Chloride Ion Channel: Difference between revisions

From Proteopedia
Jump to navigationJump to search
Michal Harel (talk | contribs)
No edit summary
No edit summary
 
Line 1: Line 1:
{{STRUCTURE_1k0o | PDB=1k0o | SCENE=User:Laura_Fountain/Sandbox_1/1k0o/1}}
<StructureSection load='1k0o' size='300' side='right' scene='User:Laura_Fountain/Sandbox_1/1k0o/1' caption=''>
 
== CLIC1: A Chloride Ion Channel ==
== CLIC1: A Chloride Ion Channel ==


The CLIC family consists of seven members: CLIC1-5, p64, and parchorin. CLIC1 is the most commonly studied member of the CLIC family because it is expressed to some extent in most tissues and cell types that have been studied and is particularly highly expressed in muscle.<ref name="Tulk">PMID:11940526</ref> Along with being present in the plasma membrane, CLIC1 has been found in various intracellular membranes, such as those of the mitochondria, nucleus (where it is designated NCC27), vesicles, and the endoplasmic reticulum.<ref name="Cromer">PMID:12202911</ref><ref name="Harrop">PMID:11551966</ref>
The CLIC family consists of seven members: CLIC1-5, p64, and parchorin. CLIC1 is the most commonly studied member of the CLIC family because it is expressed to some extent in most tissues and cell types that have been studied and is particularly highly expressed in muscle.<ref name="Tulk">PMID:11940526</ref> Along with being present in the plasma membrane, CLIC1 has been found in various intracellular membranes, such as those of the mitochondria, nucleus (where it is designated NCC27), vesicles, and the endoplasmic reticulum.<ref name="Cromer">PMID:12202911</ref><ref name="Harrop">PMID:11551966</ref>


This wide range of locations in the cell causes a plausible reason to assume that the CLIC chloride channel family participate in an equally wide variety of physiological processes. Some of these include cell division, kidney function, bone resorption, transepithelial transport, and signal transduction. <ref name="Cromer">PMID:12202911</ref>
This wide range of locations in the cell causes a plausible reason to assume that the CLIC chloride channel family participate in an equally wide variety of physiological processes. Some of these include cell division, kidney function, bone resorption, transepithelial transport, and signal transduction. <ref name="Cromer">PMID:12202911</ref>
Line 11: Line 12:


== Structure ==
== Structure ==
<applet load='1k0o' size='300' frame='true' align='right' caption='Dimer view of CLIC1' />


The CLIC family is defined by a COOH-terminal core segment of ~230 amino acids that are highly conserved among the family members. CLIC1 only contains a few amino acids upstream of the <scene name='User:Laura_Fountain/Sandbox_1/1k0o/3'>conserved core</scene>.<ref name="Tulk">PMID:11940526</ref>
The CLIC family is defined by a COOH-terminal core segment of ~230 amino acids that are highly conserved among the family members. CLIC1 only contains a few amino acids upstream of the <scene name='User:Laura_Fountain/Sandbox_1/1k0o/3'>conserved core</scene>.<ref name="Tulk">PMID:11940526</ref>
Line 28: Line 27:
At its binding site in the pore, chloride could interact with the ends of four helices that come from both sides of the membrane. A <scene name='User:Laura_Fountain/Sandbox_1/Channel/5'>glutamate residue</scene> that protrudes into the pore is proposed to participate in gating due to its negative charge.<ref name="CLC">PMID:12163078</ref>
At its binding site in the pore, chloride could interact with the ends of four helices that come from both sides of the membrane. A <scene name='User:Laura_Fountain/Sandbox_1/Channel/5'>glutamate residue</scene> that protrudes into the pore is proposed to participate in gating due to its negative charge.<ref name="CLC">PMID:12163078</ref>


</StructureSection>
==3D structure of Chloride ion channel==
==3D structure of Chloride ion channel==



Latest revision as of 15:43, 3 October 2021

Drag the structure with the mouse to rotate

3D structure of Chloride ion channel

Ion channels

Additional Resources

For additional information, see: Membrane Channels & Pumps

References

--Amy Kerzmann 00:37, 31 March 2010 (IDT)Content by Laura Fountain

Proteopedia Page Contributors and Editors (what is this?)

Amy Kerzmann, David Canner, Michal Harel, Alexander Berchansky