile usages are noticeable one. The flexibility and potency of prevailing merchandises such as spandex and nylon have to be improved. Since it is lightweight, hardy and flexible, biosilk may also have uses in satellites and aircraft. More prominently, the new group of progressive things that spider silk investigation may cause has the prospective to alter our lives in innumerable manners that we can barely imagine. More than 72 years have passed since the inventions of Wallace and Carothers that gave the world nylon that led us into the age of polymers. Artificial spider silk may help produce super-performing clothes of the future. Earthquake resistant suspension bridges hung from cables of synthetic spider silk fibers may someday be a reality. [1]</p>
<h3>References</h3>
<ol>
<li>Syed, I. B. : Spider Silks <a href="http://www.irfi.org/articles/articles_1_50/spider_silks.htm">http://www.irfi.org/articles/articles_1_50/spider_silks.htm</a></li>
<li>Romer, L and Scheibel, T.: The elaborate Structure of spider silk, PRION, Oct-Dec. 2(4) 154-161, 2008. <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2658765/">https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2658765/</a></li>
<li>RIKEN Center for Sustainable Resource Science (CSRS). Scientists discover key mechanism behind the formation of spider silk. Materials Science. May 29, 2018, <a href="https://phys.org/news/2018-05-scientists-key-mechanism-formation-spider.html">https://phys.org/news/2018-05-scientists-key-mechanism-formation-spider.html</a></li>
</ol>
<ol start="4">
<li>Nur Alia Oktaviani, Akimasa Matsugami, Ali D. Malay, Fumiaki Hayashi, David L. Kaplan, Keiji Numata, “Conformation and dynamics of soluble repetitive domain elucidates the initial β-sheet formation of spider silk”, Nature Communications, 10.1038/s41467-018-04570-5 <a href="https://en.wikipedia.org/wiki/Riken">https://en.wikipedia.org/wiki/Riken</a></li>
<li>Service, Robert F. (18 October 2017). “Spinning spider silk into startup gold”. Science Magazine, American Association for the Advancement of Science. Retrieved 26 November 2017. <a href="https://en.wikipedia.org/wiki/Spider_silk">https://en.wikipedia.org/wiki/Spider_silk</a></li>
<li>Vivienne Li, University of Bristol, Spider Silk and Venom. Molecule of the Month &#8211; July 2002. <a href="http://www.chm.bris.ac.uk/motm/spider/page4.htm">http://www.chm.bris.ac.uk/motm/spider/page4.htm</a></li>
</ol>
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		<title>Your sleep shapes your hair</title>
		<link>https://fountainmagazine.com/all-issues/2011/issue-79-january-february-2011/your-sleep-shapes-your-hair/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sat, 01 Jan 2011 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 79 (January - February 2011)]]></category>
		<category><![CDATA[Bacterial guests]]></category>
		<category><![CDATA[body]]></category>
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		<category><![CDATA[study]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2011/issue-79-january-february-2011/your-sleep-shapes-your-hair/</guid>

					<description><![CDATA[1- Your sleep shapes your hair Original Article: Akashi M. et al., PNAS 107, 15643 (2010). Feeling sleepy during the day after a long flight? Internal body clock genes are to blame. Circadian (Latin: “around” “the day”) rhythm genes take part in a time dependent cycling of an organism to carry out daily physiological processes. [&#8230;]]]></description>
										<content:encoded><![CDATA[<h3><b>1- Your sleep shapes your hair</b></h3>
<p><em>Original Article: Akashi M. et al., PNAS 107, 15643 (2010).</em></p>
<p>Feeling sleepy during the day after a long flight? Internal body clock genes are to blame. Circadian (Latin: “around” “the day”) rhythm genes take part in a time dependent cycling of an organism to carry out daily physiological processes. These signals include very basic needs such as feeling sleepy at nighttime and waking up during the day and repeats about every 24 hours. Malfunctioning circadian rhythm genes are implicated in several sleep disorders. According to a recent study done by Makoto Akashi and his colleagues at Yamaguchi University in Japan, hair follicle cells were found to closely follow the gene expression pattern of the internal circadian rhythm of the human body. Gene expression patterns can be extracted from hair follicles from pulled hair. Studying the circadian rhythm genes and expression profiles has been quite an inconvenience for researchers up until now. This study provides a new alternative method for tapping into this machinery. Don’t be surprised if you are asked for a couple of hairs pulled from your scalp if you go to a doctor complaining about your sleep disorder in the future. This method could have implications in the field of diagnostic medicine as a less invasive method for diagnosing problems since it allows us to conveniently gain access to the gene expression profiles of a person. We are not at a stage where we can control our sleep cycle at our convenience, but this is a step towards facilitating our understanding of this mechanism.</p>
<h3><b>2- Western diet disturbs our bacterial guests</b></h3>
<p><em>Original Article: De Filippo C. et al., PNAS 107, 14691 (2010).</em></p>
<p>Did you know that there are 100 trillions of microbes living happily ever after in your gut? This is about 10 times as many cells as make up the whole human body. But, no need to panic, because the sole purpose of their presence is to serve us by aiding in our daily digestion, metabolism and improving our immune system overall. A recent study shows that our friendly inhabitants are drastically affected by the human diet. A research group at Meyer Children Hospital in Italy analyzed and compared the fecal microbiota of children from Europe to that of children from rural African village of Burkino Faso (BF). When they examined the diets of each group closely, they saw that the BF diet is rich in cereals, vegetables and legumes, whereas the European diet is usually rich in animal protein, sugar, starch, and fat. Thus, children from Africa typically have a high-fiber diet and the children from Europe have a low-fiber diet. Next, researchers characterized the gut microbiotas of each group from fecal samples. The results revealed that gut microbiota was drastically different between these groups. Interestingly, BF children had several types of bacteria that seem to produce substantial amounts of short chain fatty acids (SCFAs) as a result of fiber-rich diet. The high levels of SCFAs are known to result in high energy levels and an increased anti-inflammatory capacity. The fact that African populations have almost no non-infectious colonic diseases may be attributed to the enriched diversity of gut microbiota due to the high-fiber diet of African children. This study once again emphasizes the importance of a fiber rich diet and it becomes clear that the adoption of such a diet and refraining from fast food culture would be beneficial to all of us.</p>
