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

					<description><![CDATA[Athlete’s foot is a frequent infection that millions of people suffer from annually. I once had it during my military service where we had to wear boots almost an entire day. Once during a noon intercession, I performed my ablutions to pray and I placed my feet under the sunlight to dry them. I was [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-7061" src="https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54.jpg" alt="Flies" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2021/01/11-a-c54-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<p>Athlete’s foot is a frequent infection that millions of people suffer from annually. I once had it during my military service where we had to wear boots almost an entire day. Once during a noon intercession, I performed my ablutions to pray and I placed my feet under the sunlight to dry them. I was also hoping that ultraviolet rays from the sun would be good for the infection. Soon, flies swarmed in between my toes. When I could not bear the excessive itching, I tried to kill the flies until I was stopped by a friend who reminded me of the great sage Bediuzzaman’s comments where he called flies “cleaning workers.” At that time, I also remembered Prophet Muhammad’s (peace be upon him) words on flies. So, I patiently endured the nuisance, and repeated the same procedure for the next three or four days. Eventually, my feet were healed and there was no trace of the fungi.</p>
<p>In one of his very interesting hadiths, the Prophet, peace and blessings be upon him, is reported to have said the following about flies: “If a fly falls into your drink, dip it into your drink, then throw it away, for on one of its wings is a disease, and on the other is a cure. It dips the wing with the disease to protect itself” [1]. This hadith has been a reason for much controversy mainly due to germ disease theory.  According to Jonathan C. Brown, “even before modern medicine, the Hadith of the Fly was raising skeptical eyebrows and prompting Sunni defensiveness as early as the writings of Ibn Qutayba (d. 276/889)” [2]. Brown also mentions that this hadith “could be false or it could be true, since scientists used the flesh of a snake to help prepare antidotes to its poison” [3].</p>
<p>Before the microscope was invented it was impossible to define microbes or talk about the anatomy or microbiology of flies as we can today. However, the introduction of experimentation and observation as an important scientific method with the Renaissance served as a turning point in Western scientific revolution. Thus, the “proof-based medicine” conception that relies on experimentation and observation emerged as a precursor to today&#8217;s medicinal and scientific research. The importance of perceptions that rely on causes relating to the material world in persuading the human mind cannot be denied. It is harder to make people believe in something unless they are provided with concrete results that appeal to our five senses. We should not rush to deny any claim solely based upon our preconceptions and prior knowledge without doing any research about it; rather, we should pass our judgment on it after experimentation and observation.</p>
<p>Some people may automatically reject the idea that when a fly falls in our food or drink that we should immerse this microbe-carrying insect completely and they may say that this would not eliminate the microbes. Indeed, it may sound reasonable to assume that this disgusting insect that feeds on all sorts of dirt would cause only diseases. If you have an ample supply of food or water and if you do not have the stomach for it, you can of course refrain from eating or drinking such a food or drink. But, you can hardly advise someone who has very little water or food in a desert or at the time of famine to throw away what they have because of a fly.</p>
<p>We should examine different types of flies in laboratory settings using the method of experimentation and observation. First of all, it is very difficult to prove that someone can contract an illness from eating food in which a fly had fallen into although he or she had immersed that fly completely in that food. If it is proven that someone becomes ill due to a fly&#8217;s alighting in their food, then strong objections can be raised. If it is said that there many diseases caused by flies, no one will deny it. The point is not whether flies carry germs, but whether this advice for being protected from the germs carried by flies is correct or not. As a matter of fact, the advice by the Prophet seeks to protect us from diseases that may be caused by germs carried by flies. The great scholar Bediuzzaman’s words on flies also give us an alternative perspective to consider about these “tiny birds”:</p>
<blockquote>
<p>“…Flies are dutiful about cleaning away noxious substances or germs that cause disease. By sucking up and absorbing harmful germs, they destroy them, and they cause noxious or poisonous substances to change into other harmless forms, thus preventing the spread of many contagious diseases. A sign that they are both laborers for health and cleansing operatives and chemists, serving many instances of wisdom, is the fact that they exist in extremely great numbers. For the things that are valuable and beneficial are multiplied.” [4]</p>
</blockquote>
<p>The hadith of the Prophet and Bediuzzaman’s commentary encourage us to explore more about flies and whether they can be a source of healing in any way.</p>
<p>Flies are very ubiquitous on earth. There are approximately 125,000 species of flies, but only ten species live in our homes and are of concern to us. They feed on garbage and organic waste materials that act as a breeding ground for microbes such as bacteria, fungi, and viruses. The female fly lays down more than 100 eggs in the dung of some animals or in garbage. After one day, the larva emerges to feed on the surrounding organic materials. In two weeks, they become full-grown flies. In four generations, one female fly can lay 1.5 million eggs, but fortunately the majority die due to weather circumstances or become food for birds, reptiles, amphibians, and other insects. A fly can live for 60 days at most.</p>
<p>Given the ecological balance in nature, one comes to accept that there should be species that will remove all sorts of organic waste, garbage, dead animals or plants, and similar things by eating them. Houseflies feed on the rotting corpses of animals while female horseflies suck blood. How can flies, which act as health workers that are charged with the duty of cleaning the world, digest so many diverse amounts of garbage and waste?</p>
<p>Flies get their nourishment differently from other animals. What other animals do for digestion is done by flies outside their bodies. They do not have teeth-like structures in their mouths in order to chew solid, dry food and therefore have to turn such food into liquid form or split it into 0.45-mm or smaller pieces. In this liquid form, flies can easily suck up their food using their suitably shaped mouths. To do this, flies vomit a saliva-like liquid, containing enzymes and acids, and that disintegrates the solid food into something that can easily be digested in a couple of seconds. In this process, some of the microbes in that waste food can be disintegrated while the rest will be sent to the stomach.</p>
<p>These foods and microbes taken inside in the form of vomit are sent to a sac called a “crop” if they are not small enough to go through the digestive tract. Flies produce fresh saliva regularly during which the vomit moves between their mouths and crops. Eventually, the sufficiently liquefied food is sent to the stomach which contains enzymes and acidic content as well as partially disintegrated microorganisms.</p>
<h3>What does scientific research tell us?</h3>
<p>Based on the theory that flies must have remarkable antimicrobial defenses and resistance to survive the bacteria from rotting dung, meat, and fruit, a team at the department of biological sciences at Macquarie University in Australia set out to identify those antibacterial properties.</p>
<p>“Our research is a small part of a global research effort for new antibiotics, but we are looking where we believe no one has looked before,” said Joanne Clarke, who presented the group&#8217;s findings at the Australian Society for Microbiology Conference in Melbourne.</p>
<p>Clarke&#8217;s research showed that flies produce their own antibiotics, and this was tested on four different fly species. Such research may lead to better treatments for human infections from Escherichia coli and other virulent bacteria even, perhaps, Staphylococcus aureus (MRSA).</p>
<p>Upon preliminary results, a global pharmaceutical company decided to support the research over the next six months by trying to isolate antibiotic compounds from the material collected from the flies. The research team is trying to identify the specific antibacterial compounds. As antibiotics that will eventually be invented and chemically synthesized come from the body surface of flies, not from other fungi or bacteria, it is believed that any gene that gives resistance to microbes will not be easily transferred to pathogens and the new antibiotic form will have longer and more effective treatment duration [5].</p>
<p>Later, Russian doctors had developed interest in this topic and observed that flies contain many substances that can be more effective than traditional medications and certain fly larvae have very strong therapeutic effects [6].</p>
<p>Noting that flies should be kept away from hospitals, Professor Juan Alvarez Bravo at the University of Tokyo expressed his support for such research, saying, “But soon we will witness a rapid treatment for many diseases, which consists of extracts from flies” [7].</p>
<p>Some researchers at Auburn University of the United States discovered a protein in the fly’s saliva which can accelerate the lengthy process of healing wounds and chronic skin cracking. Entomologists Ed and Mary Cupp managed to isolate the protein which houseflies inject into their prey to increase blood flow in the skin of their prey. Mary Cupp and surgeon Steven Swaim demonstrated that surgical incisions, skin ulceration, and diabetic foot lesions treated with solutions that combine antibiotics and this protein heal faster and stronger than incisions treated with antibiotics alone [8, 9].</p>
<p>In another study, it was found that epithelial cells forming the inner layers of the front and back intestines of the fly protect it from the bacteria it swallows thanks to a special cuticular lining, and in this way, bacteria never directly touch the intestinal epithelium and cannot give any damage to it. In this study, it was noted that people nurtured a radical approach to flies and that fly control has been abused for the sake of human health, suggesting that flies may be the source of novel germicides that make use of their antimicrobial digestive enzymes, lysozyme, and antimicrobial peptides [10].</p>
