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	<title>glands &#8211; Fountain Magazine</title>
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		<title>Don’t Let Me Down</title>
		<link>https://fountainmagazine.com/all-issues/2013/issue-93-may-june-2013/dont-let-me-down-may-2013/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Wed, 01 May 2013 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 93 (May - June 2013)]]></category>
		<category><![CDATA[activated]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[erector]]></category>
		<category><![CDATA[glands]]></category>
		<category><![CDATA[grow]]></category>
		<category><![CDATA[hair]]></category>
		<category><![CDATA[hairs]]></category>
		<category><![CDATA[heat]]></category>
		<category><![CDATA[layer]]></category>
		<category><![CDATA[level]]></category>
		<category><![CDATA[muscle]]></category>
		<category><![CDATA[muscles]]></category>
		<category><![CDATA[natural]]></category>
		<category><![CDATA[oil]]></category>
		<category><![CDATA[root]]></category>
		<category><![CDATA[roots]]></category>
		<category><![CDATA[sacks]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[shaft]]></category>
		<category><![CDATA[skin]]></category>
		<category><![CDATA[substance]]></category>
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					<description><![CDATA[As we enjoy and appreciate so many things in life, hair is usually among the blessings most of us take for granted. Although it might be difficult a task to “count your blessings” in the literal sense, one can still pay tribute to those tiny workers with a bit of reflection. Distribution and density of [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>As we enjoy and appreciate so many things in life, hair is usually among the blessings most of us take for granted. Although it might be difficult a task to “count your blessings” in the literal sense, one can still pay tribute to those tiny workers with a bit of reflection.</p>
<p>Distribution and density of the hairs in our body is coded in our genes. This program is activated after birth and hair roots are formed at around 8th-10th week of pregnancy. The hairs that cover the fetus are thin, short, and weak. The growth of hairs is completed in the 22nd week. Number of hairs in a fetus does not change much according to gender. Later on in a person’s life, hairs can become dense or rare, owing to factors such as race, age, gender and hormonal state. There are hair roots covering almost all over our body except for the soles, palms, forehead, the areas under the eyes, on and behind the ears.</p>
<p><span id="more-1498"></span></p>
<p>A hair is made up of the hair root and the hair shaft on it. A hair root is surrounded with two layers. The duty of these layers is to prevent harm to the hair shaft and let the hair grow in the right direction. A hair root is a multilayered structure where every layer has a different function. The papilla is in the base of the hair root and it basically serves to send nourishment to hair cells. The upper layer of the hair shaft is the hard substance called keratin. The innermost layer, which can be seen as the spinal cord of a hair, does not exist in every hair shaft. The second layer, known as the cortex, constitutes most of the hair shaft. The color of hair is mostly determined by the pigment in this layer. The outermost layer is the upper skin of the hair.</p>
<p>Hairs in different parts of the body have their peculiar forms of and limits to growing. Under the control of hormones, hair roots cause hairs of different properties—such as thickness and color—to form. The hairs in moustache, armpits, between the legs, beard, and on the head grow fast and continually. On the other hand, the hairs on our arms, chest, back, legs and including those in the eyebrows grow very slowly and they know their limits. If the person does not own functional testicles, there may be no hair in certain areas of the body except for the hair on his head.</p>
<p>Most of us are apt to think that certain stories make our hair curl; actually, hair erector muscles are the unsung heroes of those stories. Under every hair in the body, there is an erector muscle that makes it move. These muscles have important functions for the body.</p>
<p>Firstly, it helps the oil glands carry out their function. The oil sacks are located on the surface of a hair. The sizes of these sacks are around 0.2-2 millimeters. Sacks are in the form of clusters. Oil glands are also placed all over the body, accept for the soles and palms. They are the natural “lubricants” for the skin and hairs; they protect the skin from the damage of drying up. Every gland under the skin has a channel. There are alveoli that open to every channel. When the hair muscle is stimulated, the hairs become erect and the connected gland start secreting a substance called sebum. The glands empty their contents to the body of the hair.</p>
<p>Regulating the acidity (pH) level of the skin is among the duties of the hair erector muscle and it produces a protective gel. The oily secretion forms a thin layer of gel; as it serves protecting the skin from heat and cold, it is given an antibacterial effect as well. The natural coating of the skin prevents reproduction of harmful germs. The pH level of the skin is 5-6 and it does not allow bacteria to grow. If this substance is not secreted from the skin, the pH acidity shifts toward alkali, moisture level of the skin increases; the fat layer and then the natural coating is damaged. Thus, germs find a suitable environment to reproduce.</p>
<p>Hair erector muscles are also given a role in adjusting body heat. The hairs in the human body are not related to heat isolation. When the body is exposed to cold environments, the mechanisms that increase body heat are activated. When sympathetic nervous system stimulates hair erector muscles, they contract, hairs bristle, and the body heat is tampered through the reduced heat release. Sometimes, even the invisibly small hairs erect and goose bumps appear on the skin. The purpose is to form a screen for heat. They also allow for perspiration in hot weather and help the body to cool down. In addition, hair erector muscles serve as touching receptors as well. The receptors in hairs easily detect objects on the body surface. Hairs that are activated by touch stimulate the nerve tissue in their base. In a way, they keep a round the clock watch for the body; as tiny and unsung heroes.</p>
<p>They say that perfection is hidden in details, which is also very true for hairs. And perhaps, the secret to appreciation lies in recognizing details, and appreciating their perfection.</p>
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		<item>
		<title>It&#8217;s Us Peter, Your Salivary Glands</title>
