Sandbox 47: Difference between revisions
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<scene name='Sandbox_47/B/1'>B</scene>, interact through a variety of <scene name='Sandbox_47/Lipasecontacts/1'>contacts</scene>. The subunits are related by a 2-fold non-crystallographic symmetry axis. Lipase also binds two <scene name='Sandbox_47/Lipase_calcium/2'>calcium ions</scene> as ligands with asparagine, glutamine, and arginine <scene name='Sandbox_47/ conta/4'>contacts</scene>. Calcium promotes the folding of lipase into its active dimer state and holds it in the active state during fat hydrolysis. Its <scene name='Sandbox_47/Lipasesecondarystructures/1'>secondary structure</scene> consists of 22% <scene name='Sandbox_47/Lipase_helix/2'>helices</scene> and 30% <scene name='Sandbox_47/Lipase_sheet/2'>beta sheets</scene>. It contains both <scene name='Sandbox_47/Lipase_hydrophobicres/2'>hydrophobic</scene> (red) and <scene name='Sandbox_47/Lipase_polarres/1'>polar residues</scene> (blue). The overall molecular structure of horse lipase has two well-defined domains. The <scene name='Sandbox_47/Nterminal/1'>N-terminal</scene> domain (residues 1-336) contains the | <scene name='Sandbox_47/B/1'>B</scene>, interact through a variety of <scene name='Sandbox_47/Lipasecontacts/1'>contacts</scene>. The subunits are related by a 2-fold non-crystallographic symmetry axis. Lipase also binds two <scene name='Sandbox_47/Lipase_calcium/2'>calcium ions</scene> as ligands with asparagine, glutamine, and arginine <scene name='Sandbox_47/ conta/4'>contacts</scene>. Calcium promotes the folding of lipase into its active dimer state and holds it in the active state during fat hydrolysis. Its <scene name='Sandbox_47/Lipasesecondarystructures/1'>secondary structure</scene> consists of 22% <scene name='Sandbox_47/Lipase_helix/2'>helices</scene> and 30% <scene name='Sandbox_47/Lipase_sheet/2'>beta sheets</scene>. It contains both <scene name='Sandbox_47/Lipase_hydrophobicres/2'>hydrophobic</scene> (red) and <scene name='Sandbox_47/Lipase_polarres/1'>polar residues</scene> (blue). The overall molecular structure of horse lipase has two well-defined domains. The <scene name='Sandbox_47/Nterminal/1'>N-terminal</scene> domain (residues 1-336) contains the | ||
<scene name='Sandbox_47/Active/1'>active site</scene> and has a typical alpha/beta hydrolase fold topology. The active site contains a catalytic triad (Ser-152, Asp-176, and His-263) that closely resembles that of serine proteases. The N-terminal domain also contains a <scene name='Sandbox_47/Lid/1'>"lid"</scene> that blocks solvent from entering the active site. The <scene name='Sandbox_47/Cterminal/1'>C-terminal</scene> domain (residues (337-449), for colipase binding, has a beta-sheet sandwich topology.<ref>Bourne Y, Martinez C, Kerfelec B, Lombardo D, Chapus C, Cambillau C. 1994. Horse pancreatic lipase. J. mol Biol. 238: 709-732.</ref> | <scene name='Sandbox_47/Active/1'>active site</scene> and has a typical alpha/beta hydrolase fold topology. The active site contains a catalytic triad (Ser-152, Asp-176, and His-263) that closely resembles that of serine proteases. The N-terminal domain also contains a <scene name='Sandbox_47/Lid/1'>"lid"</scene> that blocks solvent from entering the active site. The <scene name='Sandbox_47/Cterminal/1'>C-terminal</scene> domain (residues (337-449), for colipase binding, has a beta-sheet sandwich topology.<ref>Bourne Y, Martinez C, Kerfelec B, Lombardo D, Chapus C, Cambillau C. 1994. Horse pancreatic lipase. J. mol Biol. 238: 709-732.</ref> | ||
<embed type=”application/x-shockwave-flash” flashvars=”audioUrl=MP3_FILE_URL” src=”http://www.google.com/reader/ui/3523697345-audio-player.swf” width=”400″ height=”27″ quality=”best”></embed> | |||
== '''Function''' == | == '''Function''' == | ||