The Structure of PI3K: Difference between revisions
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==Adapter Subunit== | ==Adapter Subunit== | ||
<StructureSection load='1dq8' size=' | <StructureSection load='1dq8' size='450' side='right' scene='User:David_Canner/Sandbox_P/Full/4' caption='Structure of PI3K p110, ([[3hhm]])'> | ||
===The p85 Adapter Subunit=== | ===The p85 Adapter Subunit=== | ||
Class IA PI3Ks are tightly associated with a 85 kDa regulatory subunit called p85.<ref name="Wymann"/> P85 contains a Src homology 3 (SH3) domain, a breakpoint-cluster region homology (BH) domain between two proline-rich regions, and two C-terminal SH2 domains separated by an inter-SH2 (iSH2) region, which tightly binds p85 to the catalytic subunit.<ref>PMID:1707345</ref> Since PI3K has multiple protein-interaction domains, p85 is able to interact with several signaling molecules simultaneously, allowing for significant fine tuning of PI3K activity. <ref name="Wymann"> PMID: 9838078</ref> | Class IA PI3Ks are tightly associated with a 85 kDa regulatory subunit called p85.<ref name="Wymann"/> P85 contains a Src homology 3 (SH3) domain, a breakpoint-cluster region homology (BH) domain between two proline-rich regions, and two C-terminal SH2 domains separated by an inter-SH2 (iSH2) region, which tightly binds p85 to the catalytic subunit.<ref>PMID:1707345</ref> Since PI3K has multiple protein-interaction domains, p85 is able to interact with several signaling molecules simultaneously, allowing for significant fine tuning of PI3K activity. <ref name="Wymann"> PMID: 9838078</ref> | ||
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All PI3K catalytic subunits possess intrinsic protein serine kinase activity. PI3K regulatory subunits can be phophorylated by the catalytic subunit (p110) at specific sites. For example, phophorylation of Ser 608, a residue located in an area of the iSH2 domain that is critical for PIP2 presentation to the catalytic subunit, results in a dramatic reduction in PI3K lipid kinase activity.<ref>PMID: 8313897</ref> Additionally, tyrosines 580 and 607 can be phosphorylated upon stimulation with insulin and growth factor along with <scene name='User:David_Canner/Sandbox_P/Tyr_508/1'>Tyr 508 upon PDGF receptor mediation</scene>. <ref name="Wymann"/> Phosphorylation of Tyr 688 in the CSH2 domain by Abl and Lck results in reduced affinity for phosphopeptides and subsequent activation of the catalytic domain. <ref>PMID:9461588 </ref> | All PI3K catalytic subunits possess intrinsic protein serine kinase activity. PI3K regulatory subunits can be phophorylated by the catalytic subunit (p110) at specific sites. For example, phophorylation of Ser 608, a residue located in an area of the iSH2 domain that is critical for PIP2 presentation to the catalytic subunit, results in a dramatic reduction in PI3K lipid kinase activity.<ref>PMID: 8313897</ref> Additionally, tyrosines 580 and 607 can be phosphorylated upon stimulation with insulin and growth factor along with <scene name='User:David_Canner/Sandbox_P/Tyr_508/1'>Tyr 508 upon PDGF receptor mediation</scene>. <ref name="Wymann"/> Phosphorylation of Tyr 688 in the CSH2 domain by Abl and Lck results in reduced affinity for phosphopeptides and subsequent activation of the catalytic domain. <ref>PMID:9461588 </ref> | ||
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==The Catalytic Subunit== | ==The Catalytic Subunit== | ||
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===The Catalytic Subunit (P110) of Class 1 PI3Ks=== | ===The Catalytic Subunit (P110) of Class 1 PI3Ks=== | ||
The catalytic subunit, P110 has several isoforms that associate with different classes of PI3Ks. P110α, β, and δ associate with Class IA PI3Ks while p110γ associates with Class 1B PI3ks. <ref name="Wymann"/> The <scene name='User:David_Canner/Sandbox_P/Full/1'>p110α subunit contains several domains including</scene> an N-terminal adaptor-binding domain (ABD), a Ras binding domain (RBD) a C2 domain that likely binds to the cellular membrane, a helical domain (HD) with unknown function, and the actual catalytic kinase domain. <ref name="Amzel"> PMID: 19805105 </ref> The actions of these domains are coordinated by the nSH2 communicating domain in p85. | The catalytic subunit, P110 has several isoforms that associate with different classes of PI3Ks. P110α, β, and δ associate with Class IA PI3Ks while p110γ associates with Class 1B PI3ks. <ref name="Wymann"/> The <scene name='User:David_Canner/Sandbox_P/Full/1'>p110α subunit contains several domains including</scene> an N-terminal adaptor-binding domain (ABD), a Ras binding domain (RBD) a C2 domain that likely binds to the cellular membrane, a helical domain (HD) with unknown function, and the actual catalytic kinase domain. <ref name="Amzel"> PMID: 19805105 </ref> The actions of these domains are coordinated by the nSH2 communicating domain in p85. | ||