		<link>https://fountainmagazine.com/all-issues/2011/issue-81-may-june-2011/its-us-peter-your-salivary-glands/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 May 2011 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 81 (May - June 2011)]]></category>
		<category><![CDATA[bacteria]]></category>
		<category><![CDATA[canals]]></category>
		<category><![CDATA[dry]]></category>
		<category><![CDATA[eat]]></category>
		<category><![CDATA[enzyme]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[foods]]></category>
		<category><![CDATA[frequently]]></category>
		<category><![CDATA[glands]]></category>
		<category><![CDATA[mouth]]></category>
		<category><![CDATA[pain]]></category>
		<category><![CDATA[parotid]]></category>
		<category><![CDATA[saliva]]></category>
		<category><![CDATA[Salivary Glands]]></category>
		<category><![CDATA[secrete]]></category>
		<category><![CDATA[secretion]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[Starchy food]]></category>
		<category><![CDATA[swallow]]></category>
		<category><![CDATA[swelling]]></category>
		<category><![CDATA[tartar]]></category>
		<category><![CDATA[tongue]]></category>
		<category><![CDATA[wet]]></category>
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					<description><![CDATA[Sometimes, when you get mad at someone, you feel like spitting in his/her face. But you should know that saliva is not a worthless liquid to be wasted by spitting. It’s not at all like the material you discard from your kidneys and intestines and try to keep yourself clean from. Contrarily, our valuable secretion [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Sometimes, when you get mad at someone, you feel like spitting in his/her face. But you should know that saliva is not a worthless liquid to be wasted by spitting. It’s not at all like the material you discard from your kidneys and intestines and try to keep yourself clean from. Contrarily, our valuable secretion lets you taste your food, enables you to soften and swallow many hard foods, and helps you to prepare them for digestion in the stomach. If it weren’t for us, you couldn’t talk halfway decent, because your tongue would stick to the roof of your mouth. Your teeth would decay, cankers would appear, and you would be disturbed by your own bad breath, all due to the bacteria in your mouth.</p>
<p>We are three pairs of large glands that secrete into the mouth through canals and hundreds of very small glands around the throat. The large glands in front of the ear area are called the parotid glands, the glands under the chin are called the submandibular glands, and the ones under the tongue are called the sublingual glands. The parotid glands secrete saliva from the sides of the upper molar teeth, the submandibular glands from the front under the tongue, and the sublingual glands from many openings in the mouth’s base. There are also many more salivary glands in your inner cheeks and lips, and in all other wet spots in your mouth and throat.</p>
<p>Every sugary and starchy food you eat must first interact with our secretion in order to be digested. For this, an enzyme called ptyalin has been placed within us. But for this enzyme to work properly you must chew your food well. Also, you shouldn’t eat anything that is too hot or too cold, or anything that could change the pH (acidity) level of your mouth. Otherwise, this enzyme cannot function correctly. We produce an average of about 1000 milliliters (one liter) of secretion every day; however, we have the capacity to produce 1.5 liters of saliva per day.</p>
<p>Sometimes, the calcium in our enzymes may precipitate and form tartar due to acidic foods. Tartar can sometimes block our secretion canals. When you eat something, saliva production accelerates; but if our secretion canals are blocked by tartar, then the saliva cannot flow. This causes infection accompanied by severe pain and swelling. If our canals aren’t completely blocked, we may swell a little while eating, but we will slowly deflate after a while. Microbes can reproduce easier in accumulated saliva that cannot flow, thus causing severe pain and swelling. Our most frequently seen infection is the one that makes the parotid glands swell up, and is called the “mumps”. Even though it is seen more frequently in children, it may also be observed in adults. The swelling of both of the parotid glands is more frequent in alcoholics.</p>
<p>The thiocyanate ions that have been put in our saliva secretion kill the bacteria in your mouth by breaking them apart. In addition, lysozyme enzymes attack and kill bacteria in your mouth while digesting food remains to prevent the bacteria to feed and reproduce. Hungry bacteria perish more easily. Our infinitely merciful Lord put special proteins called anticorps in our saliva to prevent many diseases that can enter from the mouth before they develop. These anticorps act like special agents that attack and destroy bacteria. If we don’t secrete enough saliva, ulcers will develop in your mouth frequently. If they last long enough, they will get infected and also cause tooth decay.</p>
<p>The control of our secretion is connected to an area that includes the appetite center in the brain stem through the involuntary nervous system. When you smell or taste foods you like, we immediately start secreting saliva as a reflex. When you come across foods that you don’t like, or when you get scared or excited, we slow down saliva production, again reflexively. Suspects in the past used to be given a handful of rice to swallow, with the thought that the real culprit would not be able to swallow them, because the excitement caused by the feeling of guilt would cause his/her mouth to dry.</p>
<p>Diabetes, which is a systemic illness, also has a negative effect on our functioning. Diabetes presents itself with drying of the mouth, along with excessive intake of water, and the frequent need to visit the restroom. One type of rheumatoid arthritis may also cause dry mouth and dry eyes together with joint pain.</p>
<p>As you see, Peter, I’ve briefly explained to you how invaluable and necessary your saliva is. I have not even mentioned our histological and anatomical structure, which resembles a bunch of grapes. I believe you can imagine how each and every one of my gland cells is like a perfect biochemical factory. You wouldn’t relate all these to your mouth being wet for no reason, would you?</p>
<p><em>Irfan Yilmaz is a professor of biology in Dokuz Eylul University, Izmir, Turkey.</em></p>
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		<item>
		<title>It&#8217;s me Peter, your Endocrine System!</title>
