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	<title>sensitive &#8211; Fountain Magazine</title>
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		<title>Gravitational Waves: A Universal Force</title>
		<link>https://fountainmagazine.com/all-issues/2018/issue-126-november-december-2018/gravitational-waves-a-universal-force/</link>
		
		<dc:creator><![CDATA[Haci Kerem]]></dc:creator>
		<pubDate>Thu, 01 Nov 2018 20:04:32 +0000</pubDate>
				<category><![CDATA[Issue 126 (Nov - Dec 2018)]]></category>
		<category><![CDATA[beams]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[collision]]></category>
		<category><![CDATA[detect]]></category>
		<category><![CDATA[difference]]></category>
		<category><![CDATA[discovery]]></category>
		<category><![CDATA[generated]]></category>
		<category><![CDATA[gravitational]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[interferometer]]></category>
		<category><![CDATA[laser]]></category>
		<category><![CDATA[ligo]]></category>
		<category><![CDATA[mechanism]]></category>
		<category><![CDATA[sensitive]]></category>
		<category><![CDATA[space]]></category>
		<category><![CDATA[sun]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[water]]></category>
		<category><![CDATA[wave]]></category>
		<category><![CDATA[waves]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2018/issue-126-november-december-2018/gravitational-waves-a-universal-force/</guid>

					<description><![CDATA[Gravitational waves can be defined as the vibration of space-time. Sky is an ocean in which the waves are stationary. When you throw a rock into the water, when a taut rope is plucked, when a spring is compressed and then released, or when our larynx vibrates, what forms is a wave. In each case, [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-6624" src="https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07.jpg" alt="Gravitational Waves: A Universal Force" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<blockquote>
<p>Gravitational waves can be defined as the vibration of space-time. Sky is an ocean in which the waves are stationary.</p>
</blockquote>
<p>When you throw a rock into the water, when a taut rope is plucked, when a spring is compressed and then released, or when our larynx vibrates, what forms is a wave. In each case, the medium where the wave forms is different: water, air, etc. Interestingly, light waves do not need a medium to travel.  A common feature of all kinds of waves is that they have wavelengths, frequencies and amplitudes. Another important feature they have is that there needs to be a source that triggers the wave. A spring, for example, needs to be compressed to produce the wave.</p>
<p><span id="more-5438"></span></p>
<p>Gravitational waves, on the other hand, can be defined as the vibration of space-time. These waves were predicted by Einstein in 1916 in relation to the general theory of relativity. Let us consider that all interstellar and intergalactic space is filled up with a substance similar to water. Then when, say, two black holes collide, space itself ripples like water. In fact, discussions have long continued over the existence of ether, a substance that forms the texture and essence of matter. If there are waves in space, then it is highly likely that there is ether that fills up space as well.</p>
<p>In a very interesting narration, the Prophet Muhammad, peace be upon him, is reported to have suggested that heavens are not a vacuum: “The sky is a wave held back” (Tirmidhi, Tafsir surah, 57/1). Bediuzzaman Said Nursi, in his interpretation of this hadith, says, “[Sky] is an ocean in which the waves are stationary” (<em>The Gleams</em>, Twelfth Gleam); in other words, heavens are a sea whose waves have settled, calmed and become still. The Qur’anic verse 36:40 reads “It is not for the sun to overtake the moon, nor does the night outstrip the day. All (the celestial bodies and systems) float (swim) in an orbit (determined for each).” We can infer from this verse that space is likened to a sea because floating or swimming can occur in a substance but not in a vacuum.</p>
<h3>The discovery of gravitational waves</h3>
<p>Gravitational waves were discovered by a team of experimental physicists on February 11, 2016, that is, exactly one hundred years after they were predicted by Einstein in 1916, and the discovery earned three physicists, Rainer Weiss, Barry C. Barish, Kip S. Thorne, the Nobel Prize in 2017. The LIGO observatory (<a href="http://www.ligo.caltech.edu/page/what-are-gw">www.ligo.caltech.edu/page/what-are-gw</a>) used an extremely sensitive interferometer to detect the gravitational waves produced by the collision of two black holes, one having 29 times the mass of the sun and the other 36, 1.3 billion years ago. The researchers used such a precise mechanism that it (the interferometer) could measure the distance to the nearest star to an accuracy smaller than the width of a human hair.</p>
<blockquote>
<p>The LIGO observatory used an extremely sensitive interferometer to detect the gravitational waves produced by the collision of two black holes, one having 29 times the mass of the sun and the other 36, 1.3 billion years ago.</p>
</blockquote>
