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==This is a placeholder==
==ClC Transporter ==
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<Structure load='1rd8' size='500' frame='true' align='right' caption='Insert caption here' scene='Insert optional scene name here' />
 
The CLC-ec1 (1OTS) protein is a transmembrane
<Structure load='1rd8' size='500' frame='true' align='right' caption='ClC Transporter' scene='Insert optional scene name here' />
voltage-gated CLC transporter found in
<scene name='Sandboxjg/1ots/2'>CLC-ec1 (1OTS) protein</scene> is a membrane protein Escherichia coli which belongs to the  CLC family of ion channels and transporters. These proteins are essential for the maintenance of proper membrane potential in muscle cells, for the transport of electrolytes across epithelial layers, and to.
Eschrecheria Coli. It is essential to proper electrical
Roderick MacKinnon and his team determined the structure of this protein and proposed that it was a Cl- selective ion channel. Accardi and Miller showed that CLC-ec1 functions as a transporter: it exchanges 2 Cl- :1 H+. [[Image:ClCvideoProteopedia.mov]].
activity in muscle cells and some neurons,
 
in the transportion of electrolytes across
The CLC-ec1 transporter is a dimer formed of two polypeptide chains each containing an internal repeat arranged in an anti-parallel organization. Each monomer functions independently of the other and creates a passage for ions through the membrane The Cl- and H+ pathways are formed by an extensive network of interactions between the protein and substrates. The Cl- ions are stabilized in the middle of the membrane by the dipole moment of two a-helices, by interactions with amides from the protein’s backbone and by the direct coordination of two conserved side chains. Because each polypeptide chain functions independently, we will focus on the structure of one pore.
epithelial layers, and in maintaining proper cell
 
volume. Alessio Accardi and his team conducted
There are 3 chloride binding sites in each monomer, an exterior binding site, a central binding site, and an interior binding site. These three sites span the membrane and define the transport pathway for Cl-. [[Image:600px-Fig. 5-1.jpg | frame|The three binding sites and the position of Glu 148 in the closed (left) and open (right) positions. ]] In the structure of the WT protein Glu 148 occupies either the central or the exterior binding sites where it likely competes with Cl- ions. Upon protonation the side chain of E148 extends towards the extracellular solution and opens the pathway allowing ion transport to occur. The H+ transport pathway in each monomer has two essential glutamate residues: one <scene name='Sandboxjg/Glu_148/1'>(Glu 148)</scene> functions as the coupling element between Cl- and H+ while the other <scene name='Sandboxjg/Glu_203/1'>(Glu 203)</scene> is involved in H+ permeation.
an experiment to learn more about
 
the Cl-/H+ exchange that is essential to the
One of the interesting properties of this protein family is that its members can function either as ion channels or transporters. Furthermore, mutating Glu 148 to Ala in CLC-ec1 eliminates H+ transport but chloride ions can still move freely through the protein giving rise to a channel-like behavior. Mutations in other family members cause  myotonia congenital (CLC-1), osteopetrosis (CLC-7) and kidney pathologies such as Bartter’s syndrome (CLC-Ka and -Kb) and Dent’s disease (CLC-5).
function of the protein. To assist his team in
 
their work, the ECFS SMART Team designed
To see the test <scene name='Sandboxjg/Test1ots/1'>click on me</scene>
a physical model of the protein using Jmol.

Latest revision as of 23:01, 25 November 2011

ClC Transporter

ClC Transporter

Drag the structure with the mouse to rotate

CLC-ec1 (1OTS) protein is a membrane protein Escherichia coli which belongs to the CLC family of ion channels and transporters. These proteins are essential for the maintenance of proper membrane potential in muscle cells, for the transport of electrolytes across epithelial layers, and to. Roderick MacKinnon and his team determined the structure of this protein and proposed that it was a Cl- selective ion channel. Accardi and Miller showed that CLC-ec1 functions as a transporter: it exchanges 2 Cl- :1 H+. File:ClCvideoProteopedia.mov.

The CLC-ec1 transporter is a dimer formed of two polypeptide chains each containing an internal repeat arranged in an anti-parallel organization. Each monomer functions independently of the other and creates a passage for ions through the membrane The Cl- and H+ pathways are formed by an extensive network of interactions between the protein and substrates. The Cl- ions are stabilized in the middle of the membrane by the dipole moment of two a-helices, by interactions with amides from the protein’s backbone and by the direct coordination of two conserved side chains. Because each polypeptide chain functions independently, we will focus on the structure of one pore.

There are 3 chloride binding sites in each monomer, an exterior binding site, a central binding site, and an interior binding site. These three sites span the membrane and define the transport pathway for Cl-.

The three binding sites and the position of Glu 148 in the closed (left) and open (right) positions.

In the structure of the WT protein Glu 148 occupies either the central or the exterior binding sites where it likely competes with Cl- ions. Upon protonation the side chain of E148 extends towards the extracellular solution and opens the pathway allowing ion transport to occur. The H+ transport pathway in each monomer has two essential glutamate residues: one (Glu 148) functions as the coupling element between Cl- and H+ while the other (Glu 203) is involved in H+ permeation.

One of the interesting properties of this protein family is that its members can function either as ion channels or transporters. Furthermore, mutating Glu 148 to Ala in CLC-ec1 eliminates H+ transport but chloride ions can still move freely through the protein giving rise to a channel-like behavior. Mutations in other family members cause myotonia congenital (CLC-1), osteopetrosis (CLC-7) and kidney pathologies such as Bartter’s syndrome (CLC-Ka and -Kb) and Dent’s disease (CLC-5).

To see the test click on me