		<link>https://fountainmagazine.com/all-issues/2010/issue-75-may-june-2010/its-me-peter-your-endocrine-system/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sat, 01 May 2010 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 75 (May - June 2010)]]></category>
		<category><![CDATA[Adrenal gland]]></category>
		<category><![CDATA[blood]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[Endocrine System]]></category>
		<category><![CDATA[gland]]></category>
		<category><![CDATA[glands]]></category>
		<category><![CDATA[hormone]]></category>
		<category><![CDATA[hormones]]></category>
		<category><![CDATA[hypophysis]]></category>
		<category><![CDATA[important]]></category>
		<category><![CDATA[male]]></category>
		<category><![CDATA[organ]]></category>
		<category><![CDATA[organs]]></category>
		<category><![CDATA[Parathyroid]]></category>
		<category><![CDATA[produce]]></category>
		<category><![CDATA[secreted]]></category>
		<category><![CDATA[secretion]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[sperm]]></category>
		<category><![CDATA[system]]></category>
		<category><![CDATA[thymus]]></category>
		<category><![CDATA[thyroid]]></category>
		<category><![CDATA[work]]></category>
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					<description><![CDATA[Peter! We are now approaching the end of the series of organs that told you about themselves. They have been pointing out the seal of God on them, and celebrating themselves as they manifest the beauties and the delicacies of God’s art. Thus, they have not only expanded your knowledge, but also guided people to [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Peter!</p>
<p>We are now approaching the end of the series of organs that told you about themselves. They have been pointing out the seal of God on them, and celebrating themselves as they manifest the beauties and the delicacies of God’s art. Thus, they have not only expanded your knowledge, but also guided people to the truth of God’s Oneness, stressing that natural and biological causes alone can never be an explanation for their splendid creation.</p>
<p><span id="more-1142"></span></p>
<p>Each of your organs told you about its perfect structure and how it functioned within your body system. Let us think that each organ is a musical instrument. No matter how splendid and artful a musical instrument is, its true value is understood only among other orchestra instruments as they perform a wonderful concert. Your body is like that orchestra, where hundreds of instruments play together. In addition to the perfect structure of each organ, more importantly all the organs have to work together perfectly as a team. The success of an orchestra depends on how the instruments play in harmony with each other. The conductor of an orchestra is the person who ensures that harmony. The orchestra members carefully watch the conductor and play according to his arm movements, sometimes louder or softer, sometimes pausing or breaking into a very loud introduction. That is how a perfect concert can be performed.</p>
<p>In order to achieve such harmony, the organs in your body need a system that works just like a good orchestra conductor. This “regulating system,” which has to maintain the perfect harmony and order of the ongoing activities in your body, has two sub-units: One is the brain and the nervous system, and the other is me; your endocrine system (hormonal system). Since I work as a system that consists of many organs, from now on I will refer to myself as “us.” Each of us adjusts itself to the whole system by carefully watching the movements and works of the other organs. At our head are the brain and nervous system, which act as the general control center. However, it cannot carry out the regulating and controlling task alone; it needs our help.</p>
<p>The most basic principle that your body has to follow in order to maintain its health is keeping the inner medium stable in a dynamic balance while responding to varying environmental conditions properly. This is also known as homeostasis. For the inner medium to be kept stable, it is first of all important to be aware of the changes that are happening in the outer world, which is initially done by your sense organs. The signals related to the changes in the outer world are sent to your brain and nervous system through the sense organs. Afterwards, the signals are evaluated, and then they are sent to the related organ so that the proper reaction is produced and the inner balance can be regained. While all the activities regarding growth and reproduction are carried out, the inner medium should be kept stable at the same time (homeostasis). In order for all these activities to be performed continuously, you need inner secretion glands, which are small, but highly important.</p>
<p>The most important of all your organs that constitute the endocrine system is called the Pituitary (hypophysis) gland, which is recognized as the commander of all these organs and situated in your brain. The other secretion glands included in my system are the thyroid, parathyroid, suprarenal (adrenal) gland, epiphysis, pancreas, testicles, and ovarium. Now, these small but very important organs of mine will respectively talk about themselves and demonstrate the perfect program and the sensitive balance within which they work. You are the one who will draw the necessary lessons from this.</p>
<p>In all tissues, there are specific recipient molecule groups that respond to a particular hormone. Each hormone is programmed to stimulate its target cells, which contain those special recipient molecule groups that start doing their specific work. The principal functions of my endocrine system are: to enable growing; to regulate the necessary reproduction process in an ordered manner; and to carry out the physiological processes in the body in a relatively stable medium. I guess your amazement, admiration, love, and apprehension will increase when you hear about my secretion glands. Now, here comes the hypophysis.</p>
<h3><b>My name is Hypophysis (the Pituary Gland)!</b></h3>
<p>I am appointed as the commander of all your glands. Therefore, I am situated in a very firm place at the lower brain. I am an organ that is as small as a bean and that weighs only a few grams, but I have got so many talents. I have two parts. The first is my frontal lobe (adenohypophysis) which secretes most of the hormones. Our Creator has given key roles to the hormones of my frontal lobe to direct secretion activities of other endocrine glands. For example, thyrotropin hormone is arranged in such a way that it affects the thyroid gland and stimulates it for secretion. The unbalance in my thyrotrophic secretion affects the function of Thyroid gland negatively. If it is secreted too much, hyperthyroid; if it is secreted too little, hypothyroid illnesses emerge. In both cases, some problems occur during metabolism. Adrenocorticotropic hormone is created to arrange the activities at the adrenal cortex. Follicular stimulating hormone has two very important roles. The first one is regulating the secretion of estrogen, which is one of the female hormones. The second one is maintaining the physiological activities in the maturation of sperm cells in males, as well as the egg cells in females, for the continuation of human generation. The Luteinizing hormone together with the Estrogen stimulates the secretion of other sexual hormones (progesterone and testosterone).</p>