<p>The working principle of an interferometer is based on the idea of splitting a laser beam from a single source into two components and then recombining them. The split beams get to the target at the same time after diverging at a right angle and being reflected back from two mirrors. Scientifically speaking, there is not any phase difference between the two. However, if the beams are subject to an effect like gravitational waves, the waves cannot get to the target at the same time, or in scientific terms, an interference pattern is formed on the screen because of the phase difference. In the same way, the waves generated by the collision of two black holes had an impact on the movements of the perpendicular laser beams as they ran past the area that housed the interferometer built by the LIGO team and caused a time difference in their arrival at the detector. In this experiment, the effect of the gravitational waves was measured by directing laser lights through L-shaped vacuum tunnels four kilometers long. The length of the tunnels was so precisely adjusted as to measure a difference, if any, as small as a proton.</p>
<p>The reason why the laser interferometer was so finely tuned is that the waves generated by two colliding black holes are so infinitesimally weak that only such an experimental mechanism could capture them. In other words, the experiment had to be precise beyond the atomic scale because the gravitational waves that reached the solar system could change the distance between the sun and the earth by just the size of an atom. To reiterate, the mechanism was designed so precisely that it can detect differences between laser beams as short as ten-thousandths the size of a proton. It should be remembered that a proton is a very, very small particle in the nucleus of an atom with a diameter of 10<sup>-15</sup> (one-million millionth) of a millimeter.</p>
<p>Furthermore, the gravitational waves were discovered simultaneously by two separate interferometers, which were located at a distance of 3220 km from each other. The reason for the dual measurement tools was to ensure that the waves were indeed gravitational waves.</p>
<p>What has excited scientists most about the discovery of gravitational waves, besides their confirmation of Einstein’s theory, is the fact that we will be able to exploit gravitational waves in addition to light and radio waves in order to explore space. It can be foreseen that telescopes working with gravitational waves can be developed or advanced laser interferometers can be built in space and discover other gravitational waves.</p>
<p>Gravitational waves are generated in space all the time. Large-scale phenomena such as the collision of two black holes or the explosion of supernovae cause ripples in the sea of space. It is highly likely that systems that can detect these waves will provide us with new information about the fabric of space and thus lead to new discoveries.</p>
<p>The fact that gravitational waves were discovered using technological tools is an excellent example of how technology can nurture science. Moreover, this study proves that some discoveries can only be made by big teams like those in the CERN experiments.</p>
<p>It is postulated that the universe rippled violently during the first creation as a result of the tremendous expansion, the effects of which might still exist and should warrant new studies. It is only a matter of time that a super-sensitive mechanism could confirm the Big Bang theory. It is believed that the gravitational waves generated at the very beginning of this expansion are still present and experimental designs such as that in the LIGO are likely to discover them. The Qur’anic verse 51: 47 is considered to be referring to this expansion: “And the heaven, We have constructed it mightily; and it is surely We Who have vast power, and keep expanding it.”</p>
<p>It is almost certain that technological progress will lead to new discoveries that will provide us with deeper insights into the incredible composition of the universe. Bediuzzaman describes the universe as “a rosebud, wrapped in thousands a variety of veils of unity” (<em>The Rays</em>, Second Ray, Third Station). Every new discovery is going to show us the magnificent secrets of this rosebud.</p>
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		<item>
		<title>Retina: the Mind-Boggler</title>
		<link>https://fountainmagazine.com/all-issues/2018/issue-126-november-december-2018/retina-the-mind-boggler/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Nov 2018 12:33:43 +0000</pubDate>
				<category><![CDATA[Issue 126 (Nov - Dec 2018)]]></category>
		<category><![CDATA[biology]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[cone]]></category>
		<category><![CDATA[cones]]></category>
		<category><![CDATA[cys]]></category>
		<category><![CDATA[eye]]></category>
		<category><![CDATA[form]]></category>
		<category><![CDATA[layer]]></category>
		<category><![CDATA[layers]]></category>
		<category><![CDATA[light]]></category>
		<category><![CDATA[molecule]]></category>
		<category><![CDATA[pigment]]></category>
		<category><![CDATA[retina]]></category>
		<category><![CDATA[retinal]]></category>
		<category><![CDATA[Retinal pigment layer]]></category>
		<category><![CDATA[rhodopsin]]></category>
		<category><![CDATA[rods]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[sensitive]]></category>
		<category><![CDATA[sight]]></category>
		<category><![CDATA[trans]]></category>
