Sandbox ggc6
From Proteopedia
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==Nucleosome with H4 histone interactions== | ==Nucleosome with H4 histone interactions== | ||
<StructureSection load='4I4E' size='340' side='right' caption='Overview' scene ='75/752265/Beginner_overveiw/2'> | <StructureSection load='4I4E' size='340' side='right' caption='Overview' scene ='75/752265/Beginner_overveiw/2'> | ||
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- | This is a default text for your page '''Sandbox ggc6'''. Click above on '''edit this page''' to modify. Be careful with the < and > signs. | ||
- | You may include any references to papers as in: the use of JSmol in Proteopedia <ref>DOI 10.1002/ijch.201300024</ref> or to the article describing Jmol <ref>PMID:21638687</ref> to the rescue. | ||
== Function == | == Function == | ||
+ | The H4 histone is a core component used in the formation nucleosomes. After a nucleosome is formed, it then wraps and compacts its DNA into chromatin thus limiting DNA's accessibility to cellular processes which may require DNA as a template. Histones thereby play a central role in transcription regulation, DNA repair, DNA replication and chromosomal stability. DNA accessibility is regulated via a complex set of post-translational modifications of histones, also called histone code, and nucleosome remodeling. The main application that is being observed for the purpose of this presentation is the interactions that involve the histone H4. The research being presented focuses mainly on the N- terminal tail interactions of this histone. The N-terminal tails of core histones in a nucleosome core particle (NCP) aid in a multitude of functions such as structural stability, thermal stability, and the stimulation of transcription binding factors. | ||
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- | The N-terminal tails of core histones in a nucleosome core particle (NCP) aid in a multitude of functions such as structural stability, thermal stability, and the stimulation of transcription binding factors.<ref>PMID:26607036 </ref> | ||
==Importance == | ==Importance == | ||
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<scene name='75/752265/Tetra-kac/3'>tetra-Kac</scene> displays in green the molecule B which is composed of residues 1-20 while the color yellow represents the molecule F which highlights residues 1-15. | <scene name='75/752265/Tetra-kac/3'>tetra-Kac</scene> displays in green the molecule B which is composed of residues 1-20 while the color yellow represents the molecule F which highlights residues 1-15. | ||
- | <scene name='75/752265/ | + | <scene name='75/752265/Histone_interactions/1'>Histone Interactions</scene> displays the histones interaction sites, in black, that were affected by the H4 tetra-acetylation. |
- | <scene name='75/752265/Superimposition/ | + | <scene name='75/752265/Superimposition/3'>Superimposition</scene> Superimposition of the 2 nucleosome core particles (NCPs), shown in blue. |
== References == | == References == | ||
<references/> | <references/> | ||
- | <ref>PMID:26607036 </ref> | + | |
+ | Wakamori M, Fujii Y, Suka N, Shirouzu M, Sakamoto K, Umehara T, Yokoyama S. Intra- and inter-nucleosomal interactions of the histone H4 tail revealed with a human nucleosome core particle with genetically-incorporated H4 tetra-acetylation. Sci Rep. 2015 Nov 26;5:17204. doi: 10.1038/srep17204. PMID:26607036 doi:http://dx.doi.org/10.1038/srep17204<ref>PMID:26607036 </ref> |
Current revision
Nucleosome with H4 histone interactions
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