<h3><b>3- Eat more, enjoy less </b></h3>
<p><em>Original Article: Stice E. et al., The Journal of Neuroscience 30, 13105 (2010).</em></p>
<p>Why do obese people tend to overeat? A new study suggests a vicious cycle stemming from an obese individual’s desire to compensate for reduced pleasure from food. Degree of pleasure derived from eating correlates with the amount of released dopamine, which is associated with food intake. The researchers studied 26 overweight and obese volunteers, who were subjected to fMRI brain scans to identify brain regions that became active as they sipped both sugary milkshakes and a flavorless liquid. Every participant was tested twice over a six month period. Participants who gained weight showed significantly less activation in response to the milkshake intake upon a six-month follow-up relative to their baseline scan and relative to participants who did not gain weight. According to these results intake of palatable food results in down regulation of D2 receptors, reduced D2 sensitivity, and decreased reward sensitivity, implying that overeating may contribute to reduced striatal responsivity. These results will likely be important in developing programs to prevent and treat obesity, and also help us understand why obesity typically shows a chronic course and is resistant to treatment. Here is another reason to eat less: to get more pleasure from the food we eat.</p>
<h3><b>4- Tough Malagasy spiders </b></h3>
<p><em>Original Article: Agnarsson I. et al., PLoS one 5, e11234 (2010).</em></p>
<p>There are 40,000 kinds of spiders. They have little bodies, but the webs that they knit with their long thin legs using the silk from their tiny bodies are examples of great talent. Among the 200,000 types of silk which spiders produce, each have different combinations of properties, such as stickiness, durability or thickness, etc. A recently discovered spider found in Madagascar has an even more amazing talent. This kind of spider with its 3–5 cm long body size can make a web that can cross a river 2.5 meters wide with the ends of the nets attached to trees on either bank of a riverside. These nets have been found to be the strongest biological material ever known. After careful measurement, it was discovered that these webs are 10 times stronger (350 MJ/m3) than Kevlar, which is the material used in bulletproof vest, and some threads become even more durable (520 MJ/m3), which means that this spider beats even the most talented scientists and engineers with its skinny small legs and tiny little brain by developing material which is more than ten times tougher. It is believed that these spiders need to have strong nets in order to bare the extreme weather conditions above the river and catch the bugs flying over the river. There are still investigations that have yet to be done in order to find out further properties of such webs. “Verily in these things there are signs for those who consider.”</p>
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		<title>Inspiring Story</title>
		<link>https://fountainmagazine.com/all-issues/2009/issue-71-september-october-2009/inspiring-story/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Sep 2009 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 71 (September - October 2009)]]></category>
		<category><![CDATA[A Moment for Reflection]]></category>
		<category><![CDATA[beautiful]]></category>
		<category><![CDATA[beauty]]></category>
		<category><![CDATA[bodies]]></category>
		<category><![CDATA[cover]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[dream]]></category>
		<category><![CDATA[heavenly]]></category>
		<category><![CDATA[life]]></category>
		<category><![CDATA[long]]></category>
		<category><![CDATA[mom]]></category>
		<category><![CDATA[parents]]></category>
		<category><![CDATA[running]]></category>
		<category><![CDATA[snake]]></category>
		<category><![CDATA[spider]]></category>
		<category><![CDATA[spiders]]></category>
		<category><![CDATA[started]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[webs]]></category>
		<category><![CDATA[wedding]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2009/issue-71-september-october-2009/inspiring-story/</guid>

					<description><![CDATA[from the memoirs of an inventor that lived long, long ago I especially love when the spider webs shine with the sunrise. The little water beads on them make an extraordinary scene in the early morning. Talking about spiders, how they make their webs is also another beauty. It still blows my mind that they [&#8230;]]]></description>
										<content:encoded><![CDATA[<blockquote>
<p><em>from the memoirs of an inventor that lived long, long ago</em></p>
</blockquote>
<p>I especially love when the spider webs shine with the sunrise. The little water beads on them make an extraordinary scene in the early morning. Talking about spiders, how they make their webs is also another beauty. It still blows my mind that they can make such long arches despite their tiny bodies. With the colorful designs on their bodies, spiders are the manifestation of beauty that penetrates even into the smallest holes of the earth. As I am talking about spiders, I would like to tell you a lovely memory of mine about how my admiration of them led me to the discovery of my life.</p>
