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Biology subjects

Nam, S.-E.

Publications and source records attributed to Nam, S.-E..

2 recordsLinked to original sources

Allosteric activation or inhibition of PI3Kγ mediated through conformational changes in the p110γ helical domain

PI3K{gamma} is a critical immune signaling enzyme activated downstream of diverse cell surface molecules, including Ras, PKC{beta} activated by the IgE receptor, and G{beta}{gamma} subunits released from activated GPCRs. PI3K{gamma} can form two distinct complexes, with the p110{gamma} 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 p110{gamma} in regulating lipid kinase activity of distinct PI3K{gamma} 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 p110{gamma} membrane recruitment or Ras/G{beta}{gamma} binding, but instead decreased ATP turnover. We also identified that p110{gamma} can be activated by dual PKC{beta} helical domain phosphorylation leading to partial unfolding of an N-terminal region of the helical domain. PKC{beta} phosphorylation is selective for p110{gamma}-p84 compared to p110{gamma}-p101, driven by differential dynamics of the helical domain of these different complexes. Nanobody binding prevented PKC{beta} mediated phosphorylation. Overall, this works shows an unexpected allosteric regulatory role of the helical domain of p110{gamma} that is distinct between p110{gamma}-p84 and p110{gamma}-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.

biochemistry↗

Biochemical insight into novel Rab-GEF activity of the mammalian TRAPPIII complex

Transport Protein Particle complexes (TRAPP) are evolutionarily conserved regulators of membrane trafficking, with this mediated by their guanine nucleotide exchange factor (GEF) activity towards Rab GTPases. In metazoans evidence suggests that two different TRAPP complexes exist, TRAPPII and TRAPPIII. These two complexes share a common core of subunits, with complex specific subunits (TRAPPC9 and TRAPPC10 in TRAPPII and TRAPPC8, TRAPPC11, TRAPPC12, TRAPPC13 in TRAPPIII). TRAPPII and TRAPPIII have distinct specificity for GEF activity towards Rabs, with TRAPPIII acting on Rab1, and TRAPPII acting on Rab1 and Rab11. The molecular basis for how these complex specific subunits alter GEF activity towards Rab GTPases is unknown. Here we have used a combination of biochemical assays, hydrogen deuterium exchange mass spectrometry (HDX-MS) and electron microscopy to examine the regulation of TRAPPII and TRAPPIIII complexes in solution and on membranes. GEF assays revealed that the TRAPPIII has GEF activity against Rab1 and Rab43, with no detectable activity against the other 18 Rabs tested. The TRAPPIII complex had significant differences in protein dynamics at the Rab binding site compared to TRAPPII, potentially indicating an important role of accessory subunits in altering the active site of TRAPP complexes. Both the TRAPPII and TRAPPIII complexes had enhanced GEF activity on lipid membranes, with HDX-MS revealing numerous conformational changes that accompany membrane association. HDX-MS also identified a membrane binding site in TRAPPC8. Collectively, our results provide insight into the functions of TRAPP complexes and how they can achieve Rab specificity.

biochemistry↗