<p>Viruses cause many diseases in cattle, sheep, and birds. These diseases include encephalitis, aphthous fever (foot and mouth diseases), and duck plague which can be transferred to people through infected animals. Some crops such as potatoes, tomatoes, bananas, and sugarcane can also be destroyed by viral infections.</p>
<p>Flies carry the viruses of many diseases which are consequently transferred to man&#8217;s food, drink, and body. Of these viral diseases are common flu, measles, mumps, chickenpox, warts, yellow fever, infectious liver diseases, some cases of paralysis, some types of cancer, and some chronic diseases of the central nervous system.</p>
<p>El-Naggar, Zaghloul, from Egypt, indicates that some of the disease-causing viruses may directly infect living beings and cause damage to their cells, while there is a type of virus which infects bacteria cells known as “bacteriophage.” These viruses, which can kill the bacteria they infect in a short time, are known as “virulent bacteriophage.” Those viruses that do not kill the bacteria they infect are called “temperate bacteriophage” [11].</p>
<p>After a bacteriophage infects a bacterium, more than 100 viruses are released from that bacterium and each of these viruses can infect new bacteria. The spreading of infection may continue until all vulnerable bacteria cells die. After it was discovered that bacteriophages are parasites of bacteria, they started to be used in treating the diseases caused by bacteria. However, their use in this manner declined after the discovery of antibiotics. Yet, the interest in phage treatment was revived after the emergence of bacterial resistance to antibiotics [12].</p>
<p>Researchers from Stanford University announced that they found a substance in flies that can improve the human immune system [13].</p>
<p>The work by Rehab Mohammed Atta from the Microbiology and Immunology Department, National Research Center, Cairo, Egypt, is quite remarkable [14]. In this research, the extracts taken separately from the left and right wings of flies were used against the bacteria and fungi calculated on nutrient “agar” media in the laboratory. It was demonstrated there was both bacterial and fungal growth for the left wing extract plates while no bacterial or fungal growth was reported for the right ones.</p>
<p>Given the fact that the garbage and rotting corpses on which flies feed from contain numerous dangerous bacteria, it is quite reasonable that it contains antibacterial materials necessary for its survival. In this case, the fly&#8217;s needs might be of service as sources of antibiotics that can prevent epidemics among human beings, and this may be the reason why they were created in the first place: not to be a source of nuisance but a source of healing for us.</p>
<p>Aj-Taili, et al., from the department of medical microbiology, Qassim University in Saudi Arabia, conducted an experiment using water, honey, and various fruit juices in different cups. They found no germ in the solution in which the whole body of fly was immersed while the solution in which only one wing of the fly was dipped indicated the presence of germs [15].</p>
<p>In sum, we can say that antibacterial materials produced in the bodies of flies protect them against the microbes in their environments and that these microbes can prevent epidemics among human beings. At the very least, this topic deserves in-depth research. Atta&#8217;s study confirms the virtue of the hadith that says, “The best way to release this vital antidote is to dip the fly in a liquid because these substances are concentrated on the outer surface of the fly body and wing.” Abduldaem al-Kaheel refers to this study in his website: “This is logical because the fly has a lot of harmful bacteria on the outside of her body and therefore in order to continue in her life, it should also carry anti-bacterial materials; these materials were furnished by God to protect it from viruses and diseases.” In the light of these studies, the need for conducting more research for obtaining antibiotics from the right wing of the fly is clear [16].</p>
<h3>References</h3>
<ol>
<li>Abu Dawud, At&#8217;imah, 49. Also see Bukhari, Tib, 57, Bed&#8217;u al-Khalk 17; Ibn Majah, Tib, 31, Nasa&#8217;i, Far&#8217;, 11.</li>
<li>Brown, Jonathan A. C. 2009. Hadith: Muhammad’s Legacy in the Medieval and Modern World, p. 264.</li>
<li>Ibid. p. 255.</li>
<li>Nursi, Bediuzzaman Said. 2008. <em>The Gleams</em>. The Light, Inc. p. 376.</li>
<li>Danny Kingsley, ABC Science Online, 1 October 2002, The new buzz on antibiotics. Clarke, J., Gillings, M. and Beattie, A. (2002). Hypothesis-driven drug discovery. Microbiology Australia, pp. 8–10.</li>
<li>Petersburg State University, (2006). The fly effect: Russian Scientists Invent new medicine with the help of flies.</li>
<li>Bravo, J. A. (1994). The ointment in the fly: antibiotics. New antibiotic derived from a common fly. The Economist (US).</li>
<li>Ed and Mary Cupp (2005). Protein in Fly Saliva Speeds Healing of Incisions Wounds. Auburn University. R Am Ex Ars Medica, Inc., 7:23.</li>
<li>Protein in Fly Saliva Speeds Healing of Incisions, Wounds 20-Jan-2005. www.newswise.com/articles/protein-in-fly-saliva-speeds-healing-of-incisions-wounds</li>
<li>Nayduch, D. and Burrus, R.G. (2017). Flourishing in Filth: House Fly–Microbe Interactions Across Life History. Special Collection: Filth Fly–Microbe Interactions. Annals of the Entomological Society of America, 2017, Vol. 110, No. 1.</li>
<li>El-Naggar, Zaghloul, (2010). Housefly Falls into One’s Drink! 09 September 2010. www.quranandscience.com/quran-science/sunnah-science/204-housefly-falls-into-ones-drink-274</li>
<li>Aydogan, D.Y., Hadimli, H.H. (2016). Bakteriyofaj Tedavisi (Bacteriophage Treatment), Etlik Vet. Mikrobiyol. Derg.; 27 (1): 38–47.</li>
<li>Stanford University Medical Center, 2007. Fruit Fly Insight Could Lead to New Vaccines. Science Daily. www.sciencedaily.com/releases/2007/03/070308220904.htm</li>
<li>Atta, R. M. (2014): Microbiological Studies on Fly Wings (Musca domestica) Where Disease and Treat. World Journal of Medical Sciences 11 (4): 486–489.</li>
<li>Aj-Taili, S.I., A.A.R. Al-Misnid and K.D. Al-Uteybi, (2002). Wing One and the Other Disease Carrying the Cure. Qassim University. Danny Kingsley.</li>
<li>Abduldaem al-Kaheel, 1995. New facts: fly have a cure, www.kaheel7.com/eng.</li>
</ol>
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		<title>The Bricks of Mind and Culture: Memes</title>
		<link>https://fountainmagazine.com/all-issues/2014/issue-100-july-august-2014/the-bricks-of-mind-and-culture-memes/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Jul 2014 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 100 (July - August 2014)]]></category>
		<category><![CDATA[behaviors]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[culture]]></category>
		<category><![CDATA[cultures]]></category>
		<category><![CDATA[development]]></category>
		<category><![CDATA[emotions]]></category>
		<category><![CDATA[genes]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[ideas]]></category>
		<category><![CDATA[meme]]></category>
		<category><![CDATA[memes]]></category>
		<category><![CDATA[memetic]]></category>
		<category><![CDATA[mind]]></category>
		<category><![CDATA[neural]]></category>
		<category><![CDATA[person]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[transfer]]></category>
		<category><![CDATA[understand]]></category>
		<category><![CDATA[unwanted]]></category>
		<category><![CDATA[viruses]]></category>
		<category><![CDATA[world]]></category>
		<category><![CDATA[wrong]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2014/issue-100-july-august-2014/the-bricks-of-mind-and-culture-memes/</guid>

					<description><![CDATA[Humanity exists, sustains itself, and builds civilizations upon a heritage, and genes and memes, which are altered and conserved for generations, constitute the fundamental building blocks of it. We&#8217;ve learned many things in the last 50 years about genes as biochemical polymers which carry information that controls the processes and makes up the algorithms of [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Humanity exists, sustains itself, and builds civilizations upon a heritage, and genes and memes, which are altered and conserved for generations, constitute the fundamental building blocks of it. We&#8217;ve learned many things in the last 50 years about genes as biochemical polymers which carry information that controls the processes and makes up the algorithms of our biological development. However we still do not have clear information pertaining to the development, transfer, conservation, and divergence of culture formation which is to a great extent the product of human mind.</p>
<p><span id="more-1668"></span></p>
<p>Culture as we know it is generated from thoughts, emotions, attitudes and behaviors, networks of symbols, values, beliefs, and sensory perceptions. Culture itself also changes, differs and is transferred among generations. Memetics is a new field of science that tries to understand questions such as How does the mind work? How do humans learn and develop? How does culture form and transfer to future generations?</p>
<p>One of the major tenets of memetics is the meme, or meme concept. The meme concept is assumed as a mental unit to understand the structure and function of culture. Symbols (imaginations), cognates, archetypes, images, concepts, values, beliefs, emotions, attitudes, and behaviors that are produced inside the human mind are either memes or a meme set. Memes are described as mysterious codes of behavior, and the main production unit of reality and function of the human mind. Concepts like mind, cognition, and memory as well as the functioning of the genes and viruses have been instrumental in the development of the meme.</p>
<p>If we consider the human brain as a computer, genes can be regarded as units that make up the hardware, and memes as units for software. Speech and language skills enable the formation and transfer of memes that build mind and culture. Forms of literature and different sciences are also memes that help define a specific culture and civilization. It is accepted that memes are units that code, reproduce, and store ideas, emotions, and behaviors.</p>
<p>Since memes can only be reproduced in the mind and transferred via the brain&#8217;s activities, they are also described as the viruses of the cultural world. The common feature of biological and computer viruses is that they leak into the system by concealing themselves, and thus infect other structures in the medium by replicating there. Through memes, acting as agents (viruses) that reproduce and diversify ideas, culture is transferred via media, speech, and mass communication devices. One such example of this would be commercials. Commercials and other forms of advertisements are produced by utilizing powerful memes.</p>
