Sandbox Reserved 1653: Difference between revisions

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The <scene name='86/868186/Ion_conducting_pore/1'>central pore axis</scene> of piezo1 is lined with the <scene name='86/868186/Ced/1'>extracellular cap domain</scene>, inner helix and cytosolic <scene name='86/868186/Ctd/1'>CTD</scene>. The extracellular cations can approach the pore entry “vertically through the internal cavity along the threefold axis of the cap domain”, they can also approach laterally through spaces (gaps) between the flexible linkers which connect the cap with inner and outer helices.<ref name= "ion channel"> DOI 10.1038/nature25453</ref> The <scene name='86/868186/Ion_conducting_pore/1'>ion conduction pathway</scene> is situated below the <scene name='86/868186/Ced/1'>cap</scene>, and is  
The <scene name='86/868186/Ion_conducting_pore/1'>central pore axis</scene> of piezo1 is lined with the <scene name='86/868186/Ced/1'>extracellular cap domain</scene>, inner helix and cytosolic <scene name='86/868186/Ctd/1'>CTD</scene>. The extracellular cations can approach the pore entry “vertically through the internal cavity along the threefold axis of the cap domain”, they can also approach laterally through spaces (gaps) between the flexible linkers which connect the cap with inner and outer helices.<ref name= "ion channel"> DOI 10.1038/nature25453</ref> The <scene name='86/868186/Ion_conducting_pore/1'>ion conduction pathway</scene> is situated below the <scene name='86/868186/Ced/1'>cap</scene>, and is  
lined by the three inner transmembrane helices. The possible access for lipids or other hydrophobic molecules through the pore could be “two lateral openings between the inner helices separated by a ‘seal’ formed by K2479 and F2480”. These openings are approximately 11 Å wide and 16 Å tall. <ref name= "ion channel">
lined by the three inner transmembrane helices. The possible access for lipids or other hydrophobic molecules through the pore could be “two lateral openings between the inner helices separated by a ‘seal’ formed by K2479 and F2480”. These openings are approximately 11 Å wide and 16 Å tall. <ref name= "ion channel">




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CTD and <scene name='86/868186/Beam_1_couleurs/1'>beams</scene> are intracellular. The beam interacts with the CTD, and both are required for mechanical activation of the channel.<ref name="architecture"/>
CTD and <scene name='86/868186/Beam_1_couleurs/1'>beams</scene> are intracellular. The beam interacts with the CTD, and both are required for mechanical activation of the channel.<ref name="architecture"/>
The <scene name='86/868186/Ctd_trimeric/1'>CTD</scene> is a trimeric structure and is a part of the pore module of piezo channel. The CTD interacts with the long <scene name='86/868186/Anchor/1'>anchorα</scene>, and forms a hydrophobic interface. This forms a tripartite interaction with the <scene name='86/868186/E_dans_ctd/1'>glutamate-rich regions of the CTD</scene><ref name="mechanogating"> DOI 10.1038/nature25743 </ref>
The <scene name='86/868186/Ctd_trimeric/1'>CTD</scene> is a trimeric structure and is a part of the pore module of piezo channel. The CTD interacts with the long <scene name='86/868186/Anchor/1'>anchorα</scene>, and forms a hydrophobic interface. This forms a tripartite interaction with the <scene name='86/868186/E_dans_ctd/1'>glutamate-rich regions of the CTD</scene><ref name="mechanogating"> DOI 10.1038/nature25743 </ref>
  It forms an intracellular vestibule along the z-axis, and it is essential for ion permeation properties. More precisely, the pore module of  
  It forms an intracellular vestibule along the z-axis, and it is essential for ion permeation properties. More precisely, the pore module of  

Revision as of 09:05, 10 January 2021

Piezo 1

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References