The Structure of PI3K: Difference between revisions
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==The Catalytic Subunit== | ==The Catalytic Subunit== | ||
===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. | ||
Revision as of 09:58, 4 April 2013
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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The Catalytic Subunit
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. [2] The p110α subunit contains several domains including 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. [3] The actions of these domains are coordinated by the nSH2 communicating domain in p85.
Communication between nSH2 & The Catalytic Subunit Domains
The alpha-A helix of NSH2 (residues 340-345) is anchored into a cavity created by the C2 and Kinase domain interface. Helix α11K of the Kinase domain (residues 1017-1024) interacts with the alpha-A helix of nSH2. nSH2 interacts with the C2 domain through a network of charge-charge interactions involving two loops on nSH2 (Residues 374-377 & 350-354) and C2 residues 364-371, a strong salt bridge between NSH2 Glu 349 and C2 residue Arg 357, and hydrogen bonds between NSH2 Glu 348 and C2 Glu 453 and Asp 454. [3]
The helical domain in p110, whose function isn’t thoroughly understood, interacts with nSH2 via charge interactions. The HD residue, Glu 542 forms a salt bridge with Arg 358 on NSH2 while Glu 545 interacts with NSH2 Lys 379. These residues are known hotspot mutations which are associated with various types of cancer. [3] This loop in the helical domain which contains the hotspots (residues 542-546) is located precisely where the phosphopeptide of NSH2 ligands, like PDGFR, bind to NSH2. The salt bridge formed between Glu 542 and nSH2 is disrupted upon binding phosphorylated peptides like PDGFR, eliminating nSH2-mediated inhibition of p110α and activating the enzyme to phosphorylate PIP2 into PIP3. The hotspot mutation at Glu 542 accomplishes the same thing by eliminating the salt bridge and uninhibiting p110α. It is the kinase domain which binds ATP to provide the phosphate group used to convert PIP2 into PIP3. [3]
Model for Catalysis
Although no crystal structure of PI3K with bound substate analog has been solved, a model for PIP2 phosphorylation has been developed and is generally supported. [4] In this model, the headgroup of PIP2 is positioned in a cavity between the C-terminal helix 12 of the kinase domain, the “activation” loop, and the “catalytic” loop. This puts the 5-phosphate of PIP2 near Lys 973 and the I-phosphate of ATP near Lys 807 and Lys 808. The basic residues Arg 947 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 His 948 rotates to interact with PIP2, deprotonating it at the C-3 Hydroxyl position creating a nucleophile. This nucleophile subsequently attacks the gamma phosphate of ATP producing PIP3. [4] </StructureSection>
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
- ↑ Cite error: Invalid
<ref>tag; no text was provided for refs namedWymann - ↑ 3.0 3.1 3.2 3.3 Mandelker D, Gabelli SB, Schmidt-Kittler O, Zhu J, Cheong I, Huang CH, Kinzler KW, Vogelstein B, Amzel LM. A frequent kinase domain mutation that changes the interaction between PI3Kalpha and the membrane. Proc Natl Acad Sci U S A. 2009 Oct 6;106(40):16996-7001. Epub 2009 Sep 23. PMID:19805105
- ↑ 4.0 4.1 Walker EH, Perisic O, Ried C, Stephens L, Williams RL. Structural insights into phosphoinositide 3-kinase catalysis and signalling. Nature. 1999 Nov 18;402(6759):313-20. PMID:10580505 doi:10.1038/46319
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David Canner, Hannah Campbell, Eran Hodis, Alexander Berchansky, Michal Harel