		<category><![CDATA[vitamin]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2018/issue-126-november-december-2018/retina-the-mind-boggler/</guid>

					<description><![CDATA[The eye is a miracle as it is. Even though we have a rough understanding of its basic anatomy, we are confronted with a much more complex miracle when we venture into the intricacies of its anatomy and the physiology of the act of seeing. We have theories about the many details – such as [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img decoding="async" class=" size-full wp-image-6614" src="https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c.jpg" alt="Retina: the Mind-Boggler" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2018/11/10-b0c-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>The eye is a miracle as it is. Even though we have a rough understanding of its basic anatomy, we are confronted with a much more complex miracle when we venture into the intricacies of its anatomy and the physiology of the act of seeing. We have theories about the many details – such as the perception and representation of mental images and their storage in the memory – but we still do not exactly know how the act of seeing works.</p>
<p>One of the most mysterious layers of the eye, the retina has an elaborate structure with a slew of functions. Not every eye surgeon dares touch the retina, which houses the most sensitive and special cellular layers. It is a three dimensional, crescent-shaped structure located in the back of the eye and is made up of ten super thin layers of cells that span the exterior part of the eye abutting the veins and its interiors.</p>
<p><span id="more-5428"></span></p>
<h3><strong>Retinal layers</strong></h3>
<p>The ten layers that form the retina are:</p>
<ol>
<li>Pigment (coloring matter) layer</li>
<li>Layer of rods and cones</li>
<li>External limiting membrane</li>
<li>Outer nuclear layer comprising rod and cone cells</li>
<li>Outer plexiform layer</li>
<li>Inner nuclear layer</li>
<li>Inner plexiform layer</li>
<li>Ganglion layer</li>
<li>Nerve fiber layer</li>
<li>Inner limiting membrane</li>
</ol>
<p>These layers are incredibly sensitive and elaborate, and studying their intricate structure give a sense of awe.</p>
<h3><strong>Light for sight</strong></h3>
<p>Light first arrives at and penetrates through the cornea, the living glassy layer at the outermost layer of the eye. It then goes through the frontal fluid (<em>aquesous humor</em>) and the aperture called the pupil (<em>pupilla</em>). It hits the internal wall of the retina (the inside of the crescent) after passing through the lens in the eye and then the optic fluid filling up the chamber in the back. This alone is an interesting fact because it is much later that the light that gets to the retina reaches the layer of sensitive cone and rod cells, which perceive light. As these cone and rod cells are lined one after another for their protection, light reaches this outer layer of the retina after the ganglion cells, retinal layers and nuclear layers. Such an alignment leads to a reduction of acuity in the peripheral regions of the retina.</p>
<blockquote>
<p>We have theories about the many details – such as the perception and representation of mental images and their storage in the memory – but we still do not exactly know how the act of seeing works</p>
</blockquote>
<h3><strong>The central pit</strong> (<em>fovea centralis</em>)</h3>
<p>The inner layers at the center of the retina, on the other hand, are drawn to the sides to prevent any loss in visual acuity. Resembling a pit, this section is much thinner than the periphery of the retina, so the layers that are likely to obstruct the passage of the light, and hence reduce visual acuity, are aligned specifically to allow light to directly hit cone and rod cells. Besides, cone cells, which are in charge of exact, colored sight, exist in this region, whereas rod cells, which are in charge of rough and uncolored (black and white) sight, do not.  The central pit where visual acuity is at its highest is for keen, colored, and exact sight. Why then is the rest of the retina not created for acute sight and why is this small section equipped with this ability?</p>
<p>As it turns out, if the entire retina had the ability to see keenly then it would not be possible for the eye to focus on a spot and accurately distinguish it from surrounding objects. If we could see the entire page of a book at a glance, for example, the lines would mix up in our brain. We would not be able to understand what we are reading. We normally start reading from the top of the written page and continue line by line as we focus on and take in each word. Our brain then can focus and perceive a single word accurately by restricting keen perception of the surrounding area.</p>
<h3><strong>The retinal pigment layer</strong></h3>
<p>The color black is known to absorb, not reflect, light. Thanks to such absorption, the layer made up of black pigments (melanin) or dyes prevents the reflection of light, which is crucial for visual acuity. This black substance functions like the black dye in the bellows of old cameras. If there were not any layer to absorb light, light would scatter off the wall inside the eyeball, thereby obscuring the sharpness between light and dark spots, which is essential for the formation of a clear image, and producing a blurry image due to the overall illumination of the retina.</p>