<p>When you were born, you were 20 inches tall. Now you are almost 6 ft tall. Both your height and your hands and feet grew. Meanwhile, your head and body got bigger proportionally. Another important secretion of yours that controls your growth appropriate to your age is somatotropin hormone. If, for some reason, my working balance got deteriorated, and this hormone secreted less, you would be like a dwarf, or some of your parts would be unbalanced with your body and abnormally short. If this hormone were secreted too much, then you would get into gigantism due to abnormally large growth. Together with gigantism illness, several problems occur; i.e., heart and blood pressure problems, muscle weaknesses, and problems regarding immunity and general metabolism.</p>
<p>Other hormones that are secreted from my frontal lobe are prolactin hormones, which help milk glands develop in expecting mothers, and melanocyte stimulating hormone, which stimulates the pigment cells that give color to your skin. However, these two hormones have no relation with the other hormonal glands.</p>
<p>The lipoprotein molecule of my melanocyte stimulating hormone helps the morphine substances, known as encephalin and endorphin, to be synthesized. You can call these two substances naturally inherent drugs. These secreted substances help you to bear several physical pains. The secretion of my hormones has direct relation with your nervous system and psychological well-being.</p>
<p>Although formed in the hypothalamus part of the brain, one of the hormones that is secreted after being stored in my back lobe (Neurohipofiza) is oxytocin, and the other one an antidiuretic hormone called vasopressin. Oxytocin makes the smooth muscles work. In particular, it stimulates the contractions at uterus during labor and delivery, and it also stimulates the secretions of milk canals by making them contract. Vasopressin enables blood vessels to shrink, causes the blood pressure to increase, and also reduces the production of urine by increasing the transition of water to blood through the kidneys. Hence, it prevents dehydration in hot and dry weather. In the deficiency of the secretion of this hormone, an illness called diabetes insipidus will occur and water metabolism will be deteriorated. I have more amazing features to tell, but I should not be selfish. I think it is time for Thyroid to speak.</p>
<h3><b>My name is Thyroid! </b></h3>
<p>I am placed in your neck, right at the two sides of the trachea (air tube) and below the larynx (voice box). I consist of two pieces that are attached to each other with a thin tissue. Inside me, there are many little saccules called Follicules which are densely surrounded by a capillary network. Following their innate program my cells produce three important hormones in the cavities of those saccules. The two of them are thyroxine and triiodothyronine, which contain iodine atoms and the other one is calcitonin. My hormones have highly important impact in your body. Our Lord God has appointed me, the hormones secreted by a very small piece of flesh, with regulating the oxygen use of all of your cells, and thus the speed of your metabolism which all affect your body’s overall performance. In addition to that, I also adjust your cholesterol level by lowering it in your blood. My iodine-containing hormones are vital for children’s growth. In the case of their deficiency, conditions like growth failure, dwarfism and mental disorders appear. If there is not enough iodine in the earth or water, it becomes more difficult for me to produce hormone and I start to work harder, which causes me to enlarge. This is a disease called goiter. When I secrete excessive hormone, your eyeballs become bulged, a disease called exophtalmic goiter or Basedow syndrome.</p>
<p>My iodine hormones and the stimulating Thyrotropin hormones secreted by the Hypophysis work together; they watch and control each other. If I get lazy and slow down secretion, the Hypophysis immediately warns me. If I secrete too much, this time Hypophysis stops warning me and waits for me to “calm down.”</p>
<p>Do you see what a wonderful system I am? Not only between us, but also all other systems have the same feedback organization between themselves and the Hypophysis. The Hypophysis is an organ as big as a chick pea, and we are only a small piece of flesh. Peter, look at the great jobs we are doing! Can coincidence play any role in this, do you think?</p>
<p>Lastly, I will tell a little about Calcitonin, a hormone which works to adjust the calcium level in the blood serum. That is not an easy job at all. This hormone is vital in the healthy growth of your bones; otherwise your bones will empty, get weak and they might even break for no reason at all.</p>
<h3><b>My name is Parathyroid!</b></h3>
<p>As my name suggests (“para” is a prefix signifying alongside of, beside), I am located just behind the Thyroid, consisting of four small parts. I have so many important functions beyond what is commonly known. My foremost duty is to delicately adjust the amount of calcium between your skeletal bones and your blood. Moreover, I am also assigned with controlling the phosphate and magnesium metabolism. In order to do that, I produce a hormone called parathormone. Of course, I have no idea about the chemical composition of this hormone; but I am just doing my job by producing it and working as I am programmed. When the level of phosphate in the urine and the level of calcium in the blood are measured, you can understand whether I am working well or not. The decrease of calcium in your blood leads to the stimulation of your nerves, thereby causing muscle spasms or titanic contractions that occur along with dotage. The healthy function of your heart and muscles highly depends on this calcium. Who knows, Peter, what other functions of me you human beings will discover in the future!</p>
<h3><b>My name is Adrenal gland! </b></h3>