<p>Genes and the laws of genetics help us to understand memes. Genes and memes are very similar to each other in terms of working principles. Just like genes, memes are also multidimensional and multifunctional. The roles that genes play in the biological world are similarly carried out by memes in the mind. There are regulatory memes, just like regulatory genes. There are immunoglobulin genes in charge of protecting against diseases, just as there are memes that guard against bad, harmful, and unwanted cultural practices. Ethical teachings, decency, the concept of right and wrong, lawful and unlawful are examples of memes that conserve a culture&#8217;s spiritual and ideological world.</p>
<p>Genes have helped the brain to develop in such a way that they store and reproduce memes. The synapses and neural networks of the brain are drawn towards certain memes. Neural genes and their products (neurotransmitters, neural networks and synapses) work in conjunction with these memes, spreading their content.</p>
<p>Knowledge is spread in this way. Like unlocking a door is dependent on a complete match and fit of the key and lock, the production, storage, reproduction, and transfer of memes relies on fitting with the proper genes. In other words, there is a high level of adaptation and association in between memes and memetic structures that are encoded into the structure of the brain. Therefore, not every meme can find its place in each mind; likewise, not every brain can accommodate and propagate all meme forms. This relation explains both why humans have different interests and respond differently to the same stimulant. In the meantime, it sheds light on the role of memes in the development of different mentalities, perceptions, and opinions.</p>
<p>Just as genes affect memes, memes also affect genes. Memes that form in the mind play a role in the expression, regulation, and control of genes. Memes such as emotions and ideas lead to alterations in the electrical activities of the brain. Furthermore, this triggers the excretion of neurotransmitter materials and the synthesis of transcription factors that switch gene activity on and off. Some of these memes can be pleasant, or they may be unwanted and disturbing. Thus, there is also a need for anti-memes, in order to neutralize unwanted and disturbing ones.</p>
<p>Belief systems, and conversely non-belief, produce different memes and this difference causes variations in a person&#8217;s neural gene activity. The mental processes of a person possessing right or wrong memes shaped by religious faith will not be the same compared to a person who does not have these memes. This is similar to the way a person with positive and joyful memes sees life in a different light than someone who has negative and harmful memes.</p>
<p>The task that antivirus programs have in the computer world is similar to the tasks of anti-memes in our mind. Of course, a person can influence this process through willpower. Good things represent nice and pleasant memes and wrong ones symbolize unwanted and harmful memes. Of course, each country or culture has different definitions of what is good and what is wrong. From this perspective, so-called &#8220;culture wars&#8221; are actually wars of memes and memetics. It is only possible to understand civilizations through analyzing the algorithms and memetic maps which were used to erect them.</p>
<p>Memes are investigated under three main groups according to the anatomical and functional structure of the brain. The first is memes that are stored and populated in the neocortex, which is associated with advanced mental functions such as willpower, consciousness, and intangible thinking. These memes are also defined as a cognate (a unit that represents the information generated and stored in the cortex) in cognitive sciences.</p>
<p>The second one is memes that surface, stay, and diversify in the mezolymbic region, which houses the centers for reward and pleasure, fight or flight, and which generates simple and complex emotions.</p>
<p>The third type is memes that are associated with the back region of the brain that is in charge of activities pertaining to physical necessities, such as eating and drinking. Due to the make-up of our brains, personal memes for desire, fear, and other habits are significantly different from each other. But these three different types of memes play a role in shaping brain chemistry and culture. The way we think originates from these different memetic maps via different memes of subconscious content. Due to the differing makeup in personalities, because of memes and genes, people have different degrees of willpower. In summary, if there is not a problem regarding the foundation of genetic and memetic interaction, we develop and mature with the capacity to separate the good, right, and decent memes from the wrong, harmful, and disturbing ones. In this process, emotions and behaviors that are inside and outside of our will are subject to regulation and the control of psychological and spiritual states, and genetic-memetic systems. We should not forget that our ideas, emotions and behaviors are determined under the control of our intelligence, conscience, and willpower, which are the dynamics of our soul.</p>
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		<title>Science Square (Issue 95)</title>
		<link>https://fountainmagazine.com/all-issues/2013/issue-95-september-october-2013/science-square-issue-95-september-2013/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sun, 01 Sep 2013 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 95 (September - October 2013)]]></category>
		<category><![CDATA[brain]]></category>
		<category><![CDATA[cell]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[discovered]]></category>
		<category><![CDATA[ears]]></category>
		<category><![CDATA[genes]]></category>
		<category><![CDATA[giant]]></category>
		<category><![CDATA[Giant viruses]]></category>
		<category><![CDATA[gps]]></category>
		<category><![CDATA[grid]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[navigation]]></category>
		<category><![CDATA[pandoraviruses]]></category>
		<category><![CDATA[participants]]></category>
		<category><![CDATA[people]]></category>
		<category><![CDATA[potentially]]></category>
		<category><![CDATA[recordings]]></category>
		<category><![CDATA[researchers]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[type]]></category>
		<category><![CDATA[virus]]></category>
		<category><![CDATA[viruses]]></category>
		<category><![CDATA[visual]]></category>
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					<description><![CDATA[The Brain’s GPS Jacobs J. et al. Direct recordings of grid-like neuronal activity in human spatial navigation. Nature Neuroscience, 2013 Do you happen to have a poor sense of direction? Do you often find yourself holding a map upside-down? Well, now you can blame your grid cells. Using direct human brain recordings, researchers have identified [&#8230;]]]></description>
										<content:encoded><![CDATA[<h3>The Brain’s GPS</h3>
<p><em>Jacobs J. et al. Direct recordings of grid-like neuronal activity in human spatial navigation. Nature Neuroscience, 2013</em></p>
<p>Do you happen to have a poor sense of direction? Do you often find yourself holding a map upside-down? Well, now you can blame your grid cells. Using direct human brain recordings, researchers have identified a novel type of cell in the brain that helps people keep track of their relative location while navigating through an unfamiliar environment. Scientists got this rare opportunity to identify these unique cells while they studied brain recordings of epilepsy patients via electrodes implanted deep inside their brains. These cells have been called &#8220;grid cells&#8221; because they are activated in a triangular grid pattern. The &#8220;grid cell&#8221; is distinct among brain cells because its activation represents multiple spatial locations, which allows the brain to keep track of navigational cues, such as how far you are from a starting point or your last turn. This type of navigation is called path integration. During brain recordings, 14 study participants were asked to play a video game where they ride a virtual bicycle to navigate from one point to another to retrieve objects and then recall how to get back to the places where they found the objects. While participants were playing the game, researchers examined the relation between navigation and the corresponding activity of individual neurons. Results were striking: each grid cell responded at multiple spatial locations that were arranged in the shape of a grid suggesting that the navigation information is principally encoded in our brains through this triangular grid pattern. Without grid cells, humans would frequently get lost or have to navigate based solely on landmarks. Differences in how well the grid cells work could potentially explain why some people have a better sense of direction than others. In addition, grid cells are located in the entorhinal cortex which is a critical component of human memory. The entorhinal cortex is also the first brain region affected in Alzheimer’s disease. Thus, understanding how grid cells work could potentially help us to understand why people with Alzheimer’s frequently become disoriented as well as to develop new strategies to improve brain function in the affected individuals.</p>
<h3>Giant viruses open Pandora’s box</h3>
<p><em>Philippe N. et al. Pandoraviruses: amoeba viruses with genomes up to 2.5 Mb reaching that of parasitic eukaryotes. Science, 2013 Jul 19</em></p>
<p>On a fairly ordinary day, two French biologists were analyzing water samples collected off the coast of Chile. What they saw under the microscope was quite amazing: a previously unidentified organism, about the size of a bacterial cell, appeared as a large dark spot. Astonishingly, these new organisms seemed to be infecting and killing the amoeba in the water. Later, another group of researchers found a similar organism in a pond in Australia. Both groups soon realized that they discovered a type of “giant” virus which is at least twice as big as the largest known viruses. The biggest virus discovered so far was called Mimiviruses, with a size of 700 nanometers and carrying more than 1000 genes. The newly discovered viruses are called Pandoraviruses, which are 1 micrometer long and 0.5 micrometers across. Pandoraviruses are visible under a light microscope and contain more than 2500 genes. A viral genome consisting of 2500 genes is extremely large compared to known viruses, such as the Influenza or HIV, which only contain 10 genes or less. More importantly, 93% of the genes did not resemble any known lineage in the natural world, suggesting Pandoraviruses are not related to any known virus family and may represent a new life form. These findings generated new perspectives about how scientists see viruses. It raised the possibility that there might be many different kinds of giant viruses out there to be discovered. Some biological features in these giant viruses could easily blur the line between life forms and viruses, which are considered to be non-living. Although Pandoraviruses do not infect human cells, there might be other giant viruses out there that could infect human cells. There are still a lot of human diseases known to have an infectious component but for which no infectious agent has been identified yet. This study will definitely encourage people to actively look for the role of giant viruses in some diseases.</p>