<p>People who lack this melanin pigment as a result of a genetic defect (Albinism disorder) have white hair, and they are oversensitive to light because the colored iris layer of the eye does not contain the melanin pigment, which refracts light. When an albino person enters a bright area, the light that hits the retina is reflected in all directions through the pigment-lacking retina and the white surfaces of the rigid layer underneath (sclera). Therefore, a ray of light that would normally stimulate a few cones or rods is scattered everywhere, stimulating all or most of the light receivers. As a result, visual acuity in albinos can only be between 20/100 and 20/200, even with the help of the best optical correction, which is a low value compared to 20/20 in normal sight. The joke that rabbits do not wear glasses because they eat carrots is based on the high concentration of vitamin A in this pigment, or black dye, layer of the eye. Indeed, vitamin A is a crucial factor for the health of these pigments.</p>
<h3><strong>Layer of rods and cones</strong></h3>
<p>Composed of 127 million light-sensitive receivers (photoreceptors), the retina is 0.2 mm thick at the yellow spot (<em>macula lutea</em>), where the image forms most clearly, and 0.1 mm thick at the edges of this area. The 120 million cylindrical rods in the retina are in charge of black and white sight (at twilight), and the 7 million tapered cones, of colored, colored and exact sight. The more common cylindrical rods are 50 µm (microns) in length and 1-5 µm in thickness. The less common cones are 40 µm (microns) in length and 3-5 µm in thickness.</p>
<p>The concentration of the cones increases toward the center of the retina and decreases toward the edges, to be outnumbered by the rods. In the cytoplasm of the cones and rods are stored substances that are sensitive to light (photosensitive) which break up when light contacts them and produce electricity in the cones and rods. In rods this chemical is called rhodopsin. In cones, on the other hand, are three substances corresponding to the colors red, green, and blue that are sensitive to the wavelengths of colored light. To be more exact, there are three separate cone cells that include one of these three substances. Chemically, the photosensitive substances in the cones are a little different from rhodopsins.</p>
<h3><strong>The destruction of rhodopsin by light energy</strong></h3>
<p>Rhodopsin, along with the color substances, fills up about 40% of rods and cones. They are made up of a protein called scotopsin and a molecule called retinene that is derived from vitamin A. When light energy is absorbed by rhodopsin or the color substances, rhodopsin starts to fade in as fast as one trillionth of a second. The underlying reason for this is that the electrons in the retinene (vitamin A) part of rhodopsin is activated by light, which alters the shape of the retinal molecule at a mind-boggling speed (one trillionth of a second). Extremely complicated and precise chemical and physical changes then take place. It is very difficult to monitor all of these biochemical changes, and they require specialization [1].</p>
<h3><strong>The regeneration of the rhodopsin destroyed by light</strong></h3>
<p>Rhodopsin destroyed by light is regenerated in the dark. Only in the twentieth century did we manage to partially identify the mechanism by which molecules with very specific geometric shapes decay at incredible speeds only to be regenerated later. It is wondrous that such knowledge and power are present in the cell allowing the light energy to destroy the molecule and the regeneration process is launched. The circulation between destruction and regeneration of the molecule continues throughout a lifetime [2]. Vitamin A is assigned a crucial task in the generation of rhodopsin in the dark. All-trans retinal is converted in the retina into all-trans retinol, which is then converted into 11-cys retinol with the help of an isomerase enzyme. Finally, 11-cys retinol is converted into 11-cys retinal, which in turn combines with scotopsin to form rhodopsin. Vitamin A is present both in the cytoplasm of rods and in the pigment layer of the retina. In this way, vitamin A is kept in reserve to be used for generations of new retinal. If, on the other hand, there is an excess of vitamin A in the retina, the excess amount is converted into retinal, by which the amount of light-sensitive pigment in the retina is lowered.</p>
<h3><strong>Night blindness</strong></h3>
<p>Night blindness appears in anyone who suffers a serious deficiency of vitamin A. Because there is a lack of vitamin A to be converted into retinal, rhodopsin amounts decrease dramatically. This disease is called night blindness as it is noticeable only in the dark or at night and does not affect sight during the day, due to the reduction of light for proper seeing. In daylight, however, cones can still be stimulated despite a similar decrease in color pigments. Night blindness typically only appears in people that have a low vitamin A diet because huge reserves of vitamin A are normally stored in the liver to be used for the eyes.</p>