<p>I consist of two little parts located on top of the kidneys, one on each side. Do not underestimate me by just looking at my size! You will be amazed to learn what crucial functions I perform. Each of my parts has an inner (medulla) and an outer (cortex) section. Those two sections differ quite markedly from each other in their structure, functions and in the origin of the embryonic layer where they form. But despite those differences, our God Almighty has put them one within the other. The two important hormones that my inner section secretes are Adrenaline and Noradrenaline. My adrenaline secretion speeds up the conversion of glycogen (in your liver) into glucose, and thus the sugar level increases in your blood depending upon your energy needs. This increases the power and the speed of your heart contractions and constricts the diameter of the blood vessels, thereby causing the blood pressure to increase. I assist in dilation of the narrow bronchioles of your lungs so that you can get more oxygen. When you become nervous, quarrel with somebody, face a danger or experience any stressful moment, I cause all those activities to happen by secreting more hormones expeditiously. That is how I help in protecting your body. All in all, 80% of my secretion is adrenalin, whereas the 20% is noradrenalin. Noradrenaline has less impact on your heart and metabolism.</p>
<p>My cortex (outer section), where steroid types of hormones are produced, secretes aldesterone, cortisol, and some androgens (a male hormone). Aldestrone regulates the water and salt levels (especially sodium and potassium metabolism) of your body. Cortisol meets your glucose needs if you are starving by breaking down the proteins into amino acids; it is also responsible for preventing the infections and allergies. Although the testicles (male reproductive glands) are the main organs that produce the male hormones, I also supply them. My androgens help in the development of male characteristics such as voice changes, beard and moustache growth and hair growth. When women get older, the androgens that I secrete causes the voice to deepen and hair to grow on their bodies.</p>
<h3><b>My name is Epiphysis (Pineal gland)!</b></h3>
<p>I am a small gland that is situated at the roof of the dieencephalon (“interbrain”). As it is most commonly known, I secrete the melatonin hormone. This hormone helps the melanin (the black or brownish pigment that gives your skin its color) to aggregate or dissolve in the special skin cells called melanophore. Thus, it senses the intensity of the light that changes according to the seasons and day length, and adjusts your skin color by lightening or darkening it. Moreover, I work as your biological clock, regulating your sleep-wake cycle. It is also thought that I arrange the different working periods of your organs.</p>
<h3><b>Our Name is Testicles! </b></h3>
<p>We are male reproductive glands. Our God Almighty has created us for the continuation of human generation. Each of us is oval-shaped and located in a pouch that weighs 25 grams and facing to each other. Each of us is protected by a case of skin and muscle. This case extends into our internal part where it is divided into 200-400 lobules. Each lobule consists of fine coiled tubes. The reproductive cells and the sperm cells which contain a group of your genetic program are produced in those tubes.</p>
<p>When you reach puberty, upon responding to the stimuli that comes from the hypophysis, we start to produce sperm, as well as Testosterone, a type of androgen (male) hormone. Testosterone is necessary for your male appearance; it helps in the developing the characteristics that distinguish you from females in terms of appearance.</p>
<p>A special cell division called meiosis is needed for sperm production. Along the layer that make up the walls of the coiled tubes lie the cells that are called Spermatogonium. Each of these contain 46 chromosomes (23 maternal and 23 paternal). As a result of serial divisions and crossover of those cells, new cells are created with new characteristics. From one Spermatogonium, four sperms are formed and each of them has 23 chromosomes.</p>
<p>Each sperm differs from one another, and each of them contains a mosaic composed of the different characteristics you possess. Among the millions of sperms that are produced, not one of them is identical to another. The reason is the interchange of sections between pairing homologous chromosomes (that you take from both your mother and your father) during the process of meiosis. For example, in one sperm, your nose traits that come from your father might come together with the ear traits that come from your mother. In another sperm, for example, the fingers traits that are inherited from your father might come together with the eye traits that are inherited from your mother. When so many different traits can be mixed in so many different ways, you can imagine the great potential of variety for human beings.</p>
<p>We are private organs that some people see as “obscene” to talk about and which generates “dirty” sperm-containing fluid. However, as you have seen, we are given to you as a gift from God, wrapped with so many beautiful meanings, one of which is the important task of continuing human generations.</p>
<h3><b>My name is Ovarium!</b></h3>
<p>Dear Peter! My duty is particularly relevant to women; I am the female reproductive organ. Therefore, I should begin by saying something like ‘I am Jenny’s…’ this time. Just as the Testicles are the male reproductive system, the ovaries are the woman’s organ. It cooperates with the male productive system in order for human generation to continue. We, the two ovaries, are located in the lateral wall of Jenny’s pelvis, one on the left and one on the right, and we measure approximately 1x 0.60 x 0.60 inches and weigh between 4 and 8 grams. Even before Jenny was born, we contained an amazing 150–500 thousand immature egg cells inside us.</p>
<p>During childhood, the follicles which contain the eggs diminish continuously, and by the time a young girl reaches puberty, only 35,000 of these follicles remain in each of her ovaries. Throughout the woman’s reproduction lifespan, usually between the ages of 13–50 years, a mere 300–500 of these follicles actually transform into mature eggs. You will certainly realize that you have reached puberty when I begin to produce the estrogen and progesterone hormones. As the estrogen I produce stimulates the development of the female’s sexual characteristics, progesterone prepares the wall of the uterus, making it more receptive to the implantation of a fertilized egg. If the egg I produce is not fertilized by sperm, every month (in approx every 28 days), it will degenerate and then be discharged from the body together with the lining of the uterus during menstruation. Then another one of my eggs matures, and patiently begins to await sperm.</p>
