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The calcium ATPase is a protein composed of 1001 aminoacids.  
The calcium ATPase is a protein composed of 1001 aminoacids.  
The protein is very rich in <scene name='60/604489/Alpha_regions/1'>alpha helices regions</scene>. The protein contains 47% of helical regions and 16% of beta sheet regions. It contains <scene name='60/604489/10_transmembrane_helices/1'>10 transmembrane alpha helices</scene>, and three of them line a channel that spans the lipid bilayer and that allows calcium to pass through membranes. It also contains too cytoplasmic loops between the transmembrane helices. When the protein isn’t phosphorylated, two of the transmembrane helices are disrupted and form a cavity that can bind two molecules of calcium.  
The protein is very rich in <scene name='60/604489/Alpha_regions/1'>alpha helices regions</scene>, it contains 47% of helical regions and 16% of beta sheet regions. There are <scene name='60/604489/10_transmembrane_helices/1'>10 transmembrane alpha helices</scene>, and three of them line a channel that spans the lipid bilayer and that allows calcium to pass through membranes. It also contains too cytoplasmic loops between the transmembrane helices. When the protein is not phosphorylated, two of the transmembrane helices are disrupted and form a cavity that can bind two molecules of calcium.  


The protein is divided in <scene name='60/604489/The_4_domains_of_the_pump/1'>4 regions</scene>. The <scene name='60/604489/Transmembrane_domain/1'>transmembrane region</scene> of the protein contains the channel that span the lipid bilayer, and the calcium binding cavity.  
The protein is divided in <scene name='60/604489/The_4_domains_of_the_pump/1'>4 regions</scene>. The <scene name='60/604489/Transmembrane_domain/1'>transmembrane region</scene> of the protein contains the channel that span the lipid bilayer, and the calcium binding cavity.  
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The architecture of calcium ATPase (determined by X-Ray crystallography) allow to understand mechanisms by which the energy of ATP is coupled to the calcium transport across a membrane.
The architecture of calcium ATPase (determined by X-Ray crystallography) allow to understand mechanisms by which the energy of ATP is coupled to the calcium transport across a membrane.


The first step of the calcium pump catalytic cycle is the cooperative binding of <scene name='60/604489/Calcium_molecules/1'>two calcium ions</scene> in the calcium binding cavity. Then, ATP binds to the ATP binding site (nucleotide binding domain) and transfers its γ-phosphate to the <scene name='60/604489/Asp_351/1'>aspartic acide 351</scene> (phosphorylation domain). That creates a acid-stable aspartyl phosphate intermediate. The phosphorylation of Asp351 allows a large conformational changes in cytoplasmic domains: the nucleotide binding domain and the phosphorylation domain are brought into close proximity. This rearrangement causes a 90° rotation of the activator domain, which leads to a rearrangement of the transmembrane helices. This rearrangement alters the affinity of the protein for the calcium and disrupts the calcium binding cavity. Calcium is released in the lumen of the endoplasmic reticulum/Golgi Apparatus or outside the cell. After releasing calcium, two protons are bound to the transport sites (charges compensation) and the aspartyl phosphate is hydrolyzed to complete the cycle. <ref name="third">Thomas D.Pollard and William C. Earnshaw, - ''Membrane, structure and function'' - Cell Biology (second edition), p.133-136</ref>
The first step of the calcium pump catalytic cycle is the cooperative binding of <scene name='60/604489/Calcium_molecules/1'>two calcium ions</scene> in the calcium binding cavity. Then, ATP binds to the ATP binding site (nucleotide binding domain) and transfers its γ-phosphate to the <scene name='60/604489/Asp_351/1'>aspartic acide 351</scene> (phosphorylation domain). That creates a acid-stable aspartyl phosphate intermediate. The phosphorylation of Asp351 allows a large conformational changes in cytoplasmic domains: the nucleotide binding domain and the phosphorylation domain are brought into close proximity. This rearrangement causes a 90° rotation of the actuator domain, which leads to a rearrangement of the transmembrane helices. This rearrangement alters the affinity of the protein for the calcium and disrupts the calcium binding cavity. Calcium is released in the lumen of the endoplasmic reticulum/Golgi Apparatus or outside the cell. After releasing calcium, two protons bind to the transport sites (charges compensation) and the aspartyl phosphate is hydrolyzed to complete the cycle. <ref name="third">Thomas D.Pollard and William C. Earnshaw, - ''Membrane, structure and function'' - Cell Biology (second edition), p.133-136</ref>


[[Image:51-TheCalciumPumps-calcium-pumps.jpg|400px|center|]]
[[Image:51-TheCalciumPumps-calcium-pumps.jpg|400px|center|]]

Revision as of 11:56, 7 January 2015

3D Structure of the SERCA pump resolved with x-ray cristallography

Drag the structure with the mouse to rotate

References