<p>The human retina contains 400,000 light receptive cells per square millimeter. For comparison, this number is 680,000 in the retina of the owl, which needs to perceive even the slightest glow when hunting in the night. As another example, with 397,000 such cells the amount in the cat’s retina is almost the same as ours.</p>
<p>An average of 130 sight cells in the retina are connected to a ganglion (nerve node) cell. Constituting the nerve of sight, or the optic nerve (nervus opticus), every nerve fiber is connected to a ganglion cell. It takes about 15-60 seconds for the retinal optic nerves to adapt from dark to light, while it takes as long as 30-45 minutes to adapt from light to dark. The visual range of optic cells, i.e. the lowest and highest amount of light the eye can perceive, is between 10<sup>-7</sup> and 10<sup>6</sup> nanometers. Light that is below or above this range is invisible to us because of its insufficient or overwhelming wavelength.</p>
<p>All the colors we see in the world are named according to the wavelengths absorbed and reflected by optic cells. The spectrum of the optic cells lies between red and violet, which is the limit of visible light for humans. Light with a wavelength of 400 nm is perceived as violet, while light with a wavelength of 760 nm is perceived as red. Our eyes cannot see infrared and ultraviolet light. Some animals, however, are known to see light beyond these limits. For example, we know that bees can see certain shades of ultraviolet light, which helps them find flowers to pollenate.</p>
<p>Clearly, it is not an easy job to elaborate on the divine art manifested in such a small area as the retina. Complicated structures and reactions that require specialization even to comprehend keep taking place smoothly every moment we look around. At least we can be thankful for this amazing gift of vision given to us free of charge so that we can recognize the universe.</p>
<h3><strong>Notes</strong></h3>
<p>[1] It causes the cys form of the molecule to change into the all-trans form. Although the all-trans form has the same chemical structure as the cys form, its chemical structure is different in that it is a flat rather than angular molecule. With the impact of light photons, the position of the molecule in space changes, yet its chemical composition remains the same. Because the position of the reactive regions of all-trans retinal no longer fit in with the reactive regions on scotopsin protein, the molecule is pulled off. The product that forms at that moment is batorhodopsins, which is a partly destroyed combination of all-trans retinal and scotopsin. An extremely unstable compound, batorhodopsin turns into lumirhodopsin in nanoseconds, into metarhodopsin I in microseconds, into metarhodopsin II in about one millisecond, and finally into decomposed products, scotopsin and all-trans retinal much more slowly (in seconds).</p>
<p>[2] The first step in the reformation of rhodopsin is the recycling of all-trans retinal into 11-cys retinal, which requires ATP energy and is catalyzed by retinal isomerase enzyme. Once created, 11-cys retinal combines with scotopsin to form rhodopsin.</p>
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		<item>
		<title>It&#8217;s me Peter, your Skin!</title>
		<link>https://fountainmagazine.com/all-issues/2009/issue-72-november-december-2009/its-me-peter-your-skin/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Nov 2009 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 72 (November - December 2009)]]></category>
		<category><![CDATA[blood]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[cold]]></category>
		<category><![CDATA[diseases]]></category>
		<category><![CDATA[epidermis]]></category>
		<category><![CDATA[god]]></category>
		<category><![CDATA[great]]></category>
		<category><![CDATA[hair]]></category>
		<category><![CDATA[important]]></category>
		<category><![CDATA[layer]]></category>
		<category><![CDATA[live]]></category>
		<category><![CDATA[melanin]]></category>
		<category><![CDATA[order]]></category>
		<category><![CDATA[organs]]></category>
		<category><![CDATA[people]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[sensitive]]></category>
		<category><![CDATA[skin]]></category>
		<category><![CDATA[sunlight]]></category>
		<category><![CDATA[temperature]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2009/issue-72-november-december-2009/its-me-peter-your-skin/</guid>

					<description><![CDATA[Peter! For some time now you have been hearing from the organs in your body who have been telling you about themselves, their importance, and about how miraculously they have been created. However, their main goal, in addition to telling you about themselves, was to draw your attention to God Almighty, His boundless knowledge and [&#8230;]]]></description>
										<content:encoded><![CDATA[<div align="left">Peter! For some time now you have been hearing from the organs in your body who have been telling you about themselves, their importance, and about how miraculously they have been created. However, their main goal, in addition to telling you about themselves, was to draw your attention to God Almighty, His boundless knowledge and the infinite meaning in everything He does. Now, it is time to open a window from within your body to the outside world.<br />
<span id="more-1088"></span></p>