<p>The principle event of chromosomal change in my eggs and their diminishment in numbers is the same in the development of sperms. The only difference being that every spermatogonium produces four sperms, whereas only one mature follicle is produced from the mother cell (Oogonium) that produces my eggs. The remaining three are degenerated. You would have thousands of eggs awaiting fertilization if this was not the case. However, due to the fact that your bodies are not capable of harboring and protecting so many eggs, our Creator provided you with the mechanism of reducing the number of these eggs, and therefore relieved you of any difficulties.</p>
<p>I must take this opportunity mention another two of my organs, one of which is the pancreas, who described itself previously (see The Fountain # 67). As you may recall, the pancreas is a compound gland. The pancreas previously described how it produces digestive enzymes, and also how it produces insulin and glucagon to deal with the metabolism of carbohydrates. As this is a very complex organ, we allocated the pancreas the opportunity to describe itself and explain its functions in a previous edition of the magazine. For more information you may refer to the issue listed above.</p>
<p>An organ which is a part of your immune system, and also considered part of the endocrine system, but an organ you are probably unfamiliar with, is the Thymus gland. If the immune and lymph systems feel the need to describe themselves to you in the future, the Thymus gland will inform you that it resides at the same level as your heart, behind your breastbone (sternum). Then it will go on to define its specific duties. But for the moment, the only thing I am going to inform you of is the most important duty of the Thymus gland.</p>
<p>The Thymus gland produces soldiers called T lymphocytes (T cells) and special antibodies which fight the invasion of diseases, illnesses, and also attack cancer cells and any foreign antigens. The Thymus gland is recognized as a part of the endocrine system because it produces hormones and antibodies. The special lymphocytes and antibodies that are produced in such a complex process by other organs of the immune system are transformed into T cells as they pass the Thymus gland. Then, gaining new characteristics, they secrete specific hormones which in turn stimulate the development and differentiation of T lymphocytes.</p>
<p>Whatever the system may be, the Thymus gland, to the contrary of other organs, is at its largest and most active during the embryonic and neonatal periods. During adolescence, the Thymus gland begins to shrivel and shrink, and continue to shrink gradually into old age. The reason why the Thymus gland is large during the early stages of life is because it must constantly generate new antibodies to enable the body to fight against new germs and diseases, which the body encounters every day.</p>
<p>I may have extended the topic slightly this time because every organ of my endocrine system described themselves individually, and then we got onto the subject of Jenny’s special case, as wel as the different aspects of Peter’s case. All the organs I mentioned today are small, but as you may have noticed, these small organs behold great mystery and wisdom. In addition to this, all of these organs’ individual duties are connected, in particular the Pituitary gland (Hypophysis), and have been arranged and regulated in such a way that they control one another. Can such a magnificent hormone system and bodily activity working in such harmony be explained as a mere coincidence?</p>
<p><em>Irfan Yilmaz is a professor of biology at Dokuz Eylul University, Izmir, Turkey. </em></p>
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		<title>The Automatic Systems Operating in Our Body</title>
		<link>https://fountainmagazine.com/all-issues/2007/issue-58-april-june-2007/the-automatic-systems-operating-in-our-body/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Apr 2007 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 58 (April - June 2007)]]></category>
		<category><![CDATA[air]]></category>
		<category><![CDATA[blood]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[control]]></category>
		<category><![CDATA[duty]]></category>
		<category><![CDATA[eyes]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[glands]]></category>
		<category><![CDATA[Health & Medicine]]></category>
		<category><![CDATA[lungs]]></category>
		<category><![CDATA[nervous]]></category>
		<category><![CDATA[organs]]></category>
		<category><![CDATA[parasympathetic]]></category>
		<category><![CDATA[pressure]]></category>
		<category><![CDATA[secretion]]></category>
		<category><![CDATA[stomach]]></category>
		<category><![CDATA[sympathetic]]></category>
		<category><![CDATA[system]]></category>
		<category><![CDATA[systems]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[tissues]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2007/issue-58-april-june-2007/the-automatic-systems-operating-in-our-body/</guid>

					<description><![CDATA[In a healthy body, all of the involuntarily functioning mechanisms seem to know what to do, at the right time and in the right amount. But are these systems really “autonomous,” doing what they will? Can it be coincidence that each time the perfect choice out of thousands of possibilities is made? Regular controlling mechanisms are [&#8230;]]]></description>
										<content:encoded><![CDATA[<blockquote>
<p><em>In a healthy body, all of the involuntarily functioning mechanisms seem to know what to do, at the right time and in the right amount. But are these systems really “autonomous,” doing what they will? Can it be coincidence that each time the perfect choice out of thousands of possibilities is made?</em></p>
</blockquote>
<p>Regular controlling mechanisms are needed for our bodily activities to function properly. This duty has been given to the nervous system. The autonomic nervous system (ANS), which is in charge of controlling the vital functions of the body, is designed to function in an involuntary, reflexive manner. The operating systems of several machines that make our life easier are developed by being modeled on the ANS. Take an air-conditioned car with a thermostat for example. When the air is cold, a heat sensitive mechanism automatically starts and it provides the engine with more gas and it produces more energy. And when it is warm enough inside the car, this time the thermometer urges the system to reduce the gas-flow back to normal. Likewise, sympathetic and parasympathetic nerves placed in the autonomic system are given the duty of a regulator that restores the altered functioning of organs back to normal so that they do not upset the balance of our body.</p>