<h3>See through the Ears</h3>
<p><em>Haigh A. et al. How well do you see what you hear? The acuity of visual-to-auditory sensory substitution. Frontiers in Psychology, 2013 Jun 18</em></p>
<p>Scientists have created a revolutionary device for the blind that allows them see the world through their ears. The device “vOICe” trains the brain to invoke mental images of what they are hearing around them. The first test trial of vOICe has been performed on blindfolded sighted people. The participants took a standard eye test where they were asked to view the letter E turned in four directions and in various sizes. The best visual acuity is considered 20/20 (distance in feet/size of the E) and the majority of participants were able to achieve the best performance possible, nearly 20/400 sight. This is an impressive result when compared to an alternative stem-cell based sight restoration technique, which only yielded 20/800 visual acuity. In addition, the affordable and non-invasive nature of vOICe would offer a unique option. But, how might this work in practice? One can imagine that visually-impaired people would wear a discreet head-mounted camera such as Google Glass and receive wireless audio information through mini earbuds. As the person turns to look in various directions, the device scans images and correlates those with soundscapes, then the person’s brain would momentarily translate those into mental images of the objects — like braille for the ears. These sensory substitution devices could potentially be employed in combination with other alternative invasive techniques to train the brain to see again, or even to see for the first time.</p>
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		<title>Science Square (Issue 91)</title>
		<link>https://fountainmagazine.com/all-issues/2013/issue-91-january-february-2013/science-square-issue-91/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Jan 2013 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 91 (January - February 2013)]]></category>
		<category><![CDATA[bat]]></category>
		<category><![CDATA[bats]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[cytokine]]></category>
		<category><![CDATA[damage]]></category>
		<category><![CDATA[diseases]]></category>
		<category><![CDATA[dna]]></category>
		<category><![CDATA[fly]]></category>
		<category><![CDATA[free]]></category>
		<category><![CDATA[genes]]></category>
		<category><![CDATA[immune]]></category>
		<category><![CDATA[infections]]></category>
		<category><![CDATA[inflammation]]></category>
		<category><![CDATA[mammals]]></category>
		<category><![CDATA[mechanism]]></category>
		<category><![CDATA[response]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[sequences]]></category>
		<category><![CDATA[species]]></category>
		<category><![CDATA[storm]]></category>
		<category><![CDATA[toxic]]></category>
		<category><![CDATA[viruses]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2013/issue-91-january-february-2013/science-square-issue-91/</guid>

					<description><![CDATA[Bats are the only mammals that are able to fly and they make up almost one quarter of all mammal species on earth. These amazing creatures are free from most diseases and live exceptionally longer when compared to other mammals of similar size. Scientists recently analyzed the DNA sequences of two different bat species, the [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Bats are the only mammals that are able to fly and they make up almost one quarter of all mammal species on earth. These amazing creatures are free from most diseases and live exceptionally longer when compared to other mammals of similar size. Scientists recently analyzed the DNA sequences of two different bat species, the Black Flying Fox and the David’s Myotis, to get an insight into the disease-resistance and longevity of bats. Bats are known to carry many deadly viruses including Ebola and SARS, but interestingly they never develop diseases from these viruses. Analysis of DNA sequences of two distant bat species revealed that bats were missing cytokine storm genes that trigger extreme and fatal immune reactions to some infections in other organisms. Cytokine storms are often triggered by the host’s immune system in response to certain infections and they end up not only killing the infecting viruses but also the organism’s own cells. Since bats don’t have the cytokine storm mechanism, they seem to handle many infections or diseases more rapidly and efficiently with a depressed inflammation response.</p>
<p>These findings might help researchers to design more effective drugs for various human infections by focusing on the minimization of the inflammation. Moreover, bats are capable of sustained long flights, as some bat species can fly more than 1,000 km in a single night. With such intense physical activity, cells often produce high levels of toxic (free radicals) that would usually damage DNA sequence.</p>
<p>This study also found that bats are equipped with a highly functional set of genes that mediates DNA repair in response to DNA damage, thus bats are protected from toxic cellular waste with this advanced mechanism. Aging, cancer and infectious diseases are the three major issues medicine is facing today and biological abilities granted to bats seem to provide important clues for us to discover new ways to combat these big health problems</p>
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		<title>Science Square (Issue 89)</title>
		<link>https://fountainmagazine.com/all-issues/2012/issue-89-september-october-2012/science-square-issue-89/</link>
		
		<dc:creator><![CDATA[The Fountain]]></dc:creator>
		<pubDate>Sat, 01 Sep 2012 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 89 (September - October 2012)]]></category>
		<category><![CDATA[airborne]]></category>
		<category><![CDATA[aizenberg]]></category>
		<category><![CDATA[bacteria]]></category>
		<category><![CDATA[bird]]></category>
		<category><![CDATA[flora]]></category>
		<category><![CDATA[flu]]></category>
		<category><![CDATA[Flu virus]]></category>
		<category><![CDATA[Frosty freezers]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[immune]]></category>
		<category><![CDATA[mice]]></category>
		<category><![CDATA[microbial]]></category>
		<category><![CDATA[pandemic]]></category>
		<category><![CDATA[plant]]></category>
		<category><![CDATA[received]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[Science Square]]></category>
		<category><![CDATA[slippery]]></category>
		<category><![CDATA[surface]]></category>
		<category><![CDATA[surfaces]]></category>
		<category><![CDATA[virus]]></category>
		<category><![CDATA[viruses]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2012/issue-89-september-october-2012/science-square-issue-89/</guid>

					<description><![CDATA[1- Frosty freezers no more Original article: Kim P. et al, ACS Nano (2012, online ahead of print) Frost formation on aircrafts at high altitudes poses major safety threats and high-maintenance costs. Now, Joanna Aizenberg with her research team present a solution in their recent publication reporting on outstanding capabilities of a surface coating to [&#8230;]]]></description>
										<content:encoded><![CDATA[<h3><b>1- Frosty freezers no more</b></h3>
<p><em>Original article: Kim P. et al, ACS Nano (2012, online ahead of print)</em></p>
<p>Frost formation on aircrafts at high altitudes poses major safety threats and high-maintenance costs. Now, Joanna Aizenberg with her research team present a solution in their recent publication reporting on outstanding capabilities of a surface coating to prevent frost formation on metal surfaces. The technology called SLIPS (Slippery, Liquid-Infused Porous Surfaces) was inspired by the slippery surface of the carnivorous pitcher plant, which enables the plant to capture insects. &#8220;Some of the most extreme examples in biology can provide the most amazing and unexpected ideas&#8230;&#8221; says Aizenberg, who is a professor at the Wyss Institute for Biologically Inspired Engineering at Harvard University. Rendering surfaces slippery is not new to scientists, and the earlier inspirations also came from biology. Mimicking the surface of the leaf of another plant (Nelumbo nucifera, or commonly known as the Lotus plant), scientists have been successful in fabricating surface coatings that would repel water-based dirt, but Lotus-inspired coatings failed for oily substances. On the other hand, Aizenberg&#8217;s SLIPS technology offers a single solution for repelling any type of accumulated unwanted material. The pitcher plant thus offers a solution that virtually proves to be the &#8220;silver bullet&#8221; in generating non-sticky coatings as described again in Aizenberg&#8217;s own words: &#8220;In following its example, we should be able to develop a platform that works for almost any sticky problem, no matter how seemingly unrelated, whether it&#8217;s ice accumulation, bacterial attachment, environmental contamination, clogging of pipes, marine biofouling, or graffiti, rather than having to come up with a host of individual solutions.&#8221; Thanks to the wondrous design in the pitcher plant, it looks like doctors will be delivered from replacing bacteria-contaminated arterial stents, and we can all give a kiss goodbye to frosty freezers.</p>
<h3><b>2- Airborne bird flu virus possesses a great risk</b></h3>
<p><em>Original articles: Herfst S. et al, Science 336, 1534 &amp; Russell C.A. et al, Science 336, 1541.</em></p>
<p>Science magazine recently published a special issue (June 22, 2012 issue) on the H5N1 infection (a.k.a. bird flu) with two reports revealing the pandemic (a disease prevalent throughout an entire country, continent, or the whole world, such as AIDS) potential of bird flu. Bird flu virus has so far killed millions of birds and many more millions of birds were culled to stop the propagation of the virus. Thankfully, this virus has not yet caused a pandemic in humans mainly because of its inability to spread easily among humans. One mechanism that makes viruses highly contagious is their ability to spread through air, such as through the nose and mouths of people when they cough and sneeze. Viruses that spread through air are called airborne viruses. One big difference between bird flu virus and the more recent swine flu virus (H1N1) was that swine flu is an airborne virus and bird flu is not, and therefore swine flu caused a mild pandemic in 2009. As reported in these studies, researchers identified several genetic mutations that will cause bird flu virus to become airborne. Viruses undergo mutations all the time and unfortunately some of these identified mutations have already started taking place in circulating virus strains. This poses a great risk. One important aspect of these reports is that they were written about a year ago but withheld since now, because of concerns about misuse of this information to pose a threat to humanity. Now that the information is public, our hope is that it will be used to monitor the virus closely and be prepared if bird flu virus transforms into an airborne virus.</p>