<p>At the time, there was not much to do other than hunting and picking leaves and fruit. I wanted to do something else. For example, the skins that animals had on them were so fitting, flexible, and nice. We used to take them to put on ourselves; but they did not fit us. They did not cover our bodies totally, and they were stinky. I had a desire to come up with a new way of covering our bodies. I used to sit by the spiders and reflect on this idea a lot while watching them make their webs.</p>
<p>Unfortunately, not everyone was appreciative of the spiders and my interest in them. Whenever my father caught me watching the spiders, he used to mock me and reprimand me for being lazy. He always told me that we needed to get going to hunt something edible, in order not to sleep with empty bellies. You can imagine what torture it was for me to hunt. Killing something of beauty is not beautiful… I knew we had to eat to survive. But maybe I was not the right person to do the killing part. I could cook, I could pick fruit…</p>
<p>One day, when I was watching a spider, I saw a cocoon hanging down from the tree. That was it! The cocoon’s cover was what I was looking for: a large spider web woven densely enough to cover us up. You should have seen me when the idea first came. I couldn’t help but smile so broadly. It had been a long time since I had smiled such a joyous smile. I started running and climbed the hills. To get some rest, I watched the valleys below. Then, once again I took off, and soared down from the hill running; my arms wide open like a bird’s wings.</p>
<p>When I came home, empty-handed to be sure, my mother was not happy at all. “If you don’t want your dad to ruin your night, go and find something before he comes,” she said. Fortunately, I knew some trees that were in fruit just then. I rushed to gather from them to make everybody happy.</p>
<p>Later that night, I had a very scary dream. I was running, and then I suddenly fell into a pit where there was a long snake. The snake started to wind itself around me so that I was totally covered. Then I saw that there was a scorpion in the pit, but it could not approach me because of the snake. Frightened, I woke up screaming. My parents came in to check on me. After a second’s silence, my father said, “I told you not to watch those spiders too much.”</p>
<p>Although I was not really bothered, my parents were getting more and more concerned about me. I was growing to the age of marriage, and they wanted me to have sound spiritual health. The next day, we went to the respected man of God in the village for him to interpret my dream and to get some advice. He said, “The snake in your dream did not harm you. So, it is to be hoped that God will bless you with a cover that is going to protect you from worldly and heavenly harms.” This interpretation was definitely unexpected both by me and by my parents.</p>
<p>Soon after that dream, I talked about my inspiration to my mother, and she told me something invaluable. She said that our great great-grandparents had had beautiful things to wear before they came to this world. When they were sent down here, their beautiful clothes were ripped off. Now that I was thinking about making beautiful garments, maybe this was a heavenly message. Mom wanted me to keep this secret.</p>
<p>I did keep my hopes and inspirations secret, but I did not stop working on them. I was finally inspired by another creature: birds. They made their nests by weaving plants and branches together. That observation brought me to the brim of the discovery of my life, but I was not aware of it at the time.</p>
<p>One day, mom wanted to have a private conversation with me. She said that now I was not a girl anymore but a young woman it was time that I united my life with someone else’s. She said that the guests that had come a few days earlier had come to talk about that issue. They asked my parents for me. At first, I was perplexed to hear all this. I wanted to have some time to prepare myself for the idea. Not long after, the preparations for the wedding were underway, and I was very willing because of the person asking for me.</p>
<p>My groom was the man of God that had interpreted my dream. To suit his status, I wanted to wear something special on the day of the wedding, something never seen before. The days were running by too fast, and bothered by my inability to come up with that special thing, I started spending more time with the spider webs by myself. Mom thought that a gloomy state had befallen on me due to my prospective wedding. She tried to reassure me, calm me, but that was not the case at all. As my state persisted, my parents’ worries grew too. They did not want any trouble in this wedding.</p>
<p>Then one day, I received the first gift for my wedding, before the wedding actually happened. I was inspired to weave the leaves and stems of plants to cover myself just like the winding of that snake in my dream and the cocoon of the spider. With the joy of this heavenly gift, I quickly finished making my garment. This discovery was certainly a heavenly beauty that was sent to celebrate my wedding. With the new garment on me, I was so beautiful, and with the man of my life, I was so happy.</p>
<p><em>Seth Mette has a PhD in Aerospace Engineering and is currently working as a postdoctoral fellow at West Virginia University. He has a special interest in psychological fiction.</em></p>
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		<title>From the Spider&#8217;s Web</title>
		<link>https://fountainmagazine.com/all-issues/2008/issue-62-march-april-2008/from-the-spiders-web/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sat, 01 Mar 2008 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 62 (March - April 2008)]]></category>
		<category><![CDATA[chemical]]></category>
		<category><![CDATA[god]]></category>
		<category><![CDATA[house]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[insects]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[live]]></category>
		<category><![CDATA[lord]]></category>
		<category><![CDATA[order]]></category>
		<category><![CDATA[place]]></category>
		<category><![CDATA[prey]]></category>
		<category><![CDATA[protect]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[silk]]></category>
		<category><![CDATA[special]]></category>
		<category><![CDATA[species]]></category>
		<category><![CDATA[spider]]></category>
		<category><![CDATA[spiders]]></category>
		<category><![CDATA[thread]]></category>