<p>I am the barrier between your body and the outer world and I am responsible for this area. I can sense every change in the outer world, including heat, cold, humidity, pressure, various radiations, and the effects of many harmful chemicals and physical phenomena. When I become aware of the presence of something that is harmful, I warn your organs to act according to these changing conditions. That is why everybody knows me primarily as a sense organ.</p>
<p>However, in addition to being a sense organ, I have many other important duties; however, if I were to list them here, this article would take up the entire magazine. In order to ensure your good health I have to carry out my duties, be they aesthetic, protective or metabolic, perfectly. Even if you only examine my appearance, you will see how beautiful I am. You should visit an anatomy laboratory one day and watch the medical students performing an autopsy. Examine the cadaver whose skin has been pulled back to allow the students to study the internal organs. Look, if you can! Although the body is miracle, if the skin is not present, it would lose its splendor and become ugly and horrible. The beauty and meaningful existence of all the other organs are only complete with me. Our Lord God Almighty has created me and dressed you with me as a garment that fits each part of your body. He has lined your palms and soles with a thick outer lining made of keratin; this enables you to walk and use some hand tools easily. If on the foot or hand I were as thin as I am in the lip area, then I would easily get punctured and injured while walking or using a tool. God has created special joints where your fingers and toes join the feet and hands. These joints allow your fingers, hands and feet to move in many different ways. In order to protect your head from the sun and cold God has changed some of my cells into hair and has given it the ability to grow constantly. God also protects your eyes with special hairs that we call eyelashes and eyebrows. With these He also completes the beauty of your face. However, these do not grow constantly like the hair on our heads. Just think, otherwise you would have to trim both your eyebrows and eyelashes everyday in order to see. The special hairs in your nose and ears help prevent the entry of harmful particles, like dust or harmful microorganisms. You may think “How important is that? Just a few strands of hair?” Of course, hair is not the most important thing of all, but is life nothing more than staying alive? Of course not! There is also an aesthetic aspect to life. We can understand this if we look at a person who has no eyebrows or eyelashes! Certainly, God has made human beings beautiful creations and the hair is an important part of this beauty. As with everything He does, the significance of the hair is much more meaningful than when first seen.</p>
<p>In addition to my aesthetic beauty, I should also tell you about my protective functions. My first and most vital job is to balance the level of liquid in your body and to prevent its loss. The liquid level and the amount of minerals inside your body are very important. If it were not for me your kidneys would not be able to regulate the level of these liquids. It is for this reason that people who have burns that take up two-thirds of their skin or more cannot live; the water loss in their bodies is too great. In burn care centers, they try to control the loss of liquids using very sensitive devices; however, with serious burns this is usually unsuccessful. My protective functions are not limited to liquids; I also protect your body from all kinds of bacteria, funguses and viruses. As you know, your skin can get inflamed and infected from even a thorn. If the skin becomes damaged or broken over a large area you could face serious infections. This is because if I am not present many microorganisms will invade your body and make you ill.</p>
<p>Your body is very sensitive to heat and cold. The temperature of your inner body normally should be between 370C and 38 0C (96.8 0F and 98.6 0F); if it increases above this temperature, then you are unwell. If you remain for a long time in cold conditions and your inner body temperature falls off, many of your organs, especially the lungs, stomach, and kidneys are damaged and cannot work properly. You could die if the temperature is too low for too long. And in contrast, if you stay too long in the heat and your inner body temperature increases, your nervous system can be damaged, as the brain is very sensitive. Then your heart and other organs will start to fail, which eventually results in death. Indeed, human beings live everywhere, from the deserts to the poles and everywhere people are able to maintain an inner core temperature that is constant between 96.8 0F and 98.6 0F. I play a very important part in this system. Although the main control center is the brain, it acts according to stimuli that I send and I carry out important functions when the brain responds to these stimuli. Later, I will tell you how I can both warm and cool you.</p>