<html5media height="360" width="640">https://vimeo.com/540290912</html5media> | |||
The video above depicts the ATP binding pocket of PI3K. | |||
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Although no <scene name='User:David_Canner/Sandbox_P/Inhibitor_main/4'>crystal structure of PI3K</scene> with bound substate analog has been solved, a model for PIP2 phosphorylation has been developed and is generally supported. <ref name="Walker2">PMID:10580505</ref> In this model, the headgroup of PIP2 is <scene name='User:David_Canner/Sandbox_P/Catalytic_cavity/2'>positioned in a cavity</scene> between the <scene name='User:David_Canner/Sandbox_P/Catalytic_site/1'>C-terminal helix 12 of the kinase domain, the “activation” loop, and the “catalytic” loop</scene>. This puts the 5-phosphate of PIP2 near Lys 973 and the <scene name='User:David_Canner/Sandbox_P/Catalytic_site_atp_lys/1'>I-phosphate of ATP near Lys 807 and Lys 808</scene>. The <scene name='User:David_Canner/Sandbox_P/Catalytic_site_pip2/1'>basic residues Arg 947</scene> and Lys 973 can bind the 4-Phosphate of PIP2 and help provide the Class I PI3Ks with their specificity for PIP2. Once PIP2 and ATP are bound, it is believed <scene name='User:David_Canner/Sandbox_P/Catalytic_site_his/1'>His 948 rotates to interact with PIP2</scene>, deprotonating it at the C-3 Hydroxyl position creating a nucleophile. This nucleophile subsequently attacks the gamma phosphate of ATP producing PIP3. <ref name="Walker2"/> | Although no <scene name='User:David_Canner/Sandbox_P/Inhibitor_main/4'>crystal structure of PI3K</scene> with bound substate analog has been solved, a model for PIP2 phosphorylation has been developed and is generally supported. <ref name="Walker2">PMID:10580505</ref> In this model, the headgroup of PIP2 is <scene name='User:David_Canner/Sandbox_P/Catalytic_cavity/2'>positioned in a cavity</scene> between the <scene name='User:David_Canner/Sandbox_P/Catalytic_site/1'>C-terminal helix 12 of the kinase domain, the “activation” loop, and the “catalytic” loop</scene>. This puts the 5-phosphate of PIP2 near Lys 973 and the <scene name='User:David_Canner/Sandbox_P/Catalytic_site_atp_lys/1'>I-phosphate of ATP near Lys 807 and Lys 808</scene>. The <scene name='User:David_Canner/Sandbox_P/Catalytic_site_pip2/1'>basic residues Arg 947</scene> and Lys 973 can bind the 4-Phosphate of PIP2 and help provide the Class I PI3Ks with their specificity for PIP2. Once PIP2 and ATP are bound, it is believed <scene name='User:David_Canner/Sandbox_P/Catalytic_site_his/1'>His 948 rotates to interact with PIP2</scene>, deprotonating it at the C-3 Hydroxyl position creating a nucleophile. This nucleophile subsequently attacks the gamma phosphate of ATP producing PIP3. <ref name="Walker2"/> | ||
</StructureSection> | </StructureSection> | ||
==Additional Resources== | ==Additional Resources== | ||
Latest revision as of 18:55, 22 April 2021
Structure of PI3K
Class I proto-oncogene, which are tightly regulated by tyrosine kinases, are composed of an 85kDa regulatory/adapter subunit (p85) and a 110kDa catalytic subunit (p110). [1]
Adapter Subunit
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Additional Resources
- See 3i5r for the main page or Src for PI3Ks medical importance.
- See 2iui for additional information.
- See 2v1y for additional information.
References
- ↑ Hoedemaeker FJ, Siegal G, Roe SM, Driscoll PC, Abrahams JP. Crystal structure of the C-terminal SH2 domain of the p85alpha regulatory subunit of phosphoinositide 3-kinase: an SH2 domain mimicking its own substrate. J Mol Biol. 1999 Oct 1;292(4):763-70. PMID:10525402 doi:https://dx.doi.org/10.1006/jmbi.1999.3111
Proteopedia Page Contributors and Editors (what is this?)
David Canner, Hannah Campbell, Eran Hodis, Alexander Berchansky, Michal Harel