		<category><![CDATA[threads]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2008/issue-62-march-april-2008/from-the-spiders-web/</guid>

					<description><![CDATA[Hello dear humankind, Many of you are frightened of us. You have even invented a disease called “Arachnophobia” (fear of spider). On the contrary, I do not inflict any harm on you, but rather help tidy up nature by catching harmful insects in my web. Particularly, when I remember the honorable task one of my [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Hello dear humankind,</p>
<p>Many of you are frightened of us. You have even invented a disease called “Arachnophobia” (fear of spider). On the contrary, I do not inflict any harm on you, but rather help tidy up nature by catching harmful insects in my web. Particularly, when I remember the honorable task one of my ancestors took part in, my eyes get misty with emotion: In order to save the Prophet Muhammad, peace be upon him, the Pride of the Universe and Humanity, from his enemies, our Lord commanded one of our ancestors to quickly make a web over the entrance of the cave they were hiding in, and this made the infidels stop searching for him there. This honor is enough for us until the Day of Judgment. And please, at least, remember this historical event and stop killing us wherever you see us.</p>
<p><span id="more-887"></span></p>
<p>Many of you mistake us for insects. We, the spiders, are different from the insects. The easiest way to differentiate us is to count the number of legs and the parts of our bodies. Insects have six legs, whereas we have eight; their bodies are made of three main parts, while our bodies consist of two parts, one being the head. Moreover, we are different with respect to the sizes and numbers of our eyes. The insects usually have two large compound eyes, whereas we have eight small simple eyes (the simplicity here does not mean ordinary, or lacking in art, it means uncomplicated, plain!).</p>
<p>Those who-in order to reject our Lord-seek a way out through the dead ends of the theory of evolution are stunned when they see the delicate embroidery art in my body and the trap strategy in my magnificent webs. Since they know that we do not have intelligence or conscience, they, helplessly, take refuge in a term called instinct. You can resemble these thinkers to the flies that fall into my trap; the more they struggle through reasoning, basing their theories on nature, or causality, or coincidence, the more entangled they become. In order to deny God, they give credit to some imaginative alternatives for the artwork that has been bestowed upon spiders and thus deceive themselves.</p>
<p>We can live in all continents, except Antarctica, and can survive in many climatic conditions, from deserts to rainforests. The reason that we are more common on oceanic islands than on continents is the special threads we use in our nets. We can use this thread like a parachute and can travel on the wind to far away lands.</p>
<p>One of our most important attributes, the merit of which is so valuable that it is mentioned in the Qur’an, is our silk thread gland that produces thread in various qualities. We use this silk-like substance, which is discharged from conical nipples on our abdomen, for numerous purposes. Most of us are granted with at least two kinds of silk glands, with different structures and secretions. And we are given the knowledge to use these threads for different tasks appropriate to their chemical composition. Since the flexibility, durability, thickness and adhesiveness of each type of thread is different, we use the right type for each task. We use some types of thread to build a web to trap prey, others for furnishing inside our homes, and still others to protect our egg or sperm sacks.</p>
<p>Although everyone knows about our thread, the bio-chemical process that takes place during its production is yet to be completely understood. Our thread, despite being thinner than one thousandth of a millimeter, is five times stronger than a steel string of the same thickness. And it can be stretched up to four times its length. Moreover, it is so light that, despite the great length required to go around the world, such a thread would only weigh 320 grams. My web occupies a large space in comparison to my size; but this appearance is deceptive. My real home is a small spot in the middle; the rest is a trap set up for flies. Now, despite being such a wonderful material, the Holy Qur’an, in the chapter named after me, states that “ The parable of those who take to them other than God for guardians is like a spider: it has made for itself a house, and surely the frailest of houses is the spider’s house. If they only knew this!” (Ankabut 29:41). Have you ever wonder about the inner meaning of this verse? If you have, you can see that it describes my house as being feeble and flimsy, but not the thread that made the house. That means, no matter how excellent is the material you have, if you do not use it in the right place, it is useless. My thread and my house that I build are adequate for me, working as traps for my prey. You might waste the highest quality materials if you use them to construct a building with poor foundations. That is to say, if a human being, equipped with the most wonderful qualities, chooses an invalid fallacious god for themselves, they waste the equipment bestowed upon them, such as intelligence, comprehension and conscience. What is worse, when they adopt a deity other than God, whatever they accomplish in terms of excellent scientific studies, discoveries, or inventions will all be wasted. The arguments of those who deny God might seem sound, but in reality they are fallacies, causing those who are not using their innate capabilities to fall into their traps. Of course, a miraculous book like the Qur’an can be read and understood from the perspectives of other sciences and thus can be understood in a variety of ways. Mine is just one. …</p>
<p>The production of my silk, which is stronger than either synthetic or natural fiber, is similar in part to the production process carried out in factories that manufacture thread. The protein called keratin that I use in silk production is a very common substance, found in human fingernails and hair, as well as in bird feathers, in horn, and in the scales of snakes. Even though the same amino acid is used by these creatures, our Lord, the Creator of all, has the knowledge and the omnipotence to turn the same protein found in your fingernail into silk in my glands.</p>