<p>Before telling you about my other functions, I would also like to tell you about my structure, which appears quite basic from the outside. Of course, I am not simply a cover that wraps your flesh. First of all, I am a living organ that is being nourished, that grows, that is repaired and which is very flexible. As I get rid of dead cells, I replace them with new ones; I am aware of everything that happens in my surroundings and I allow you to feel the world around you. I consist of two major layers: the epidermis (outmost layer) and the dermis (the inner level). The visible layer, the epidermis, consists of cells that gradually die off and stiffen. Those cells are toughened with a protein called keratin which is absorbed inside their structure; everyday I shed dead skin cells. This is part of the “dirt” that is removed from your body with every shower. This outer layer contains bacteria, funguses or other parasites that have been transmitted from the outside world and which may cause diseases. These parasites are removed as the dead skin cells are shed. The innermost layer (stratum germinativum) of the epidermis has a great capacity for cell division and it constantly produces new cells from the bottom to the outermost level. These cells start out life as cylinders, but as they move towards the outer surface they become cubical and then flatten out. At the same time keratin is being produced in those cells, and as a result they stiffen and start to die off. When the cells arrive at the outermost level, they are already dead. Some of those dead cells do not fall off. They accumulate and combine to make up the structures that we call nails and calluses. In this way the cells protect those areas that are most sensitive or most often used.</p>
<p>You will be surprised to see what great biological activities take place in the epidermis. Even when a person dies, this layer does not die right away. After death the nails and beard continue to grow. This occurs because of the activities in the germinative epithelium, which makes up the basal layer of the epidermis.</p>
<p>Beneath the epidermis is the dermis, a relatively thick layer. This is the layer which keeps the skin lively and firm and which produces the color. Many works of arts are present in this layer to complete my splendid structure. This layer consists of connective tissue with fiber bundles that is made of collagen protein. As people get older, their skin dries up and starts to lose its collagen proteins. Once the fibers start to decrease, I lose my firmness, and then I start to wrinkle. Although people are not happy with wrinkles, which are inevitable, I don’t think this is something to worry about; wrinkles are also a sign of maturity and experience. In the structure of my dermis there are other parts that have very important functions: The sweat glands, which are in the shape of coiled tubes, spread throughout the body act as ventilators; in addition, the hair follicles, the sebaceous gland, which helps to nourish and moisturize the hair, the chromatophores (pigment-containing cells) that determine the skin color, the hair muscles that give your hair flexibility and the blood vessels that nourish me are all important. I also have special receptor cells that can sense temperature, pressure and pain and there are nerve endings scattered among these cells.</p>
<p>In different parts of the body I am more sensitive to particular sensations. My sense receptors (corpuscles) vary in shape and you human beings have named them after the scientists who discovered them. There is Pacini’s corpuscle, Meissner’s corpuscle, Ruffini’s corpuscle and Krause’s corpuscle. Each of those receptors is thought to be receiving independent stimuli, but this has not been proven by experiment yet.</p>
<p>Do you ever wonder why you and your friends have so many different skin tones? This is the result of the work of the chromatophores (cells that contain pigment) which are located in the dermis, at the point closest to the epidermis. These cells, which have a number of branches, move in relation to the intensity of the light, and their branches can stretch and shrink back. These movements cause the pigment granules (melanin granules) to disperse within the cell or aggregate towards the center. This is how they can lighten or darken the skin color, causing you to get a “tan.” The seasons, the length of the day and the intensity and duration of the sunlight all affect the movement of these cells. These cells darken your skin color during the summer and lighten it during the winter. But, why is this necessary? This is a wonderful physiologic mechanism that has so many amazing purposes and meanings. I am sure you have noticed that people who live in Northern Europe and North America have a lighter complexion than those who live in the more southerly regions of the earth. This is because the countries in these northern regions are exposed to a less intense sunlight for a shorter time. The further north you go the more rainy and cloudy it is. However, sunlight also plays a very important role in the synthesizing of vitamin D in your body. The molecule known as 7-dehydrocholesterol can be converted into vitamin D only with sunlight. Vitamin D is a fat-soluble vitamin that is highly important for calcium absorption and bone metabolism. If you do not have enough exposure to the sun, then vitamin D cannot be produced; this could result in disorders like rickets (most common), as well as several other bone diseases and skeletal complications. However, it is interesting that sunlight is a two-edged sword. Neither too much nor too little sunlight is good for you. Too much exposure to the sunlight damages my health, causing such diseases as skin cancer and eye disorders. Our Lord God Almighty has made