User:Peyton Jenkins/Sandbox 1
From Proteopedia
(Difference between revisions)
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=== STK11 === | === STK11 === | ||
| - | [[STK11]] can be broken down into 3 domains. An N-terminal domain (aa 1-42), kinase domain (aa 43-347), and a C-terminal domain (aa 348-433). The <scene name='10/1078094/Active_site/1'>activation loop</scene> of [[STK11]] is located from residues ~202-212. Within the activation loop is F204, which interacts with a hydrophobic pocket on MO25, which is necessary to stabilize the active conformation. Within the αC helix is residue D98 which forms a <scene name='10/1078094/78and98/2'>salt bridge</scene> with K78, further stabilizing the active site and aids in ATP binding. Mg<sup>2+</sup> helps aid ATP binding, however in this structure there is a point mutation (<scene name='10/1078094/D194a/1'>D194A</scene>) to make STK11 catalytically inactive. Another loop, the <scene name='10/1078094/B2b3_loop/2'>β2-β3 loop</scene> is essential for binding of STRADα on the N-terminal lobe of STK11. β7-β8 sheets of STK11 also interact with STRADα. In the β2-β3 loop R74 hydrogen bonds with Q251 of STRADα. | + | [[STK11]] can be broken down into 3 domains. An N-terminal domain (aa 1-42), kinase domain (aa 43-347), and a C-terminal domain (aa 348-433). The <scene name='10/1078094/Active_site/1'>activation loop</scene> of [[STK11]] is located from residues ~202-212. Within the activation loop is F204, which interacts with a hydrophobic pocket on MO25, which is necessary to stabilize the active conformation. Within the αC helix is residue D98 which forms a <scene name='10/1078094/78and98/2'>salt bridge</scene> with K78, further stabilizing the active site and aids in ATP binding. Mg<sup>2+</sup> helps aid ATP binding, however in this structure there is a point mutation (<scene name='10/1078094/D194a/1'>D194A</scene>) to make STK11 catalytically inactive. Another loop, the <scene name='10/1078094/B2b3_loop/2'>β2-β3 loop</scene> is essential for binding of STRADα on the N-terminal lobe of STK11. β7-β8 sheets of STK11 also interact with STRADα. In the β2-β3 loop R74 hydrogen bonds with Q251 of STRADα<ref>(1.) Zeqiraj, E., Filippi, B. M., Deak, M., Alessi, D. R., and van Aalten, D. M. (2009) Structure of the LKB1-STRAD-MO25 complex reveals an allosteric mechanism of kinase activation, Science 326, 1707-1711. |
| + | </ref>. | ||
=== STRADα === | === STRADα === | ||
| - | STRAD alpha is composed of 2 domains, an N-terminal domain (aa 1-58) and [[pseudokinase]] domain (aa 59-431). STRADα is termed a [[pseudokinase]] because it shares structural features, such as an activation loop and αC helix, with other kinases, but lacks catalytic activity. STRADα binds STK11 through its pseudokinase domain, with the <scene name='10/1078094/Stradactivation/1'>activation loop</scene> interacting with the the β2-β3 loop and β7-β8 sheets of STK11. The <scene name='10/1078094/Stradhelixwmo/1'>αC of STRADα</scene> interacts with the surface of MO25, further stabilizing the interaction between proteins. Additionally there is a <scene name='10/1078094/Wef/1'>WEF motif</scene> (aa 429-431) on the C-terminus of STRADα interacting with the C-terminus of MO25. | + | STRAD alpha is composed of 2 domains, an N-terminal domain (aa 1-58) and [[pseudokinase]] domain (aa 59-431). STRADα is termed a [[pseudokinase]] because it shares structural features, such as an activation loop and αC helix, with other kinases, but lacks catalytic activity. STRADα binds STK11 through its pseudokinase domain, with the <scene name='10/1078094/Stradactivation/1'>activation loop</scene> interacting with the the β2-β3 loop and β7-β8 sheets of STK11. The <scene name='10/1078094/Stradhelixwmo/1'>αC of STRADα</scene> interacts with the surface of MO25, further stabilizing the interaction between proteins. Additionally there is a <scene name='10/1078094/Wef/1'>WEF motif</scene> (aa 429-431) on the C-terminus of STRADα interacting with the C-terminus of MO25<ref>(1.) Zeqiraj, E., Filippi, B. M., Deak, M., Alessi, D. R., and van Aalten, D. M. (2009) Structure of the LKB1-STRAD-MO25 complex reveals an allosteric mechanism of kinase activation, Science 326, 1707-1711. |
| + | </ref>. | ||
=== MO25 === | === MO25 === | ||
| - | MO25 is a repeat of α-helices spanning the entire length of the protein. Residues <scene name='10/1078094/Mo240and243/2'>R240 and F243</scene> interact with the A205 and A206 of the STK11 activation loop. This is not required for MO25 and STK11 binding, however mutating R240 and F243 resulted in a catalytically inactive complex, thus these residues are essential to orient and stabilize the active conformation of STK11. | + | MO25 is a repeat of α-helices spanning the entire length of the protein. Residues <scene name='10/1078094/Mo240and243/2'>R240 and F243</scene> interact with the A205 and A206 of the STK11 activation loop. This is not required for MO25 and STK11 binding, however mutating R240 and F243 resulted in a catalytically inactive complex, thus these residues are essential to orient and stabilize the active conformation of STK11<ref>(1.) Zeqiraj, E., Filippi, B. M., Deak, M., Alessi, D. R., and van Aalten, D. M. (2009) Structure of the LKB1-STRAD-MO25 complex reveals an allosteric mechanism of kinase activation, Science 326, 1707-1711. |
| + | </ref>. | ||
===Missing Residues=== | ===Missing Residues=== | ||
Revision as of 18:12, 30 April 2025
2WTK: Heterotrimeric Complex of STK11, MO25, and STRADα
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