<p>The liquid silk material, discharged like a protein soup, passes through the ducts of a gland where the liquid is absorbed very rapidly and is then turned into acid by other cells via hydrogen atoms before being spurted out as silk. Once the densified proteins enter the acid pool they form links with one another and turn into thread. The bio-chemical reactions that take place in this process, which I have only explained very basically, vary, depending on the types of thread produced in the different glands; by using different processes different types of thread are produced.</p>
<p>My Lord, Whose mercy is endless, Who gave me all the things that I need to survive down to the smallest detail, has granted me six different manufacturing chambers. In each chamber the chemical substances, prepared as different formulas, are mixed in different proportions to suit my needs; in addition, the caliber of the orifices from which they are spurted and the pressure of the pumps are adjusted to the most appropriate levels to produce thread with different characteristics. Neither my knowledge, nor my ability is enough to comprehend the settings in the silk producing nipples located in my stomach. Nevertheless, the threads that I use for hunting are sticky, while others, by which I return to my home with my prey, are stronger and more flexible. Moreover, the other kinds of thread which I use to wrap my prey are straight and have the quality of becoming harder when movement occurs, while the other threads that I use for my egg sacks have an antibiotic to protect against germs, the ones that I use to go up and down are slippery, and finally the ones I use to lay the foundation of my house are thicker while the ones that I place within the nest are thinner. With graceful leg motions I bring all these threads to the right place and secure them there. I straighten some thread with a comb in my foot. The threads are coated with a liquid substance that protects against fractions in case of exposure to pressure.</p>
<p>A creature that is as small and helpless as I am would need to understand the order of the protein atom used, as well as the properties of pressure in order to protect against fractions, and comprehend the structure of the coating material and many other physio-chemical principles in order to produce these threads that have such excellent qualities. Since that is not the case (I do not have any such knowledge) and as the creation cannot be explained via some unconscious terms such as evolution, mutation, or natural selection, my Creator, the creator of all that I do, is Allah. Plastic surgeons have just started to use some types of spider threads in delicate operations on tendons and joints.</p>
<p>Although I do not have any architectural or engineering training that would help me to calculate where I have to secure my threads or to understand the angles between them, with Divine Guidance I am able to perform these tasks properly. Since I live mostly on insects, I am a very useful animal for you; by catching and destroying many insects I play an important role in the ecological balance. Otherwise, these insects would be overwhelming, not to mention the harm they cause to crops. In addition to this there are some interesting species of ours, which live on fish or even bird.</p>
<p>There are approximately thirty-five thousand species of spiders; of this only five hundred can be considered to be dangerous to humans. Even though all of us have poison glands, if we bite a human in general this only causes an itch. We do not deliberately come and bite humans. Even the most poisonous of us all, the black widow (Latrodectus mactans) is rarely fatal for human beings. This species, which builds a large web with a conical center, can hide around 250-750 eggs, wrapping them up with a silk cover. The females are three centimeters in size, while the males are only about one-fourth the size of the females. Once the females receive the sperm, they eat their males instantly before they can escape. Unlike many of us, the Tarantula (Lycosa tarentula), a spider that measures 2.5 centimeters and which belongs to the wolf spider family that is found in Europe, does not make webs; rather they catch their prey by chasing. They have strong venom as well, but contrary to the common exaggeration, this venom is not fatal. There is another species of tarantula in South America, but this spider belongs to a totally different family, the Theraphosa. The size of the main body of this spider is about 9-10 centimeters, and the distance between the legs is 25-30 centimeters. This large and hairy kind of spider is active at night. Some of them live in holes they have dug in the ground, while others build nests on trees. Even though they can be classified as harmless, their bites hurt. They kill small frogs, lizards, and even birds.</p>
<p>Most spiders live alone. A few of us make houses next to each other, and hunt together. Our hunting techniques are various. The Bolas spider (Cladomelea longipes) has incredible techniques for preparing and throwing bolas. Even though their sense of sight is poor, this species can feel the vibration of flying pigeons and they diffuse a special odor to attract their prey; once the prey has come close, the spider catches it with a sudden attack, paralyzing it with its poisonous bite and then wrapping it in special silk. This special silk has a quality that allows it to keep the wrapped prey fresh; thus, the food, which cannot be consumed in one meal, can be safely stored.</p>
<p>Species that live in the desert dig tunnels in the sand to protect themselves from the dreadful heat, and discharge a special excretion to stick the sand together. They also insulate the interior of the tunnel with silk threads to protect themselves from the heat outside. They make a special silk lid to the entrance of the tunnel and camouflage it with some sand. Then, by stretching their thin thread between some rocks and sticks nearby, they wait for their food. Since the daytime is so hot, they prey at night, waiting for insects to vibrate the threads they have placed.</p>
