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Bourguet, M.

Publications and source records attributed to Bourguet, M..

4 recordsLinked to original sources

A GABARAP-PtdIns3K-C1 positive feedback loop at the heart of the phagophore nucleation

Macroautophagy/autophagy is a cellular process enabling degradation of intracellular components during starvation. In mammalian cells, autophagosomes can reach diameters of over 1000 nm within 30 min after triggering starvation, but how such substantial amounts of membranes can be synthesized within a brief time remains elusive. A protein complex central to the phagophore initiation is the lipid kinase PIK3C3-Complex 1 (PtdIns3K-C1), which produces phosphatidylinositol-3-phosphate (PtdIns3P). PtdIns3P recruits a variety of downstream proteins, among which is PtdIns3P-binding WIPI2 that facilitates lipidation of mammalian ATG8 (mATG8) family proteins on phagophores. Here we show that upon inhibition of mATG8 lipidation in cells, there is a decreased accumulation of WIPI2, suggesting a feedback loop between mATG8s and PtdIns3P production. The role of PtdIns3K-C1 in this feedback was demonstrated by in vitro experiments where recombinant membrane-coupled mATG8s bind to and potently activate PtdIns3K-C1, with GABARAP being the most potent activator among all mATG8s. By a combination of cryo-electron microscopy, structural mass spectrometry, activity assays and mutagenesis, we show that GABARAP binds two sites in PtdIns3K-C1, with one site showing an atypical bipartite interaction with the mATG8. We also confirm both sites are essential for GABARAP to activate PtdIns3K-C1. We propose that once GABARAP is indirectly recruited by PtdIns3P generated by basal activity of PtdIns3K-C1, a positive feedback loop is formed where PtdIns3K-C1 interacts with GABARAP and becomes activated to produce more PtdIns3P, thereby further stimulating GABARAP lipidation. This mechanism would be central for autophagosome biogenesis, where enlarged membranes need to be synthesized within a brief period. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=120 SRC="FIGDIR/small/712327v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@1dc398eorg.highwire.dtl.DTLVardef@146a2cborg.highwire.dtl.DTLVardef@69c649org.highwire.dtl.DTLVardef@58fd81_HPS_FORMAT_FIGEXP M_FIG The GABARAP-PtdIns3K-C1 positive feedback loop. Model for the GABARAP-PtdIns3K-C1 positive feedback loop. GABARAP is indirectly recruited to the growing phagophore by PtdIns3P and activates PtdIns3K-C1, leading to an increased PtdIns3P production. The E1 (ATG7), E2 (ATG3) and E3 (ATG5-ATG12-ATG16L1) enzymes and WIPI2 are involved in the lipidation (covalent coupling) of GABARAP to membranes. C_FIG

molecular biology↗

Structural basis for a phosphoinositide-driven mTORC2-AKT positive feedback loop

The mammalian target of rapamycin complex 2 (mTORC2) regulates metabolism, growth, survival and cytoskeletal organization, yet its activation mechanism is poorly understood. We show that mTORC2 is directly activated by membranes and our cryo-electron tomography structure of membrane-bound mTORC2 reveals the N-HEAT region of mTOR is at the major membrane interface. mTORC2 is further potently activated by a positive feedback loop involving reciprocal phosphorylation of mTORC2 and its substrate kinase AKT. Cryo-EM structures of dephosphorylated, autophosphorylated and AKT-phosphorylated mTORC2 reveal structural changes in the SIN1 subunit, regulating an autoinhibitory anchor. Reconstitution of the PDK1-AKT-mTORC2 hub on PIP3-containing membranes shows that PDK1/PIP3-dependent AKT activation drives SIN1-T86 phosphorylation, enabling mTORC2 to phosphorylate S473 of AKTs hydrophobic motif, establishing a PI3K-dependent, phosphorylation-driven positive feedback loop at the membrane.

biochemistry↗

A novel RAB5 binding site in human VPS34-CII that is likely the primordial site in eukaryotic evolution

RAB5-GTP activation of the multiprotein VPS34 complex II (VPS34-CII) is critical for endosomal sorting and maturation, phagocytosis, and receptor downregulation. RAB5-GTP activates VPS34-CII, by binding to a helical insertion in the C2 domain of VPS34 on the BECLIN1/UVRAG-containing adaptor arm of the complex. The autophagy complex, VPS34 complex I (VPS34-CI), features a unique ATG14L subunit in place of the VPS34-CII UVRAG subunit, and we found that this distorts the adaptor arm to alter the VPS34 RAB-GTPase binding pocket so that it preferentially binds RAB1-GTP. Surprisingly, our higher-resolution single-particle cryo-EM structure of VPS34-CII showed a second RAB5-GTP binding site on the VPS15 solenoid region. This site (VPS15-RAB5-site) appears to be the primordial RAB5-binding region. A mutant in the helical insertion of the C2 domain of human VPS34 that mimics the Saccharomyces cerevisiae sequence abolishes RAB5 binding to VPS34. Mutation of the VPS15-RAB5-site ortholog in S. cerevisiae VPS15 resulted in defective CPY sorting, loss of colocalization with the RAB5 ortholog Vps21, and loss of binding to Vps21 in vitro. Evolutionary expansion from one to two RAB5-orthologue binding sites may have increased membrane binding and VPS34-CII activity to adapt to more complex endocytic systems.

molecular biology↗

Pervanadate-induced oxidation relieves autoinhibition of SRC protein tyrosine kinase

Dynamic regulation of protein tyrosine phosphorylation (pTyr) by phosphatases (PTPs) and kinases enables cells to sense and respond to environmental changes. The widely used chemical probe Pervanadate (PV) induces accumulation of high levels of pTyr in cells, an effect primarily attributed to its properties as a PTP inhibitor. This led to the assertion that PTPs are the master gatekeeper of intracellular pTyr homeostasis. Here, we use diverse approaches to reveal that PV disrupts cellular redox homeostasis and directly activates SRC family tyrosine kinases via oxidation of specific cysteine residues. Using mass spectrometry and biophysical approaches, we show that oxidation activates SRC by disrupting autoinhibition and altering phosphopeptide binding by its SH2 domain. We further establish that redox-sensitive cysteine residues are essential for SRC to promote cellular overgrowth. Our findings call for a re-evaluation of PV-based experiments and provide compelling evidence that oxidation is a crucial mechanism in controlling the oncogenic properties of SRC.

molecular biology↗