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<Article>
<Journal>
				<PublisherName>University of Tehran Press</PublisherName>
				<JournalTitle>Progress in Biological Sciences</JournalTitle>
				<Issn>1016-1058</Issn>
				<Volume>5</Volume>
				<Issue>1</Issue>
				<PubDate PubStatus="epublish">
					<Year>2015</Year>
					<Month>06</Month>
					<Day>01</Day>
				</PubDate>
			</Journal>
<ArticleTitle>Cooperativity in biological systems</ArticleTitle>
<VernacularTitle></VernacularTitle>
			<FirstPage>1</FirstPage>
			<LastPage>18</LastPage>
			<ELocationID EIdType="pii">53951</ELocationID>
			
<ELocationID EIdType="doi">10.22059/pbs.2015.53951</ELocationID>
			
			<Language>EN</Language>
<AuthorList>
<Author>
					<FirstName>Reza</FirstName>
					<LastName>Behrouzi</LastName>
<Affiliation>Department of Cell Biology, Harvard Medical School, Boston, MA, USA</Affiliation>

</Author>
</AuthorList>
				<PublicationType>Journal Article</PublicationType>
			<History>
				<PubDate PubStatus="received">
					<Year>2014</Year>
					<Month>10</Month>
					<Day>15</Day>
				</PubDate>
			</History>
		<Abstract>Living organisms can sense and respond to external and internal stimuli. Response is&lt;br /&gt;demonstrated in many forms including modulation of gene expression profiles, motility,&lt;br /&gt;secretion, cell death, etc. Nevertheless, all forms share a basic property: they depend on sensing&lt;br /&gt;small changes in the concentration of an effector molecule or subtle conformational changes in&lt;br /&gt;a protein and invoking the appropriate molecular response by the relevant signaling pathways.&lt;br /&gt;Sensing, transduction, and response to signals may be directly carried out by controlled changes&lt;br /&gt;in the conformation or the assembly of pre-existing components(1,2)or may involve changes in&lt;br /&gt;gene expression patterns (as in cell differentiation and development), which in turn is carried&lt;br /&gt;out by protein-nucleic acid interactions and complex formation. Hence, understanding&lt;br /&gt;conformational changes in proteins and nucleic acids, ligand binding, and complex formation&lt;br /&gt;play acentral role in advancing our knowledge of cellular dynamics. Large-scale interaction&lt;br /&gt;mapping projects continue to provide detailed (though approximate) interaction networks&lt;br /&gt;between pairs of proteins (3–6), but fall short of capturing the stability or dynamics of the&lt;br /&gt;interactions. Integration of these maps with thermodynamic and kinetic information about&lt;br /&gt;conformational changes and binding events in proteins and nucleic acids holds the promise of&lt;br /&gt;discovering simple universal mechanisms that explain and relate seemingly disparate biological&lt;br /&gt;phenomena at many levels of complexity. In this article, I will explore ‘cooperativity’, one of&lt;br /&gt;the most ubiquitous features in molecular biology and discuss how it impacts macromolecular&lt;br /&gt;folding, complex assembly, formation of biological networks, and eventually cellular function&lt;br /&gt;and pathology.</Abstract>
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			<Param Name="value">biological</Param>
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			<Object Type="keyword">
			<Param Name="value">cooperativity</Param>
			</Object>
			<Object Type="keyword">
			<Param Name="value">systems</Param>
			</Object>
		</ObjectList>
<ArchiveCopySource DocType="pdf">https://pbiosci.ut.ac.ir/article_53951_6619bbd6ab13c98a3f4b684c43bd069d.pdf</ArchiveCopySource>
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