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Cryo-EM structures of cancer-specific helical and kinase domain mutations of PI3Kα
Xiao Liu1, Qingtong Zhou1, Jonathan R Hart2
1Department of Pharmacology, School of Basic Medical Sciences, Fudan University, Shanghai 200032, China.
Abstract:
Phosphoinositide 3-kinases (PI3Ks) are a family of lipid kinases that perform multiple and important cellular functions. The protein investigated here belongs to class IA of the PI3Ks; it is a dimer consisting of a catalytic subunit, p110α, and a regulatory subunit, p85α, and is referred to as PI3Kα. The catalytic subunit p110α is frequently mutated in cancer. The mutations induce a gain of function and constitute a driving force in cancer development. About 80% of these mutations lead to single-amino-acid substitutions in one of three sites of p110α: two in the helical domain of the protein (E542K and E545K) and one at the C-terminus of the kinase domain (H1047R). Here, we report the cryo-electron microscopy structures of these mutants in complex with the p110α-specific inhibitor BYL-719. The H1047R mutant rotates its sidechain to a new position and weakens the kα11 activation loop interaction, thereby reducing the inhibitory effect of p85α on p110α. E542K and E545K completely abolish the tight interaction between the helical domain of p110α and the N-terminal SH2 domain of p85α and lead to the disruption of all p85α binding and a dramatic increase in flexibility of the adaptor-binding domain (ABD) in p110α. Yet, the dimerization of PI3Kα is preserved through the ABD-p85α interaction. The local and global structural features induced by these mutations provide molecular insights into the activation of PI3Kα, deepen our understanding of the oncogenic mechanism of this important signaling molecule, and may facilitate the development of mutant-specific inhibitors.
Insights
Common cancer mutations in PI3Kα (phosphoinositide 3-kinase alpha) alter its structure and function. Understanding these PI3Kα mutations provides insights into cancer development and potential targeted therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Biology
Background:
- Phosphoinositide 3-kinases (PI3Ks) are crucial lipid kinases involved in various cellular processes.
- Class IA PI3Kα, composed of p110α and p85α subunits, is frequently mutated in cancer, driving tumor development through gain-of-function mechanisms.
Purpose of the Study:
- To elucidate the structural consequences of common oncogenic mutations in the p110α catalytic subunit of PI3Kα.
- To understand how these mutations affect the interaction with the p85α regulatory subunit and the inhibitor BYL-719.
Main Methods:
- Cryo-electron microscopy (cryo-EM) was employed to determine the structures of PI3Kα mutants.
- Structural analysis focused on the impact of specific mutations (H1047R, E542K, E545K) on protein conformation and subunit interactions.
Main Results:
- The H1047R mutation alters sidechain conformation, weakening p85α inhibition and impacting the kα11 activation loop.
- E542K and E545K mutations disrupt the interaction between p110α's helical domain and p85α's N-terminal SH2 domain, increasing p110α flexibility.
- Despite disruptions, PI3Kα dimerization is maintained via the adaptor-binding domain (ABD)-p85α interaction.
Conclusions:
- The study reveals distinct structural mechanisms by which oncogenic PI3Kα mutations activate the enzyme.
- These findings offer molecular insights into PI3Kα's role in cancer and inform the design of mutant-specific inhibitors.
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