<h3><b>3- Not all bacteria are the same after all</b></h3>
<p><em>Original article: Chung H. et al, Cell 149, 1578 (2012)</em></p>
<p>The impact of our own bacteria on human life has been intensely researched in recent years. One of the common ground is that humans acquire many useful bacteria over their existence. However, this microbial flora constantly changes as the conditions do. Therefore, the real number of 500 to 1000 microbial species inhabiting mammals is anybody&#8217;s guess. Nonetheless, some scientists did not shy away predicting a connection between having a specific microbial flora to avoid certain diseases. A recent article by Chung et al presented an interesting clue why constant change in microbial flora, especially if that leads to a loss of important bacteria, may be linked to the increase in human autoimmune disorders. &#8220;For every cell in your body that is you, that contains your specific genetic information, there are approximately nine foreign bacterial cells, primarily in your digestive tract and even on your skin,&#8221; said Dennis Kasper, professor at Harvard Medical School and senior author on the paper. To address the question if microbial affects immune system development, authors compared two groups of mice, both of which had never had bacteria in their intestine before the experiment. One group of mice received mice microbial flora and the other received human microbial flora. Both groups had similar number of bacteria in their digestive tracks. However, authors observed a stark contrast between the two groups in terms of the level of immune cells in intestinal tissues. Mice that received human flora had surprisingly low number of immune cells compared to the mice that received mouse flora, which is native to mice. When this experiment was repeated with rat microbial flora, astonishingly, similar immune deficiency was observed. &#8220;I was very surprised to see that. I would have expected more of a half-way response,&#8221; Chung said, considering how closely rats and mice are related. The study points out that we really need to preserve our own microbial flora that has been tailored for us. Disrupting this balance by means of current antibiotics overuse may have detrimental effects in the future.</p>
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		<title>Self &#8211; Defense Mechanisms</title>
		<link>https://fountainmagazine.com/all-issues/2004/issue-47-july-september-2004/self-defense-mechanisms/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Jul 2004 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 47 (July - September 2004)]]></category>
		<category><![CDATA[antibodies]]></category>
		<category><![CDATA[bacteria]]></category>
		<category><![CDATA[blood]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[cilia]]></category>
		<category><![CDATA[defense]]></category>
		<category><![CDATA[Health & Medicine]]></category>
		<category><![CDATA[immunity]]></category>
		<category><![CDATA[infected]]></category>
		<category><![CDATA[lymphocytes]]></category>
		<category><![CDATA[macrophages]]></category>
		<category><![CDATA[microorganisms]]></category>
		<category><![CDATA[neutrophils]]></category>
		<category><![CDATA[protect]]></category>
		<category><![CDATA[proteins]]></category>
		<category><![CDATA[system]]></category>
		<category><![CDATA[tissue]]></category>
		<category><![CDATA[tissues]]></category>
		<category><![CDATA[viruses]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2004/issue-47-july-september-2004/self-defense-mechanisms/</guid>

					<description><![CDATA[Self-defense is an important ability that has been given to living beings to help them survive. If a being cannot defend itself, then staying alive is impossible. Large sums of money are spent on national defense and military armament. Similarly, on a more personal level, we make expenditures to meet our natural needs, such as [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Self-defense is an important ability that has been given to living beings to help them survive. If a being cannot defend itself, then staying alive is impossible. Large sums of money are spent on national defense and military armament. Similarly, on a more personal level, we make expenditures to meet our natural needs, such as protecting our lives, clothing our bodies, and finding comfortable shelter. Contamination of our body-which is as complex as a country-by living organisms (bacteria, viruses, fungi, or parasites) is called infection. Our physical system is provided with a fairly complex and excellent immune system to help keep it alive.</p>
<p>Immunity can be divided into innate immunity and acquired immunity. The mechanisms of innate immunity are given to us by our Creator as a tool with which to protect ourselves. These are used to fight against every kind of microorganism. These ever-ready forces do not need to have met the enemy microorganisms to fight them off. Acquired immunity comes about after the infectious microbe has been encountered; this is usually as a result of infection or vaccination. Such immunities only protect the body against a specific harmful organism. T and B lymphocytes and antibodies belong in the acquired immune system, whereas other mechanisms are part of the innate immune system. We can classify the very intricate immunity mechanisms as follows:</p>
<p><b>A – Layers that cover the inner and outer surfaces of the body:</b> These are the physical structures that carry out the task of protection by covering the tissues like a shield or fortress.</p>
<p><b>1. Skin:</b> Our skin is an organ in its own right. It is created with such perfect characteristics that no microorganism can penetrate our body if there are no flaws, like gashes, scratches, or wounds.</p>
<p><b>2. Oral mucous membrane:</b> If the epithelial layer covering the interior walls of our mouth is healthy, microorganisms cannot infiltrate the blood.</p>
<p><b>3. Areas around the sexual organs:</b> The sexual organ in males is, even at birth, more protected than that of females. For female children, the epithelium covering the interior face of the organ turns into a multi-layered structure due to the impact of estrogen (sexuality hormone) that starts being secreted after adolescence. That multilayered structure blocks infections that can result from sexual intercourse. Female children before adolescence do not have estrogen, thus their genital organs have a thinner layer of epithelium and are more likely to be infected. This is why cleansing after urination should be done from the front to the back and the genital organs should not come into contact with feces. Our God of infinite mercy also gives girls a hymen in order to protect girls from germs.</p>
<p><b>B – Flora bacteria (beneficial bacteria):</b> These do not serve as mechanical obstacles, but are assigned tasks. There are some bacteria that do not cause illnesses in the urine and in the proliferation canals, the skin, throat, intestines, and the eyes. Those beneficial bacteria located in our body work for us and hinder other infectious bacteria from settling in these zones. Those places are sterile in the body of a fetus; no beneficial bacteria exist there. Protector bacteria are positioned in those places right after the birth; this is a revelation of God’s infinite compassion. For instance, a baby’s first feces are sterile because there are no bacteria in his intestines. As time passes, a baby adopts protector bacteria through his mouth by nursing, from bottles, and pacifiers. Parents should be careful about the purity of pacifiers, feeding bottles, water, and additional nourishments, particularly in the first couple of months, until the bacteria flora have been established in an infant’s body. Otherwise, babies can easily suffer from diarrhea. God equipped beneficial bacteria with some special peculiarities to be able to deter other microorganisms from settling in the body. Here are some of these peculiarities:</p>
<p><b>1.</b> They compete with infectious bacteria on the consumption of nutrients, so they restrain the reproduction of other bacteria.</p>
<p><b>2.</b> They emit bactericides that kill only pathogenic (harmful and infectious) bacteria.</p>
<p><b>3.</b> Some flora bacteria are assigned a mission to impede the reproduction of pathogenic bacteria so as to reduce pH (increase acidity) in the environment. For example, the lactobacillus in the female genital passage produces lactose by breaking down the glucose in the uterine canal in order to acidify the secreted matters in that canal. Reproduction of fungi is also obstructed in the same way. Due to that fact, some fungal diseases might emerge in genital areas or in the ears, among other places, after antibiotic treatment. Antibiotics kill not only pathogenic bacteria, but also flora bacteria. Thus, desultory usage of antibiotics should be avoided.</p>
<p>Today, beneficial intestinal bacteria are taken orally in capsules, and infectious bacteria in the intestines are killed by supplementing the flora bacteria in that organ without the use of antibiotics.</p>
<p><b>C – Mechanical cleansing: </b></p>
<p><b>1. Secretions: </b></p>
<p><b>a.Saliva:</b> Secreted continuously from the glands behind the ears, beneath the chin and beneath the tongue, saliva expels the intruder pathogenic bacteria by cleansing our mouths. It also prevents tooth decay and gum inflammation by cleaning leftover food on which bacteria could feed.</p>
<p>b. Tears: Tears are charged with the duty of cleaning the conjunctiva (the mucous membrane that lines the inner surface of the eyelids and that continues over the forepart of the eyeball) and the cornea (the transparent part of the coat of the eyeball that covers the iris and pupil and admits light to the interior).</p>
<p><b>2.Cilia:</b> These are feather-like cell extensions of microscopic size.</p>
<p><b>a.Nasal Cilia:</b> Covering the nasal mucous membrane, mucus (a slimy substance) grasps dust particles and microbes in the air due to its adhesive nature. Lumpy folds inside the nose do not let the air flow straight. Therefore, a turbulent air current occurs in the nose. This turbulent current causes the particles in the air to come into contact with this slimy substance and to get stuck there. Epithelial cells also have cilia expanding toward the nasal cavity. Every cell has nearly 200 cilia. These cilia push mucus and the dust particles attached to it toward the pharynx with an up and down whipping action (10–20 strokes per second) so as to keep them away from the lungs.</p>
<p><b>b.Cilia in the lower respiratory passages:</b> The upper surface of epithelium that is spread on the trachea, bronchi, and bronchioles is also covered with mucus. Epithelial cells in this area have cilia, too. These cilia do the same whipping action to push particles and microorganisms in the mucus toward the pharynx. They are pushed into the pharynx and expelled by coughing. One of the damaging impacts of nicotine on the respiratory system is that it paralyzes these cilia and disrupts the discharging process of harmful particles. As a consequence, smoking leads to many lung diseases.</p>