<p>If the light coming to our eyes is too bright, vision is blurred. When the retina is exposed to excessive stimuli this causes the parasympathetic nerves to send signals to the eyes to contract the pupils so that the sensitive layers of the eyes are protected and the vision is cleared. In darkness or under dim light, the sympathetic system is called to duty again and this time the pupils are enlarged. The sympathetic-parasympathetic (autonomic) nervous systems granted to human beings play a role in optimizing eyesight under differing intensities of light.</p>
<p>Parasympathetic nerves are created in a way to stimulate the saliva and tear glands, as well as the glands in organs like the nose, stomach, intestines, pancreas, etc. When the secretion in these glands is surplus to our requirements, the canals in connection with them are shrunk and the secretion is lessened. Without such a system, germs would boom, morsels would not soften in our mouth, food intake would not decompose in our stomachs, the gastric mucus which protects the inner stomach from acid would not be secreted, and the final stage of digestion, absorption of digested nutrition, would not happen. Likewise, if our tear glands did not function, sores would emerge on our eyes; if there were no nasal mucus, dust and germs suspending in the air would easily reach our lungs.</p>
<p>The physiological functioning of the lungs and their protection are also maintained through the sympathetic and parasympathetic systems. When our tissues need more oxygen, the sympathetic system is activated. The air sacs are enlarged and more air is let in. If toxic gases, dust, cigarette smoke or other harmful elements enter the respiratory tract or the lungs are exposed to any destructive matter, the air sacs are narrowed by the immediate intervention of the parasympathetic system. In this way, the secretion in the air sacs increases and the harmful substance is prevented from going deeper into the lungs. Then the harmful substance is thrown out through secretion and the reflex of coughing.</p>
<p>When the blood pressure drops below 50mm Hg for any reason (due to hemorrhage, medication, body position, etc), the sympathetic system immediately works to send blood to the brain and the heart. As these are the most vital organs, they are given priority at receiving blood. Our blood circulation is carried out within a closed-circuit system and there is a constant amount of blood. Therefore, sending an organ more blood means lessening the blood sent to other organs. To maintain this, the sympathetic system again works to cause narrowing. When food intake reaches the stomach, the parasympathetic system is stimulated to enlarge the relative veins. More blood is pumped to the stomach.</p>
<p>Everything in both systems is designed to protect the organs, tissues, and systems; in other words, the entire body. When a person’s blood pressure goes up, the baro-receptors, which help regulate the pressure in the veins, are stimulated in order to ward off the danger and the narrowing effect of the sympathetic system on the veins is taken under control. In this way, the pressure applied by the blood to the walls of the veins is eliminated. During physical exercise or in a state of stress, anxiety, or worry, the tissues use more oxygen and the sympathetic alarm is switched on.</p>
<p>Blood is pumped faster to meet the need of the tissues. During sleep, the body needs less energy and the metabolism is slow. Therefore, a slower heartbeat is required. During a time of distress or fear, the sympathetic stimulators are under pressure due to hyperventilation. Then the parasympathetic system is put into service and the heartbeat and the blood flow to tissues slow down.</p>
<p>Sphincters are ring shaped muscles that maintain the constriction of a body passage or orifice. With sympathetic signals they constrict and block the passage, and the parasympathetic signals ease them to open the way. If it weren’t for the sympathetic system, the urine produced in the kidneys would not be under control and we would wet our trousers. However, what happens in practice is that when the kidneys produce a certain amount of urine, two sphincters controlled by the sympathetic system contract and they prevent an untimely emptying of the bladder.</p>
<p>Similarly, there are sphincters in the gastro-intestinal tract. If the sympathetic system had not been given the duty of controlling them, the food we eat would not stay with us until it was absorbed and it would be disposed of immediately. On the other hand, the malfunctioning of the parasympathetic system would cause obstructions and we would suffer greatly. Take the parasympathetic system working in our urinary tract for instance. It works without our control and if it did not work, the urine collected in the bladder would press back on the kidneys and cripple them.</p>
<p>In some functions, like the breaking down of fats, ejaculation, increase in brain activity, or the contraction of skeletal muscles, the parasympathetic system is not involved. Since its involvement might harm the body, it is not given a duty here, and the sympathetic system on its own suffices.</p>
<p>There are several other functions carried out by the autonomous nervous system. It works without our will or conscious control. As humans we tend to claim: “I did this, I did that.” When you eat something, your conscious control is limited to chewing the food and swallowing it. We cannot tell our stomach to digest or not to digest the food. In a healthy body, all of the involuntarily functioning mechanisms seem to know what to do, at the right time and in the right amount. But are these systems really “autonomous,” doing what they will? Can it be coincidence that each time the perfect choice out of thousands of possibilities is made? Is it at all possible for these fascinating systems to be a just a work of random causes?</p>
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		<title>Who Has No Fingerprints?</title>
		<link>https://fountainmagazine.com/all-issues/2006/issue-56-october-december-2006/who-has-no-fingerprints/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Oct 2006 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 56 (October - December 2006)]]></category>
		<category><![CDATA[acids]]></category>
		<category><![CDATA[car]]></category>
		<category><![CDATA[chains]]></category>
		<category><![CDATA[child]]></category>
		<category><![CDATA[children]]></category>
		<category><![CDATA[crime]]></category>
		<category><![CDATA[criminal]]></category>
		<category><![CDATA[detectives]]></category>
		<category><![CDATA[fingerprint]]></category>
		<category><![CDATA[fingertips]]></category>
		<category><![CDATA[glands]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[identical]]></category>
		<category><![CDATA[impressions]]></category>
		<category><![CDATA[leave]]></category>
		<category><![CDATA[natural]]></category>
