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PIP-on-a-chip: A Label-free Study of Protein-phosphoinositide Interactions
Published on: July 27, 2017
Single-Molecule Study Reveals How Receptor and Ras Synergistically Activate PI3Kα and PIP3 Signaling
Thomas C Buckles1, Brian P Ziemba1, Glenn R Masson2
1Molecular Biophysics Program and Department of Chemistry and Biochemistry, University of Colorado, Boulder, Colorado.
Abstract:
Cellular pathways controlling chemotaxis, growth, survival, and oncogenesis are activated by receptor tyrosine kinases and small G-proteins of the Ras superfamily that stimulate specific isoforms of phosphatidylinositol-3-kinase (PI3K). These PI3K lipid kinases phosphorylate the constitutive lipid phosphatidylinositol-4,5-bisphosphate (PIP2) to produce the signaling lipid phosphatidylinositol-3,4,5-trisphosphate (PIP3). Progress has been made in understanding direct, moderate PI3K activation by receptors. In contrast, the mechanism by which receptors and Ras synergistically activate PI3K to much higher levels remains unclear, and two competing models have been proposed: membrane recruitment versus activation of the membrane-bound enzyme. To resolve this central mechanistic question, this study employs single-molecule imaging to investigate PI3K activation in a six-component pathway reconstituted on a supported lipid bilayer. The findings reveal that simultaneous activation by a receptor activation loop (from platelet-derived growth factor receptor, a receptor tyrosine kinase) and H-Ras generates strong, synergistic activation of PI3Kα, yielding a large increase in net kinase activity via the membrane recruitment mechanism. Synergy requires receptor phospho-Tyr and two anionic lipids (phosphatidylserine and PIP2) to make PI3Kα competent for bilayer docking, as well as for subsequent binding and phosphorylation of substrate PIP2 to generate product PIP3. Synergy also requires recruitment to membrane-bound H-Ras, which greatly speeds the formation of a stable, membrane-bound PI3Kα complex, modestly slows its off rate, and dramatically increases its equilibrium surface density. Surprisingly, H-Ras binding significantly inhibits the specific kinase activity of the membrane-bound PI3Kα molecule, but this minor enzyme inhibition is overwhelmed by the marked enhancement of membrane recruitment. The findings have direct impacts for the fields of chemotaxis, innate immunity, inflammation, carcinogenesis, and drug design.
Insights
Receptor tyrosine kinases and Ras proteins synergistically activate phosphatidylinositol-3-kinase (PI3K) through membrane recruitment, enhancing cellular signaling pathways involved in growth and oncogenesis.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Receptor tyrosine kinases and Ras proteins activate phosphatidylinositol-3-kinase (PI3K) isoforms.
- PI3K produces phosphatidylinositol-3,4,5-trisphosphate (PIP3) from PIP2, regulating cellular functions.
- Mechanisms of synergistic PI3K activation by receptors and Ras remain unclear.
Purpose of the Study:
- To elucidate the mechanism of synergistic PI3K activation by receptors and Ras.
- To differentiate between membrane recruitment and enzyme activation models.
Main Methods:
- Reconstitution of a six-component pathway on a supported lipid bilayer.
- Single-molecule imaging techniques.
- Investigated PI3Kα activation by platelet-derived growth factor receptor and H-Ras.
Main Results:
- Simultaneous receptor and H-Ras activation leads to synergistic PI3Kα activation via membrane recruitment.
- Synergy requires receptor phospho-Tyr, anionic lipids (phosphatidylserine, PIP2), and H-Ras.
- H-Ras binding enhances PI3Kα membrane recruitment and complex stability, despite minor kinase inhibition.
Conclusions:
- Membrane recruitment is the dominant mechanism for synergistic PI3K activation.
- Findings impact understanding of chemotaxis, immunity, inflammation, and carcinogenesis.
- Provides insights for drug design targeting PI3K pathways.
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