<p><b>D – Enzymes, acids and antibodies in body secretions: </b></p>
<p><b>1.Lysozyme:</b> This is a substance found in body secretions (saliva, perspiration, tear, genital organ secretion etc.) that kills bacteria.</p>
<p><b>2.Stomach acid (Hydrochloric acid, HCl):</b> Being emitted through stomach glands, HCl is a strong acid that can destroy bacteria that are able to reach as far as the stomach with the food we eat. Although we usually have our meals without cleaning our hands sufficiently or without washing them thoroughly, we rarely (except for situations where we are exposed to a high density of microbes like food poisoning or dirty drinking water) get infected via this route. The actors in this perfect protection are lysozyme and stomach acid.</p>
<p>3.Antibodies: Being present in the blood and body secretions, antibodies play a role in the defense against microorganisms. Antibodies in breast milk are passed from the mother’s blood to her milk via a very special mechanism, and are significant in the protection of an infant from infections.</p>
<p><b>E – Defender Cells:</b> Resembling special operation forces, each of these cells is trained in different parts of the body and sent into the blood circulation. Those troop-like cells, which protect us against diseases by struggling fiercely with germs that can reach the blood after overcoming many obstacles, cannot have come about merely by chance, without the participation of the All-Knowing Designer.</p>
<p><b>1.Macrophages:</b> Monocytes, a kind of leukocyte in the blood, pass from the capillaries to the tissue and turn into giant cells called macrophages that can phagocytose (swallow microbes) at a great rate. Macrophages swallow and tear down every kind of bacteria and virus that invades the body. These cells constitute the first defense line of the body and serve like advance guards. For instance, the first force to start fighting against the germs that can penetrate the skin through a scratch is the macrophages found just beneath the skin are called histiocytes. Germs that can infiltrate the blood through the intestines and reach the liver via the portal vein are eradicated by another type of macrophage. Therefore, almost no bacterium can pass from the intestines into the general blood circulation system. Germs that enter the body orally are destroyed by macrophages stationed in the lymph nodes on the tonsils. The ones that manage to reach the lungs through the respiratory paths are killed by the macrophages in the alveoli. Those cells also cause T-lymphocytes (very specially equipped cells) to proliferate by stimulating them. <b>2.Neutrophils:</b> These are the most common type (60-70%) of leukocytes. These cells participate only in fights against bacteria. When bacteria enter a tissue, some poisonous matters emitted by them cause a chemical reaction called chemotaxis; this reaction attracts the neutrophils toward the infected tissue. In this case, the neutrophils leave their capillaries for the infected tissue and find and destroy the bacteria. How can germ-eating cells, like macrophages and neutrophils, distinguish normal body cells from microbes? Undoubtedly, the Creator of such an excellent defense system does not make us worry about such a problem; it was for this purpose that God created opsonins. Opsonins are similar to adapters in that they are able to attach two different parts together and connect themselves to a specific place on the germ. Thus, macrophages and neutrophils carry out their germ-eating job perfectly, connecting themselves to those opsonins. Since our own body cells do not have receptors that can handle opsonins, they cannot be eaten. <b>3.Lymphocytes:</b> These are the troops of the immunity system with the most complicated organizations and strategies. These troops are categorized as T and B lymphocytes. They are the most important and powerful of the immunity mechanisms and constitute about 20-30% of the leukocytes in blood. They are regarded as the last defense line against those germs with which the other mechanisms cannot cope. <b>a.T lymphocytes:</b> When T lymphocytes are stimulated by macrophages, T cells that are a form of T lymphocyte secrete a matter called lymphokine. Lymphokine stimulates cytotoxic (microbe killer) T cells and B lymphocytes into action. Unless auxiliary T cells exist, the acquired immunity system collapses. Likewise, the HIV virus destroys auxiliary T cells and renders a person susceptible to disease. Even very simple infections can turn into a catastrophe for those patients. Cytotoxic T cells assault bacteria and particularly virus-infected body cells. They deliver porphyrins (proteins to make holes) into cell membranes by attaching themselves to the cells. In that way, a huge amount of water enters the cells and they get torn, due to over-swelling. Thus, viruses in the infected cells are dispersed and are neutralized by specific antibodies produced for that purpose with their infecting ability being impeded. (Viruses have to enter body cells to be able to proliferate. Only in this way can they protect themselves against antibodies and proliferate. Viruses that proliferate in cells use matters in those cells and cause them to eventually break apart, then move onto other cells.) <b>b.B lymphocytes:</b> These cells are stimulated directly by microbes. However, they need lymphokines to be completely stimulated and activated. Lymphokines are created capable of causing B lymphocytes to proliferate and transform themselves to Plasmocytes. Plasmocytes also emit antibodies to the blood. <b>c.Killer cells:</b> These play a role in the innate immune system, so they do not need stimulation like T and B lymphocytes. In particular, they assault body cells that are virus-infected or show a tendency to cancer. In this way, they establish a first defense line against viruses and block cancer development. Even though the working principles of lymphocytes are not known, they are related in some way to spiritual values such as love, enthusiasm, and peace of mind. Likewise, it is known that the immune systems of people whose spirituality has been weakened by depression and stress are more susceptible to break down. Unless those people recover by activating their spiritual dynamics, like faith in destiny, they are under a greater threat of cancer. Yet, this world is a place of examination. We cannot claim that every cancer is due to a damaged spirituality; we should not forget that cancer might occur due to different reasons. <b>4. Eosinophils:</b> These are a kind of leukocytes that can kill some sort of parasites. They cling to parasites and release the granules in their cytoplasm into the parasites. These granules contain enzymes which destroy parasites. <b>5. Mast cells and basophils:</b> Mast cells and basophils play a central role in inflammatory and immediate allergic reactions. They are able to release potent inflammatory mediators. Mast cells function out of the veins and protect the tissues in the body, whereas basophils are similar cells found in the bloodstream. <b>F &amp;#8211; Factors in plasma:</b> <b>1.Antibodies:</b> These are secreted into the blood by plasma cells. They fight against the germs that have stimulated them. They show their impact directly (neutralizing bacterial poisons, gathering and precipitating bacteria, neutralizing viruses, pulling microorganisms into pieces) or by activating a very special system called a complement. <b>2.Complement proteins:</b> When inactive complement proteins in plasma are stimulated by antigens and an opposing antibody complex, active complement compounds are brought to life. These compounds have various effects like chemotaxis, opsonization, development of inflammation as a result of stimulation of mast cells and basophils, and the destruction of microorganisms. The complement system can be stimulated by microorganisms without a need for antibody development (without a need for lymphocytes); this can be seen as a manifestation of our Creator&#8221;s name Mudabbir (managing, administering, controlling every being in balance and order). This ensures the stimulation of a complement system under conditions that lack antibody production. Hence, the body is never left completely undefended. Is it really possible that such an amazing defense system, that requires unlimited knowledge and power, and that consists of every kind of alternative action, can come into existence by itself? <b>3.Interferons:</b> Viruses invade body cells and synthesize proteins that contribute to their proliferation. Interferons, secreted by lymphocytes or other leukocytes, are created so that they can attach themselves to virus-infected body cells and obstruct the production of those proteins. Hence, these viruses cannot proliferate. <b>4.Lysozyme:</b> Mentioned in the earlier part concerning body secretions, lysozyme is also available in the blood and kills bacteria there. <b>5.Properdin:</b> This is a kind of protein available in the plasma which can neutralize viruses and destroy some bacteria types. <b>6.Acute phase proteins:</b> These are a large number of serum proteins (C-reactive protein, etc.) that are swiftly synthesized by the liver and that are employed in defense during infections. <b>7.Beta-lysin:</b> A substance that destroys some types of bacteria. <b>G &amp;#8211; Events caused by infections: </b> <b>1. Inflammation:</b> Inflammation is a response that is designed to protect tissues against tissue destruction, caused by factors like infection, excessive heat, and trauma. When a tissue is invaded by microorganisms, it starts to be destroyed; certain matters come out of those tissue cells (as mast cells) and lead to certain reactions in that zone. <b>a.Vasodilation:</b> As the little veins transporting blood to a tissue widen, more blood rushes in and more neutrophils are carried to that zone. Meanwhile, a color enhancement (blushing) occurs in that place. <b>b.Increase in permeability of the capillaries:</b> Neutrophils can penetrate into the tissues more easily. Plenty of water also passes through tissues, so some edemas (swelling in tissues) develop. Finally, coagulation proteins in the plasma, which can rarely infiltrate from capillaries to the tissues because of their large molecular structures, pass to the tissues and clot the liquid here. Hence, lymph veins, which are responsible for returning the liquid to the blood circulation, are plugged by clots. Consequently, inflammation detains microorganisms in that specific zone and prevents them from spreading throughout the body. Microorganisms are also destroyed by tissue macrophages in the inflammation zone and the migrant neutrophils working there. (The more a bacterium causes tissue damage, the harder it passes to blood.) Then, remnants of dead bacteria, damaged tissue cells, and neutrophils that are also destroyed after the phagocytosing of between 5 and 20 bacteria soften the inflammation by dissolving and creating some pus in that zone. The pus streams out by itself or is relieved by an incision being cut in the covering skin. <b>2. Fever:</b>Toxins coming out of some bacteria and some secretions of microbe-phagocytosing cells lead to an increase in body temperature. Fever stops reproduction of microorganisms and kills them by ruining their structures. Within this framework, the occurrence of fever is beneficial; it indicates that the body is resisting and struggling to kill the microbes. Therefore, fever should not be reduced as long as it is not too high to cause brain damage (especially for children). <b>3. Cough:</b> A cough helps the body discharge the microbes in the respiratory paths. Thus, cough medicines should not be used immediately, except in cases of whooping cough. <b>4. Diarrhea:</b> This helps the body rid itself of feces quickly, so medicines to stop diarrhea should not be used, either. However, in cases of cough and diarrhea, a person should know their own strength and the strength of their immune system well and take medication accordingly. When we consider all these defense mechanisms, this question occurs in our minds: Do we protect ourselves against infections or is there someone who operates various immunity mechanisms in our bodies and controls them at every moment with His infinite knowledge and power?</p>