<p>There are other species, for example, the water spiders (Argyroneta aquatica). This species lives in the water and makes their nests in an air bubble on the water, from time to time traveling up to the surface and restocking the air under their stomach to pump it into their home underwater. Another species, called Dolomedes fimbriatus has legs that enables them to walk on the water and to live on fish. As it is the case with all kinds of Arthropoda (exoskeletal animals), we need to change our skins when we grow. Once the outer skeleton, made of ketone becomes hard, it impedes our growth. Because of that, from time to time, we shed this skin, and grow rapidly while our new skin is soft. Moreover, the legs, which are cut off due to various reasons, are renewed with the grace of God.</p>
<p>I could tell a lot more about my friends, but I think this is enough. I hope that from now on no one will attribute our artful of creation and behavior to evolution or coincidence. In fact, I do not expect such a thing from human beings, who have intelligence, conscience, and comprehension.</p>
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		<title>Spiders Expand New Horizons in Fiber-Optic Technology</title>
		<link>https://fountainmagazine.com/all-issues/2005/issue-49-january-march-2005/spiders-expand-new-horizons-in-fiber-optic-technology/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sat, 01 Jan 2005 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 49 (January - March 2005)]]></category>
		<category><![CDATA[enable]]></category>
		<category><![CDATA[environments]]></category>
		<category><![CDATA[fiber]]></category>
		<category><![CDATA[fibers]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[hunting]]></category>
		<category><![CDATA[light]]></category>
		<category><![CDATA[microscopes]]></category>
		<category><![CDATA[nanometers]]></category>
		<category><![CDATA[optic]]></category>
		<category><![CDATA[produce]]></category>
		<category><![CDATA[proof]]></category>
		<category><![CDATA[radius]]></category>
		<category><![CDATA[research]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[spider]]></category>
		<category><![CDATA[spiders]]></category>
		<category><![CDATA[technology]]></category>
		<category><![CDATA[thread]]></category>
		<category><![CDATA[tubes]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2005/issue-49-january-march-2005/spiders-expand-new-horizons-in-fiber-optic-technology/</guid>

					<description><![CDATA[Spiders, known to be horrifying animals to many, are recognized by us for their role in the ecological balance. If spiders were to be removed from the natural food chain, and thus, from the ecological balance, an explosion in the flea and insect populations would be inevitable. These masters of hunting are inspired with various [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Spiders, known to be horrifying animals to many, are recognized by us for their role in the ecological balance. If spiders were to be removed from the natural food chain, and thus, from the ecological balance, an explosion in the flea and insect populations would be inevitable. These masters of hunting are inspired with various hunting strategies. The spider is possessed with the ability to fabricate a web spun from a multi-featured thread, which it utilizes in hunting, defense, and reproduction. Some recent research projects have uncovered some significant features of the spider web; these are being employed in ways that will be beneficial to human life. The thin, elastic, durable thread that is capable of stretching up to three times its length which forms the spider web has been the subject of many research projects. One example of how these have been turned to use for human beings is the bullet-proof vests which are designed by imitating the formation of the spider web; these are superior to metal bullet-proof vests in terms of rigidity and weight.</p>
<p>Our Creator has solved every potential problem which living things might experience by creating one optimal solution among every alternative.These perfect solutions open new horizons for men, and they also act as guides in the development of science and technology. The book titled “Engineering in Nature” details many striking examples.1</p>
<p>In recent research, it has been discovered how the thread of a spider can contribute to fiber-optic technology. A crucial challenge in photonic technology is to produce the tiny optic fiber that is used as a conductor for a light beam in nano-scaled optic circuits. Yushan Yan, of the University of California in Riverside, has taken an important step forward in this technology by covering the thread from a spider web with a glass-like material and then removing the thread after the material has hardened. By utilizing this technique, it is possible to produce threads that are 1/50000th the diameter of human hair and that have a radius of 2 nanometers (1 nanometer being one billionth of a meter).</p>
<p>Not only will this discovery be applicable in photonic technology, it will also increase the resolution in optical microscopes, or, alternatively, these threads could be turned into nanoscale test tubes in a new breed of sensors that can suck up single molecules of a particular chemical.</p>
<p>A research group at the University of California cut a thread 1 centimeter long from the web of the giant spider of Madagascar, the Nepila Madagascariensis, and pasted the two ends of the thread to a card. Then they repeatedly dipped this thread into tetraethyl orthoslicate solution. After this, the thread that had undergone this process was dried and heated to a temperature of 420 Celsius. The string decreased by one fifth of its original radius and the process resulted in the production of tiny tubes with a radius of one micrometer.</p>
<p>There are plans to make use of the web of the Stegodyphus Pasifiu-a spider which uses a thread of a radius of 10 nanometers and which is found in the Middle East and Southern Asia. This will enable scientists to use thinner fibers. After heating, a thread with a radius of 2 nanometers is attained. Until this latest finding, it was only possible to produce fibers with an interior radius of 25 nanometers.</p>