all parts of the earth suitable for human life. He knows well, of course, what people need in order to be able to live in places that have less sunlight and in other places that have a great deal of sunlight. In order to allow people to benefit from the sunlight everywhere, He has given the necessary qualities to my chromotaphores and the melanin granules that they contain. In places that have less sunlight, my chromotaphores synthesize less melanin. The melanin disperses throughout the cells or the cells move downwards, and my color lightens. This allows more sun absorption and this sunlight is used for vitamin D production. In sunny places, however, people are more exposed to the ultraviolet rays of the sun as well as other forms of radiation. This is why the risk of my cells becoming mutant and cancerous is greatly increased. In order to avoid such a situation, more melanin is synthesized in people who live in sunny places. The melanin in the chrotaphores gathers towards the center of the cell and my color darkens. Thus, excess sunlight is absorbed by my melanin pigments thanks to their special structure and function. This prevents other sensitive cells from becoming damaged and cancerous.</p>
<p>During hot weather, in order to balance your inner body temperature, the blood vessels that pass through the skin expand and more blood is carried through the skin. I give off the water in my blood through my sweat glands. While this warm water called “sweat” spreads over my surface and evaporates, an important amount of heat is released into the air. Thus, your inner body temperature does not increase and you remain cool inside. Thanks to the work of my sweat glands, I can also get rid of some nitrogenous waste and thus support your kidneys. During cold weather, however, the activities of my sweat glands decrease, and this helps you to stay warm. The blood vessels narrow so that the blood in me is reduced. More warm blood is channeled into your body so that your important inner organs do not become cold. The muscles of my hairs contract and the hairs straighten, thickening the layer of hair that covers me. It feels like you are covered with a blanket. If your body temperature falls off significantly, my receptors stimulate the muscles that lie under me and these muscles produce heat by vibrating. That is why you shiver from cold! Women have fewer hairs on their body. Do you think this is unfair? Of course not! Unlike men, women’s bodies are created in such a way that they can store a greater percentage of fat among the tissues under the skin. This hypodermic fatty tissue not only protects women from cold, but it is also used as extra storage for nutrients that they use when breastfeeding. It also helps protect women’s muscles and bones against bumps and shocks from the outside. So, this tissue works both as a temperature isolator and as a “shock absorber.” There is nothing unfair about this. And, it proves that God gives each of His creation exactly what they need and deserve.</p>
<p>Some people say that the skin is a mirror of the body’s health; this is true. The fact that I am visible and can be examined easily makes me the first organ to display symptoms of many diseases that lie below. Abnormalities that appear on me are usually a sign of metabolism disorders, ulcers and other glandular disorders in the body. For example, if your liver is being affected by a poisonous substance, this shows up as red spots on the hands. But not only physical ailments affect, me; I am also affected by your spiritual condition. Of course, the opposite can happen, too. That is, diseases on the skin can affect your inner organs.</p>
<p>I have mentioned before that my ability to renew and repair myself is very great. God willing, I can repair mild burns, bruises and cuts easily under normal circumstances. However, if the bruise goes as deep as my basal layer, there might be a scare there to remind you in the future and to give thanks to God for your health. In addition, in diseases like diabetes, my ability to renew and repair myself is weakened and I cannot easily heal. In such cases, you have to take the utmost care to keep me clean so that I do not get infected.</p>
<p>Well Peter, I think that I have said enough about myself. I will not continue to go on about the many symptoms of diseases that can be seen on me, including, allergies, itchiness, and infections. However, it is important for you to know that I can demonstrate hundreds of different conditions that are caused by a great range of factors, such as genetically transmitted diseases, immune system disorders, and bacterial, viral, and fungal infections. But don’t worry! As you can see, the majority of people live a healthy life despite these risks. The Creator has provided your body with a protective mechanism and has taught you how to take care of yourself. My job here is to indicate the Creator and how He has made me a flawless work of art that demonstrates deep meanings behind its complexity. Rather than continuing to give you a lecture on dermatology, it would be better if you were to live according to God’s consent. If you do so, you will be protected from diseases; even if you do become ill, you will have greater patience and moral strength. You will also be more thankful to God for your health.</p>
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