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		<title>E-Mail Securitiy</title>
		<link>https://fountainmagazine.com/all-issues/2001/issue-34-april-june-2001/e-mail-securitiy/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Apr 2001 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 34 (April - June 2001)]]></category>
		<category><![CDATA[attachments]]></category>
		<category><![CDATA[browser]]></category>
		<category><![CDATA[E-mail]]></category>
		<category><![CDATA[easy]]></category>
		<category><![CDATA[encrypt]]></category>
		<category><![CDATA[key]]></category>
		<category><![CDATA[mail]]></category>
		<category><![CDATA[message]]></category>
		<category><![CDATA[messages]]></category>
		<category><![CDATA[password]]></category>
		<category><![CDATA[pgp]]></category>
		<category><![CDATA[private]]></category>
		<category><![CDATA[program]]></category>
		<category><![CDATA[programs]]></category>
		<category><![CDATA[public]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[security]]></category>
		<category><![CDATA[send]]></category>
		<category><![CDATA[virus]]></category>
		<category><![CDATA[viruses]]></category>
		<category><![CDATA[web]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2001/issue-34-april-june-2001/e-mail-securitiy/</guid>

					<description><![CDATA[E-mail, now the most pervasive Internet service available, began to be used by people even before they discovered the Web. Messaging Online states that there are about 569 million (electronic) mailboxes. Within 2 years, all televisions and phone lines probably will be outnumbered by the predicted one billion mailboxes. Such usage may make e-mail messages [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>E-mail, now the most pervasive Internet service available, began to be used by people even before they discovered the Web. Messaging Online states that there are about 569 million (electronic) mailboxes. Within 2 years, all televisions and phone lines probably will be outnumbered by the predicted one billion mailboxes. Such usage may make e-mail messages seem to be only innocent messages bumping around the Internet until reaching your milbox. And there they remain, until you open them. For most, that is the end of the story.</p>
<p>But sometimes messages can lead to malicious results. Some carry viruses, defined as unwanted and sometimes harmful computer codes. Others are hijacked and spill their secrets without a fight, or seem to come from friends who &#8220;decided&#8221; to send you false news.</p>
<p>Given today&#8217;s reliance on e-mail, any security gap is a problem. Fortunately, such gaps are filled easily and can keep important e-mail safe and secret.</p>
<h3><b>Is E-mail Privacy an Illusion?</b></h3>
<p>The most common fear is prying eyes. Just as standard mail may not be private, e-mail is not entirely private, for it is easy to intercept e-mail messages. However, the risk of this occurring is often overstated.</p>
<p>Surveys show that many employers occasionally read employees&#8217; e-mail. If the messages are on company-owned computers, such &#8220;snooping&#8221; is legal. If you send and receive e-mail on your own computer, you will face a similar problem: hackers. You cannot ignore the small chance of nosy hackers at servers along the way. Even worse, it is easy to make e-mail look like it came from someone else.</p>
<p>How can your e-mail privacy be protected? Fortunately, suitable tools are available. One is encryption, which prevents any message modification or disclosure. Digital signatures can be used for authentication purposes. While these may seem to aggravate the problem, they are proper steps to take if you are concerned about your e-mail&#8217;s privacy. Reliably identifying the message&#8217;s sender is even mentioned in the Holy Books, as in: O believers. If a wicked person comes to you with news, ascertain the truth, lest you harm people unwittingly and afterwards become full of repentance for what you have done (Qur&#8217;an 49:6).</p>
<p>Many other solutions, most of them free, also are available. For example Microsoft&#8217;s Outlook, the leading e-mail program, includes several built-in security features to protect your sent e-mail. Outlook can &#8220;digitally sign&#8221; messages with a special code to show that the message is from you, and also verify the sender&#8217;s signature. Second, you can encrypt messages and attachments to ensure privacy.</p>
<p>To sign or encrypt messages with such e-mail programs as Outlook, you need a digital ID (also known as a certificate or key). Digital IDs consist of a public key and private key. The private key is stored on your machine and is never sent to anyone. You can e-mail the public key to correspondents, or they can access it from a central server. When you send a signed message, your private key generates a code that only your public key can decode. Thus your public key verifies that you sent the message with your private key. When you send an encrypted message, you use their public key to encrypt it so that only their private key can decrypt it. If you follow this procedure, only the recipient with the correct private key will be able to read the message.</p>
<p>Digital IDs are available from such third-party companies as VeriSign. Once an ID has been imported, you can use the features on the Security tab in your e-mail program&#8217;s Options dialog box to establish a standard security procedure. Alternatively, individual users can download a free program based on the Pretty Good Privacy (PGP) standard for noncommercial use. PGP integrates itself with several e-mail programs and allows users to generate an ID for signing and encrypting e-mail or files. PGP also works with Web-based e-mail systems by allowing you to select text in any program and then sign or encrypt it.</p>
<p>Encryption keep messages secret. Even people sending e-mail at work can count on a PGP-type system to keep unwanted readers locked out, as long as both sender and recipient encrypt.</p>
<h3><b>Things to Remember</b></h3>
<p><em>Keep Passwords Secret:</em> Web-based e-mail, such as Yahoo! Mail or Hotmail, presents another security concern: Subscribers can use any computer to check their messages. User IDs and passwords protect unauthorized access. But going somewhere without logging off lets someone else read your e-mail and send e-mail under your name. To avoid this, Yahoo! Mail or Hotmail automatically clear sensitive information from the browser&#8217;s cache when you log off. In addition, after you log off someone else cannot log on by clicking the back button.</p>
<p>Another strategy is to choose an unusual password and keep it secret. A simple e-mail password is easy to remember-and easy to crack. Many password cracking applications are online, and most use a dictionary of common words to search for your password. Your best bet is to use an alphanumeric password.</p>
<p><em>E-mail Viruses:</em> New viruses, some of them quite harmful, pop up almost daily. One of the fastest ways to spread them is via e-mail. Recent examples are the Melissa and the so-called &#8220;I love you&#8221; viruses, which could copy and mail themselves to the first 50 people in your Outlook address book. To avoid this, learn the basic limitations of viruses. Receiving, opening, or reading an e-mail message will not infect your system. Viruses are not that wily yet, so you can open the messages. However, be careful about any attachments. Attachments are usually displayed as file icons at the message&#8217;s bottom or perhaps as hyperlinks that you need to download. Opening an attachment can allow a virus to escape and infect your system.</p>
<p>Some attached files are more virus-friendly than others. Watch out for files with .exe .com, and .bat extensions, for they can contain viruses. The fastest growing category of viruses today ride Microsoft Office Document (.doc) files as macros, executable files that record common keyboard and mouse actions to a single key with word processing, spreadsheet, and other documents.</p>
<p>One way to protect your computer is not to open attachments from strangers. A better and easier solution is to get an antivirus program that scans attachments before they can run. Such programs can hunt continuously in the background for macro viruses, as well as for the more traditional executable foes. Such virus-fighter sites as McAfee or Symantec allow you download a free demonstration version of their leading programs. Virus checkers cannot keep up with new viruses, so it is still smart not to open attachments from unidentified sources. Beware of an attachment that appears out of nowhere, even if you have loaded a virus program.</p>
<p><em>Misleading Links:</em> Another threat is hyperlinks to odd Web sites. Many e-mail programs allow users to send Web links within a message so that recipients can click and begin loading the page in their browser. However, Web pages can contain scripts (a sequence of executable commands) designed to weasel through the browser&#8217;s security measures and infect your computer with virus-like programs. This is more a matter of browser security than e-mail security. Although you probably will not encounter a Web page sophisticated enough to take advantage of browser security problems, you should be prepared by ensuring that your browser&#8217;s security options are set appropriately. Also, keep your browser current.</p>
<p><em>You &#8216;ve Got E-mail:</em> Although most security problems could strike anyone, most of us do not need to turn e-mail habits into something out of a spy novel. Just be aware of the possibilities and take a few steps to see that your e-mail is protected.</p>
