Sandbox GGC2: Difference between revisions
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== Structural highlights == | == Structural highlights == | ||
The structure shown to the right is the crystal structure of the vitamin D-binding protein (shown in yellow) and its complex with skeletal actin (shown in blue). Under normal conditions, the macromolecule is present in a <scene name='75/752269/Dimeric_form/1'>dimeric form</scene>. "A homeostatic mechanism, termed the actin-scavenger system, is responsible for the depolymerization and removal of actin from the circulation. During the first phase of this mechanism, gelsolin severs the actin filaments. In the second phase, the vitamin D-binding protein (DBP) traps the actin monomers, which accelerates their clearance." <ref>DOI: 10.1073/pnas.122126299</ref> There are many molecules or ligands that facilitate specific processes with actin. One of the unique ligands is <scene name='75/752269/Atp_ligand/2'>ATP</scene>. The binding of ATP, in this case, allows the ACTA1 gene to bind efficiently to DBP. The hydrolysis of ATP gives the actin the necessary energy to perform certain tasks and without it, actin will release the DBP. It is also noted that in this complex ATP is either blocked or slowed down dramatically. This observation may be an indication that during ATP hydrolysis actin undergoes certain conformational transitions that cannot take place when it is bound to certain proteins. Attached to the ATP molecule there is the metal ion, <scene name='75/752269/Mg_ligand/1'>magnesium</scene>, bound to the nucleotide site.The <scene name='75/752269/2n_struc/1'>secondary structure</scene> displays the positions of the alpha-helices and beta-strands. As seen the protein is mostly comprised of alpha-helices (shown in magenta) with the beta-sheets in minority (shown in yellow). | The structure shown to the right is the crystal structure of the vitamin D-binding protein (shown in yellow) and its complex with skeletal actin (shown in blue). Under normal conditions, the macromolecule is present in a <scene name='75/752269/Dimeric_form/1'>dimeric form</scene>. "A homeostatic mechanism, termed the actin-scavenger system, is responsible for the depolymerization and removal of actin from the circulation. During the first phase of this mechanism, gelsolin severs the actin filaments. In the second phase, the vitamin D-binding protein (DBP) traps the actin monomers, which accelerates their clearance." <ref>DOI: 10.1073/pnas.122126299</ref>. The contacts between actin and DBP are a combination of hydrophobic and electrostatic interactions including direct hydrogen bonds (a total of 10), two salt bridges (connecting actin residues Asp-288 and Lys-328 and DBP residues Arg-218 and Glu-143, respectively), and a large number of contacts mediated by solvent molecules. There are many molecules or ligands that facilitate specific processes with actin. One of the unique ligands is <scene name='75/752269/Atp_ligand/2'>ATP</scene>. The binding of ATP, in this case, allows the ACTA1 gene to bind efficiently to DBP. The hydrolysis of ATP gives the actin the necessary energy to perform certain tasks and without it, actin will release the DBP. It is also noted that in this complex ATP is either blocked or slowed down dramatically. This observation may be an indication that during ATP hydrolysis actin undergoes certain conformational transitions that cannot take place when it is bound to certain proteins. Attached to the ATP molecule there is the metal ion, <scene name='75/752269/Mg_ligand/1'>magnesium</scene>, bound to the nucleotide site.The <scene name='75/752269/2n_struc/1'>secondary structure</scene> displays the positions of the alpha-helices and beta-strands. As seen the protein is mostly comprised of alpha-helices (shown in magenta) with the beta-sheets in minority (shown in yellow). | ||
</StructureSection> | </StructureSection> | ||
== References == | == References == | ||
<references/> | <references/> | ||
Revision as of 19:06, 10 November 2020
Actin, alpha skeletal muscle (ACTA1)
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