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Published on: July 17, 2020
Allosteric activation or inhibition of PI3Kγ mediated through conformational changes in the p110γ helical domain
Noah J Harris1, Meredith L Jenkins1, Sung-Eun Nam2
1Department of Biochemistry and Microbiology, University of Victoria, Victoria, Canada.
Abstract:
PI3Kγ is a critical immune signaling enzyme activated downstream of diverse cell surface molecules, including Ras, PKCβ activated by the IgE receptor, and Gβγ subunits released from activated GPCRs. PI3Kγ can form two distinct complexes, with the p110γ catalytic subunit binding to either a p101 or p84 regulatory subunit, with these complexes being differentially activated by upstream stimuli. Here, using a combination of cryo electron microscopy, HDX-MS, and biochemical assays, we have identified novel roles of the helical domain of p110γ in regulating lipid kinase activity of distinct PI3Kγ complexes. We defined the molecular basis for how an allosteric inhibitory nanobody potently inhibits kinase activity through rigidifying the helical domain and regulatory motif of the kinase domain. The nanobody did not block either p110γ membrane recruitment or Ras/Gβγ binding, but instead decreased ATP turnover. We also identified that p110γ can be activated by dual PKCβ helical domain phosphorylation leading to partial unfolding of an N-terminal region of the helical domain. PKCβ phosphorylation is selective for p110γ-p84 compared to p110γ-p101, driven by differential dynamics of the helical domain of these different complexes. Nanobody binding prevented PKCβ-mediated phosphorylation. Overall, this work shows an unexpected allosteric regulatory role of the helical domain of p110γ that is distinct between p110γ-p84 and p110γ-p101 and reveals how this can be modulated by either phosphorylation or allosteric inhibitory binding partners. This opens possibilities of future allosteric inhibitor development for therapeutic intervention.
Insights
Novel research reveals the helical domain of phosphoinositide 3-kinase gamma (PI3Kγ) plays a key regulatory role in immune signaling. This discovery opens new avenues for developing allosteric inhibitors for therapeutic interventions.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Phosphoinositide 3-kinase gamma (PI3Kγ) is a crucial enzyme in immune cell signaling, downstream of various cell surface receptors.
- PI3Kγ exists in two distinct complexes (p110γ-p101 and p110γ-p84) with differential activation mechanisms.
Purpose of the Study:
- To elucidate the novel regulatory roles of the p110γ helical domain in PI3Kγ lipid kinase activity.
- To define the molecular basis of allosteric inhibition by a nanobody.
- To investigate the impact of PKCβ phosphorylation on PI3Kγ complex activity.
Main Methods:
- Cryo-electron microscopy
- Hydrogen-deuterium exchange mass spectrometry (HDX-MS)
- Biochemical assays
Main Results:
- Identified novel allosteric regulatory functions of the p110γ helical domain in distinct PI3Kγ complexes.
- Determined that an inhibitory nanobody rigidifies the helical domain, decreasing ATP turnover without affecting membrane recruitment or co-factor binding.
- Discovered PKCβ phosphorylation selectively activates the p110γ-p84 complex by inducing partial unfolding of the helical domain, a process inhibited by the nanobody.
Conclusions:
- The p110γ helical domain exhibits distinct allosteric regulation in p110γ-p84 and p110γ-p101 complexes.
- Modulation of PI3Kγ activity can be achieved through phosphorylation or allosteric inhibition.
- Findings provide a foundation for developing novel PI3Kγ allosteric inhibitors for therapeutic applications.
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