		<category><![CDATA[qur’an]]></category>
		<category><![CDATA[secretions]]></category>
		<category><![CDATA[See-Think-Believe]]></category>
		<category><![CDATA[whirls]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2006/issue-56-october-december-2006/who-has-no-fingerprints/</guid>

					<description><![CDATA[How is it that the fingerprints of children disappear in 24 hours while those of adults remain for longer periods? * How do we leave traces of ourselves everywhere we touch with hardly visible fingerprints? * Methods used for fingerprint identification… * The signature we always carry with us: Our fingerprints… A little girl in [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><b><b>How is it that the fingerprints of children disappear in 24 hours while those of adults remain for longer periods?</b></b></p>
<p>* How do we leave traces of ourselves everywhere we touch with hardly visible fingerprints?</p>
<p>* Methods used for fingerprint identification…</p>
<p>* The signature we always carry with us: Our fingerprints…</p>
<p>A little girl in the US was kidnapped in 1993. Finding an opportune moment to escape, the child fled to a nearby neighborhood. Based on the girl’s statement, the police arrested a suspect, who told them about the other perpetrators and the car used for the abduction.</p>
<p>Realizing that there was missing evidence, the defendants asked for evidence of the child’s fingerprints from the car, as she had testified that she was in the automobile for hours. Strangely enough, despite scanning the entire vehicle, the detectives only found the fingerprints of the defendants. The joy of the latter made the child and her parents afraid that they would be unable to prove her presence in the car.</p>
<p>Leaving the rest of the story to the end, we will now focus on the fingerprint screening process, which sheds light on the frustration of the criminal detectives who were unable to find the child’s fingerprints in the car.</p>
<p>Innately found in the DNA structure of each and every individual, fingerprints are actually formed in the early embryonic stage with the infinite knowledge and might of the Creator. No two fingerprints have ever been found to be identical in every detail, despite billions of comparisons. This miracle alludes to the omnipotence and omniscience of God. Fingerprints are never exactly alike, but unique for each individual, except identical twins. To achieve this requires the infinite knowledge of the One Who distinguishes the fingerprints of all the living and dead, as well as those who are to be born. The fingerprints of identical twins are identical because the same egg has been inseminated by the same sperm and has then split into two, and thus the two babies have exactly the same DNA structure.</p>
<p>As is well-known, fingerprint identification stands head and shoulders above all other human identification procedures as the most reliable means of identifying individuals worldwide. The Qur’an speaks of the revival of every human being in all their particularities down to their fingertips, thus drawing our attention to the uniqueness and distinctive features of the fingertips of each and every individual. Only if one perceives the Qur’an as being the Word of God can they avoid the great difficulty inherent in attempting to explain how the Qur’an is able to refer to this issue; at the time of the revelation, 14 centuries ago, this matter was not known, rather, it only became known in modern times:</p>
<blockquote>
<p><em>Does the human think that We will never assemble his bones (to resurrect him)? Yes indeed, We are able to make complete his very fingertips. (Qiyamah 75:3-4) </em></p>
</blockquote>
<p>Fingerprints are friction whirl formations on the skin of the fingertips that are perpendicular, circular, oval, or made up of patterns parallel to each other. To make impressions of the fingerprints, the fingertips are pressed first on an ink pad, and then on a card; the ink impressions on the card retain the shape of the whirls. The fingerprints collected from items of evidence from a crime are matched (or not) with the suspect’s fingerprints. The fingerprint database archived in this way is the most reliable way to conduct criminal record checks when needed.</p>
<p>But how are the impressions of the fingerprints retained on the objects that have been touched? Fingerprints are deposited by the natural secretions of the eccrine glands which are present in the skin of the fingertips. When we touch an object, natural sweat secretions are discharged from the glands at the fingertips and these secretions remain on the surface in the shape of the whirls.</p>
<h3><b>Fingerprints of children</b></h3>
<p>How is it, then, that the fingerprint impressions of the child in the story could not be found at the crime scene? 99% of the secretion produced from the glands is water. The remaining 1% is of fatty acids, ethers, amino acids, and salts. It has been found, in contrast to the fingerprints of adults, which include long carbon chains linked by ethers, that the fingerprints of children have mostly non-etherized, short chains of fatty acids. These short chains of fatty acids on the fingertips of children are volatile. Thus, the fingerprints of children evaporate in 24 hours, while those of adults remain for longer periods. For this reason, fingerprint detection should be done as soon as possible in crime scenes in which children are involved.</p>
<p>We normally cannot see the impression left by the whirls. Criminal detectives, however, use electronic, chemical, and physical processing techniques that permit the visualization of invisible or hidden latent print residue from natural secretions of the eccrine glands on the fingertips. They then take the photographs of the impression to compare with fingerprint impressions of suspects and those on the database.</p>
<p>Amazingly enough, something as simple as sweat-which we mistakenly think is composed of pure water-can be used to solve serious issues as needed, because our fingerprints, which are hardly visible, leave clear signs of our presence everywhere we touch. It is not difficult to understand, then, that nothing has been created to vanish for ever; just as we leave our fingerprints everywhere, at every moment we also leave our own images in different forms of action in the minds of others and they are recorded on the heavenly plates. By the way, if you think that the suspects in the child abduction case were able to get away with it, you are wrong! Though her fingerprints could not be found in the car, the relief of the suspects did not last long. A small fiber from her clothing was found in the car, thus proving them to be guilty.</p>
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