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Mello-Vieira, J.

Publications and source records attributed to Mello-Vieira, J..

3 recordsLinked to original sources

Damage sensing recruitment of a lipid phosphatase couples lysosomal membrane repair to proteostatic adaptation

Restoration of organellar membrane integrity is critical for maintaining cellular homeostasis. Lysosomal membrane damage activates local repair machineries and global stress responses, but how signaling lipid metabolism is engaged by damage sensors to support and mechanistically link these processes remains poorly understood. Here we show that the phosphoinositide 3-phosphatase MTMR14 is recruited to damaged lysosomes through calcium-dependent binding to sphingomyelin. At these sites, MTMR14 promotes local PI(3)P hydrolysis and supports PI(4)P accumulation, thereby facilitating formation of ER-lysosome contact sites associated with membrane repair, without affecting ESCRT recruitment. MTMR14-dependent lipid remodelling causes reduced mTORC1 signalling and a decrease in global protein synthesis, consistent with an acute proteostatic adaptation to lysosomal injury. Cells lacking MTMR14 display impaired damage-induced lipid remodelling, altered repair-associated structures, sustained protein synthesis, and increased sensitivity to lysosomal injury, all of which can be mitigated by mTORC1/S6K inhibition. Our findings identify damage-sensing recruitment of MTMR14 and local PI(3)P turnover on damaged lysosomes as a phosphoinositide module that promotes lysosomal membrane integrity and homeostasis while functionally linking nutrient signalling to proteostasis under membrane stress.

cell biology↗

Phosphoribosyl ubiquitination of SNARE proteins regulate autophagy in Legionella infection

Legionella pneumophila is an intracellular pathogen that causes Legionnaires disease. The bacteria releases effector proteins some of which remodel the host autophagic-lysosomal pathways. One effector is RavZ, which delipidates ATG8 proteins, making Legionella-infected cells deficient in autophagy. Here we show that SidE effectors mediate the phosphoribosyl ubiquitination (PR-Ub) of autophagic SNARE proteins STX17 and SNAP29. STX17 modification induces recruitment of STX17+ membranes from the endoplasmic reticulum to Legionella-containing phagosomes to form replicative vacuoles. Using proximity labeling, biochemistry and Legionella infection studies, we have discovered a mechanism by which autophagy is hijacked by bacteria to recruit ER membranes to the bacterial vacuole which has autophagy markers but do not fuse with lysosomes. Mass spectrometric identification of PR-Ub sites and mutational studies show that PR-Ub modification of STX17 alters its interaction with ATG14L, which drives the recruitment of ER membranes to the bacterial vacuole in a PI3K dependent manner. On the other hand, PR-Ub of SNAP29 inhibits the formation of the autophagosomal SNARE complex (STX17-SNAP29-VAMP8) by steric hindrance, thereby preventing the fusion of bacterial vacuoles with lysosomes.

cell biology↗

Intracellular lipopolysaccharide regulates ER remodeling upon bacterial infection

Selective autophagy of the endoplasmic reticulum (ER), termed ERphagy or reticulophagy, plays a key role in organelle remodeling and cellular homeostasis. However, whether and how ERphagy is regulated during Gram-negative bacteria infection to influence host responses remains unclear. Here, we show that Salmonella enterica serovar Typhimurium releases lipopolysaccharide (LPS) that colocalizes with RETREG1/FAM134B, a reticulon-like ER-resident receptor for ERphagy. Cytosolic delivery of LPS, either during infection or via transfection, markedly increases RETREG1- and LC3B-decorated ER fragments. Mechanistically, affinity-isolation assays demonstrate that LPS directly binds RETREG1 through interactions between lipid A and positively charged residues within its amphipathic helices and C-terminal region. This interaction promotes RETREG1 oligomerization and drives ER membrane fragmentation, a process further amplified by the O-antigen moiety of LPS. The resulting ER fragments accumulate around LC3-positive Salmonella-containing vacuoles, facilitating bacterial clearance. Importantly, both intracellular and extracellular Salmonella exploit outer membrane vesicles (OMVs) to deliver LPS into the host cytosol, triggering RETREG1 activation and ER remodeling. Collectively, our findings reveal a previously unrecognized host response by which LPS of Gram-negative bacteria are sensed by the host ERphagy machinery to promote xenophagy and enhance antibacterial defense.

cell biology↗