<p>Try not to create e-mail security holes. Almost everyone sometimes sends an e-mail message to a wrong address. When addresses are no more than initials, numbers, and meaningless gib berish, this is easy. Often the results are slightly embarrassing-sometimes almost catastrophic.</p>
<p>Consider the case of the Illinois man who left Chicago&#8217;s snow-filled streets for a Florida vacation. His wife was on a business trip, and was planning to meet him there the next day. He sent her a quick e-mail upon reaching the hotel. Unfortunately, he missed one letter and his note reached the elderly wife of a preacher who had died the day before. When she checked her e-mail, she took one look at the monitor, screamed, and fainted. Her family rushed in and saw this note on the screen:</p>
<p><em>To My Dear Wife:</em></p>
<p>Just got checked in. Everything prepared for your arrival tomorrow.</p>
<p>Your Loving Husband</p>
<p>PS. Sure is hot down here.</p>
<h3><b>References</b> </h3>
<ul>
<li>http://email.about.com/internet/email/.</li>
<li>www.emailtoday.com.</li>
<li>www.lv.psu.edu/ojj/collectn/humor/dead-email.html.</li>
<li>www.macafee.com.</li>
<li>www.messagingonline.com/mt/html/feature031400.html.</li>
<li>www.pgp.com/.</li>
<li>www.publicdoman.com/email.html.</li>
<li>www.smartcomputing.com/email.asp?emid-11018.</li>
<li>www.symantec.com.</li>
<li>www. timrichardson.net/misc/security.html.</li>
<li>www.verisign.com/client/index.html. </li>
</ul>
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		<title>Emerging Viruses</title>
		<link>https://fountainmagazine.com/all-issues/1996/issue-16-october-december-1996/emerging-viruses/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Oct 1996 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 16 (October - December 1996)]]></category>
		<category><![CDATA[aids]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[died]]></category>
		<category><![CDATA[ebola]]></category>
		<category><![CDATA[emerging]]></category>
		<category><![CDATA[epidemic]]></category>
		<category><![CDATA[erupted]]></category>
		<category><![CDATA[great]]></category>
		<category><![CDATA[Health & Medicine]]></category>
		<category><![CDATA[hiv]]></category>
		<category><![CDATA[human]]></category>
		<category><![CDATA[infection]]></category>
		<category><![CDATA[major]]></category>
		<category><![CDATA[mutation]]></category>
		<category><![CDATA[rate]]></category>
		<category><![CDATA[sudan]]></category>
		<category><![CDATA[vaccine]]></category>
		<category><![CDATA[viral]]></category>
		<category><![CDATA[virus]]></category>
		<category><![CDATA[viruses]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/1996/issue-16-october-december-1996/emerging-viruses/</guid>

					<description><![CDATA[Many of the deadliest and most feared diseases &#8211; from AIDS and influenza to smallpox and zoster (shingles) &#8211; as well as some of the most common have been viral. What causes viral emergence? Most new or emerging viruses are the result of changes in traffic patterns that give viruses new highways. It seems human [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Many of the deadliest and most feared diseases &#8211; from AIDS and influenza to smallpox and zoster (shingles) &#8211; as well as some of the most common have been viral. What causes viral emergence? Most new or emerging viruses are the result of changes in traffic patterns that give viruses new highways. It seems human actions often precipitate viral emergence. Deforestation, war, and agricultural and food production practices are some of the general factors most often blamed nowadays.</p>
<p>So-called ‘new’ viruses most probably derive from existing viruses; in general, viruses of today have ancestors and relatives. However, as viruses show great variety, and many of the viruses of gravest concern mutate rapidly and unpredictably, it is not always possible to trace their ancestry with any great confidence. A ‘new virus may be genuinely new or a major evolutionary variant arising from genetic processes such as mutation or recombination. Their rate of mutation is so high that controlling them, or predicting their behaviour, is well-nigh impossible. High mutation rate means that no RNA (ribonucleic acid) virus population is a single entity, but rather a ‘quasi species’. Introduction of a virus from one species to another and dissemination from a smaller to a larger population are also among the basic mechanisms by which viruses emerge.</p>
<p>The emerging viruses are surfacing from ecologically damaged parts of the earth. When viruses come out of an ecosystem, they tend to spread in waves through the human population. Among the most notorious are: Lassa, Rift Valley, Oropuche, Rocio, Q. Guanarito, VEE, Monkeypox, Dengue, Chikunganya, the Hanta viruses, Machupo, Junin, the rabies like strains Mokola and Duvenhage, LeDantec.</p>
<h3><b>AIDS: Acquired Immunodeficiency Syndrome</b></h3>
<p>Human immunodeficiency virus (HIV) is a more difficult case compared to, for example, influenza, itself a great killer &#8211; the influenza pandemic of 1918-9 in China caused some 20 million fatalities. We do not know the origin of HIV, but a probable primate origin is often suggested, and appears highly plausible. HIV-2 (one of the major strains of HIV) may be a mutant that jumped into humans from an African monkey known as the sooty mangabey, perhaps when monkey hunters or trappers touched body tissue. HIV-1 (the other strain) may have jumped into man from chimpanzees &#8211; perhaps when hunters butchered chimpanzees.</p>
<p>HIV attacks the type of lymphocytes known as helper T-cells that stimulate the activity of B lymphocytes that produce antibodies. After an HIV infection sets in, helper T-cells begin to decline in number and the person becomes more susceptible to infections.</p>
<p>The AIDS virus mutates rapidly and constantly. It is a hyper-mutant, a shape-shifter, spontaneously altering its character as it moves through individuals. It mutates even in the course of one injection.</p>
<p>The drug AZT has been found to be helpful in prolonging the lives of AIDS patients. Also, it has been shown that administration of Interleukin-2 and AT-538 can prevent viral replication in cells in the early stages of the infection.</p>
<h3><b>The Filoviruses</b></h3>
<p>Marburg and Ebola viruses were recently elevated to family status as the Filoviridae. The name, ‘thread viruses’, is based on their morphology. These viruses made their appearance in the 1960s and 1970s in the form of frightening nosocomial and occupational outbreaks, initially among polio vaccine production workers in contact with Ugandan green monkeys and their kidney tissues, then in independent hospital epidemics of devastating proportions during 1976 in the Sudan and Zaire. Mortality from these infections can range to nearly 90%, that is 90% of infections, not just of clinical illnesses.</p>
<p>The incubation period of a filovirus in a human being, is from 3 to 18 days during which time the number of virus particles climbs steadily in the bloodstream. Then the suffering begins.</p>
<p>Marburg was the first filovirus to be discovered. It erupted in a factory producing vaccines using kidney cells from African green monkeys. Thirty-one people caught the virus. Seven infected persons died in pools of blood in just two weeks. This fatality rate of one in four makes Marburg an extremely lethal agent, yet it is the mildest of the filoviruses. No vaccine is available.</p>
<h3><b>Ebola Sudan</b></h3>
<p>The next indication of the existence of filoviruses came from an extraordinary pair of epidemics in 1976. In the Sudan the initial focus was a cotton factory in Nzara, and several of the earliest recognized cases worked there in a single room. Travel to nearby Maridi introduced the virus into the medical care system, with subsequent latrogenic dissemination that devastated the Maridi hospital. In this outbreak, 150 out of 280 infected people died.</p>
<p>In 1979, it recurred in Nzara, Sudan. The index case had worked in the same room in the cotton factory identified in the earlier epidemic. Twenty-two out of 34 infected patients died. When it first erupted, the medical stuff had used dirty needles which facilitated the spread of infection. Again, no vaccine is available.</p>
<p>Two months after the start of the Sudan emergence in 1976, an even more lethal filovirus emerged. The Ebola Zaire, a new strain was nearly twice as lethal as Ebola Sudan. The fatality rate of Ebola Zaire is 9 out of 10. Staff at a hospital which had been at the epicenter of the epidemic were almost all wiped out: 13 out of 17 of the doctors and nurses died. The disease erupted more or less simultaneously in fifty-five villages near the headwaters of Ebola River.</p>
<p>This epidemic was clearly dependent on the use of unsterilized needles and syringes for its major dissemination between villages, although multiple later generations of cases occurred among family contacts without any defined exposure route.</p>
<p>Ebola is distantly related to measles, mumps and rabies. It is also related to certain pneumonia viruses, to the parainfluenza virus which causes colds in children, and to the respiratory syncytial virus, which can cause fatal pneumonia in a person who has AIDS.</p>
<p>Ebola kills a great deal of tissue while the host is alive. It triggers a creeping, spotty necrosis that spreads through all the internal organs. The liver bulges up and turns yellow, begins to liquefy and then it cracks apart. The kidneys become jammed with blood clots and dead cells, and cease functioning. As the kidneys fail, the blood becomes toxic with urine. No vaccine is available.</p>
<p>Ebola does in ten days what it takes AIDS ten years to accomplish. In principle Ebola-like viruses could spread out all over the world in just one month and a half. Richard Preston, the author of Hot Zone argues that AIDS may be the first step in a natural process of clearance. What is being cleared is human beings: the earth’s immune system, so to speak, has recognized the presence of our species and is starting to kick in and signal its potential to rid itself of an infection by human beings. There can be no excuse for failing to reflect radically on the way we manage our economies, our societies and our lifestyles. We have no absolute right of tenure of this planet, nor does our collective intelligence or our science and technology afford a reliable immunity from vulnerability, whether as individuals or as a species. We do need to be fearful perhaps, though not to panic &#8211; so that we redress the balance in favour of humility in our attitudes and activities, so that we become more caring and careful in using our God-given faculties to prevent the worst before it happens.</p>
<h3><b>References</b></h3>
<ul>
<li><em>MADER, S. S. (1992) Human Biology, WCB Group.</em></li>
<li>PRESTON, R. (1993) Hot Zone, Random House, New York.</li>
<li>MORSE, S. 5. (1993) Emerging Viruses, Oxford University Press, New York.</li>
<li>DOWDLE, W. (1993) ‘The Origins of Plagues’, Science, 261 (September 17).</li>
<li>GRIFFIN, B. E. (1994) ‘Live and Let Live’, Nature, 368 (March 3).</li>
</ul>
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