<p>Fiber optic researchers do not hide their enthusiasm for this new simple and cheap technology. It is expected that it will be used in the field of supra-molecular chemistry; that is the study of very miniature environments. In these environments the reaction-speeds increase and completely different reactions occur. For such experiments carbon nano-tubes are being used at the present time. The tubes made from fibers obtained from spider webs will enable scientists to create more sensitive environments. It is also thought that it will be possible to create microscopes with a higher resolution by using tinier fiber optic catheters.</p>
<p>Such microscopes would be used to observe events that are shorter in duration than the wavelength of light, yet at the same time, these microscopes would not cause the sample to be harmed. Electron microscopes harm the sample since the features of the technology used necessitate this. Currently, these microscopes use a scope that has been made from very thin glass tubes. These fibers are relatively thick, measuring about 100 nanometers in radius. Yet, by means of this new technology, these new microscopes can be developed and biologists will have brand new opportunities to study events that have not been visible before. Surely, it is not possible to say that the immaculate biological structure and incredibly small thread employed by the spider can be explained by simply putting its creation down to chance or by stating that it is a product of nature.</p>
<p>These perfect examples that can be observed in nature will lead to fundamental changes in our understanding of the universe; they will enable great leaps in terms of making our life more comfortable and, most importantly, they will be helpful in realizing how the Divine Power and Art can be present together and be in harmony.</p>
<h3><b>References</b> </h3>
<ul>
<li>M. Sami Polatoz, Tabiatta Muhendislik [Engineering in Nature], Kaynak, Istanbul: 2003.</li>
<li>Danny Penman, Spiders Weave a Web of Light, New Scientist,</li>
<li>22 March 2003, p. 20.</li>
</ul>
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		<title>Spiders: Master Hunters</title>
		<link>https://fountainmagazine.com/all-issues/1996/issue-14-april-june-1996/spiders-master-hunters/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Mon, 01 Apr 1996 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 14 (April - June 1996)]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[hunting]]></category>
		<category><![CDATA[insect]]></category>
		<category><![CDATA[insects]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[poison]]></category>
		<category><![CDATA[prey]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[silk]]></category>
		<category><![CDATA[species]]></category>
		<category><![CDATA[spider]]></category>
		<category><![CDATA[spiders]]></category>
		<category><![CDATA[sticky]]></category>
		<category><![CDATA[water]]></category>
		<category><![CDATA[web]]></category>
		<category><![CDATA[webs]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/1996/issue-14-april-june-1996/spiders-master-hunters/</guid>

					<description><![CDATA[Spiders are a species of arachnids in the family of animals called anthropods. All spiders are predatory, feeding mainly on insects, and are very efficient hunters. Many (not all) weave webs or traps to catch their victims, then secrete a poison from behind their fangs to stun or even kill them outright. The spider’s web [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Spiders are a species of arachnids in the family of animals called anthropods. All spiders are predatory, feeding mainly on insects, and are very efficient hunters. Many (not all) weave webs or traps to catch their victims, then secrete a poison from behind their fangs to stun or even kill them outright.</p>
<p>The spider’s web is woven from a special silk. This is a fibrous protein first secreted as a fluid and then stretched into strands which, because of their strength and elasticity, are extraordinarily resistant to breakage.</p>
<p>Garden spiders (Arena diedemata) make their webs from two different silks. The threads of the main structure are woven from a strong silk which can be stretched further (by as much as 20%) but then loses its strength. By contrast, the other kind of silk, used between the main threads, is lighter and stickier and can be expanded three times without losing its original characteristics. Under a microscope drops containing a reserve of silk can be seen at intervals on these thinner ‘hunting silks’.</p>
<p>After its web is complete the spider hides out of sight, somewhere on the outer strands of the web. When an insect flies into the web and struggles, the spider is alerted by the vibrations and runs out. It rapidly contains the victim’s struggle to escape by tying it up with the silk set aside for this purpose in the drops: the elasticity of the hunting silks is vital in this task. While tying it up, the spider injects the victim with the poison from behind its jaws which both paralyses the insect and acts as a digestive juice softening up the now helpless corpse. The spider then goes on injecting and sucking back fluids until the soft parts of the corpse have been digested &#8211; any skeletal parts left over are simply discarded.</p>
<p>Spiders put their weaving skills to a number of different uses. As well as making the insect traps we call spider webs, they weave draglines’ that help them to locate themselves and to break their fall if they should slip. Small spiders spin a sort of ‘parachute’ thread that allows them to be carried on the wind.</p>
<p>Some species of spider make active traps. Menneus spins an elastic net between its legs and sweeps it through the air to catch passing insects. Cledomelea dangles from one leg a blob of sticky silk at the end of a long thread and swings it out to attach its prey. Trapdoor spiders (Ctenizidae) dig a burrow closed by a silken door; when an insect ventures near, the spider darts out to capture the imprudent victim.</p>
<p>Spider webs are beautiful, intricate constructions: threads which serve as scaffolding during the construction process are removed once the web, a mesh of sticky and non-sticky lines, has been completed. The skill of producing webs is clearly instinctive, but the irregularity and variety of web forms shows that the skill is adapted by individual species to serve different functions and suit different circumstances &#8211; some webs hang in the air to catch insects as they fly, others are laid across the ground, both at angles calculated (presumably by experience) to lure and intercept prey.</p>
<p>Recent research has shown that some A. Glomosus spiders use ultraviolet rays to attract their prey. In one experiment fruit flies (Drosophila) were set free between two webs lit up by a white beam. One web was that of a A. Glomosus spider and radiated ultraviolet rays; the other was not: the flies were attracted to the former</p>
<p>Another remarkable species are the Dolmedes spiders which have long legs (8-10 cm) and striped, brown bodies. They live near water ponds where they have learnt, despite having very poor sight, to catch fish. Their hunting-gathering technique is of awe-inspiring dexterity and patience, rivaling that of any human fisherman. First the spider walks around on the bank to pick a site suitable for laying a web. Once that is done, it waits patiently, standing partly on water and partly on land. A special sticky secretion helps secure its hold on the surface of the water. While waiting, it prepares its poison in its mouth. When a small fish happens by, the spider plunges forward to seize it, releasing its poison into the water as it does so. As the poison begins to work, the spider turns over making its own body a sort of float for the struggling fish, carries it to land and there consumes it.</p>
<p>Some species of spiders do not make webs to ensnare their prey. Instead, they actively pursue their prey or lie in ambush for it. They are endowed with specially keen sight or touch sense, used respectively for hunting in daylight or in the dark. The ambushing varieties are remarkably well camouflaged &#8211; the colour and shape of their bodies making them almost invisible against the immediate background of leaves or bark or stones and sand.</p>
<p>One of the night-hunting spiders of the Amazon jungle spends the day hiding in crevices or in holes in trees, emerging into the jungle at night to stalk its food. Its legs spread the width of a human hand and move with utmost stealth until, when near enough, the spider makes a sudden, final dash, seizing small mammals (humming-birds, for example), stunning them with its poison, then dragging and shaking them to death. The detestation and horror this species arouses in human beings is hardly justified &#8211; its poison is not more troubling to a human than a bee sting.</p>
<p>Reputation and significance</p>
<p>Spiders have a very negative image among human beings. Perhaps the number of legs, the grotesque facial expression, the hairiness of some species, the fact that they carry a poison, but most of all, the fact that they hide in corners and come out unexpectedly &#8211; have contributed to the spiders’ bad reputation. The poison of spiders, with just two exceptions (the ‘black widow’ and the ‘brown recluse’), is relatively harmless to humans.</p>
<p>Spider silk cannot economically be converted into silk cloth for human use. However, it has been used for the cross-hairs of optical instruments. More recently, the silk of the tropical species Nephila has been employed in the manufacture of bullet-proof jackets. The Nephila spin huge webs strung across trees, as long as 2 metres or more, and of a silk so strong and elastic that the local peoples make very effective fishing nets from it.</p>
<p>On balance, it is high time human beings overcame their irrational detestation of spiders. We should be grateful to them for all the good they do for us in preserving our persons and properties, especially our crops, against devastation by insects. One authority calculated the spider population of England and Wales as of the order of 2.5 billions at any one time. This means that if (at a most conservative estimate) each spider eats 100 insects a year, then the total number of insects consumed by spiders is 250 billions annually.</p>
<h3><em><b>REFERENCES</b></em></h3>
<p>‘Spiders’ Microsoft (R) Encarta. Copyright (c) 1994 Microsoft Corporation. Copyright (c) 1994 Funk &amp; Wagnall’s Corporation.</p>
<p>Buton, M. &amp; Buton, R. (1975) Enevlopedia of Insects and Arachnids, BPC Publishing Ltd, London.</p>
<p>Gerald, L. &amp; Wood, F.Z.S. (1982) The Guinness Book of Animal Facts and Feats, Guinness Superlative Ltd, London.</p>
<p>Waterson, AR. (ed.) (t975), Collins Enevlopedia of Animals, William Collins Sons &amp; Co Ltd, London and Glasgow.</p>
<h3><b>SPIDERS IN GUINESS BOOK OF RECORDS</b></h3>
<p><b>The largest and the heaviest spider:</b> The Guyanan ‘bird-eating’ spider (Theraphosa</p>
<p>blondi) of South America has long been credited with the ‘largest spider’ title. A male specimen with a leg-span of 254mm (10 in) and a body length of 89mm (3.5 in) weighed just under 57g (2 oz).</p>
<p><b>The smallest spiders </b>are the midget spiders (Symphytognathidae), the tiniest of which is the pale yellow Patu marplesi of Western Samoa, S.W. Pacific. A male specimen found in moss at an altitude of 610m (2000 if) measured 0.43mm (0.07 in), which means it is half the size of a full-stop on this page!</p>
<p><b>The largest spider webs</b> are the aerial ones spun by the tropical orb weavers of the genus Nephila. Several examples found in the Karrakpur Hills near Monghyr, central Bihar, India measured 1.5m (5ft) in diameter (about 4.79m (1 5ft 9in) in circumference) and had long supporting guy-lines up to 6.1 m (2Oft) in length.</p>
<p><b>The smallest webs</b> in the world are the aerial ones spun by midget spiders. That of the orb weaver Chasmoeephaion armaturn of New Zealand measures about 9-10mm (O.35-0.39in.) in diameter which means it is half the size of a small postage stamp.</p>
<p><b>The highest speed recorded for a spider on a level surface</b> is 53cm/s (1 .73ft/s) (= 1.90km/h; 1.18 miles/h) for a female house spider, Tegenaria atrica. This may not seem very fast, but the spider covers a distance equivalent to 330 times its own body length in ten seconds.</p>
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