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Oberer, M.

Publications and source records attributed to Oberer, M..

3 recordsLinked to original sources

Acid phospholipase A1 promotes lysosomal membrane catabolism

The molecular mechanisms of lysosomal glycerophospholipid (GPL) catabolism are incompletely understood. Here, we report that acid phospholipase A1 (APLA1), formerly known as palmitoyl-protein thioesterase 2 (PPT2), is required for efficient GPL degradation. Deletion of APLA1 in human cells results in excess accumulation of phospholipids within lysosomes # a pathological condition termed phospholipidosis. APLA1 activity depends on interactions with negatively charged GPLs and is inhibited by phospholipidosis-inducing cationic amphiphilic drugs. Hydrolysis of zwitterionic, but not anionic, GPLs requires co-activation of APLA1 by the lysosome-specific lipid bis(monoacylglycero)phosphate. Upon pharmacological mTORC inhibition, which increases lysosomal GPL turnover, APLA1-deficient cells exhibit massive accumulation of multilamellar membranes in lysosomes and reduced cytosolic triacylglycerol stores. APLA1 acts in concert with lysosomal phospholipase A2 (PLA2G15). Combined APLA1/PLA2G15-deficiency leads to a severe reduction in acid phospholipase A1/A2 activity, thereby exacerbating phospholipidosis. Our observations provide detailed mechanistic insights into lysosomal GPL catabolism, a crucial pathway for maintaining lipid homeostasis.

biochemistry↗

M. tuberculosis meets European Lead Factory - identification and structural characterization of novel Rv0183 inhibitors using X-ray crystallography

Tuberculosis, caused by Mycobacterium tuberculosis (Mtb), remains a leading cause of mortality worldwide. Proteins involved in lipid metabolism, such as the monoacylglycerol lipase Rv0183, play critical roles during both the active and dormant phases of Mtb and present novel targets for therapeutic intervention. Through high-throughput screening at the European Lead Factory, we identified a novel chemotype characterized by a hydroxypyrrolidine ring, which demonstrated potent inhibition of Rv0183 and promising results in whole cell bacterial studies. Subsequent co-crystallization studies of this chemotype with Rv0183 revealed non-covalent interactions within the lipases binding pocket, elucidating the inhibitory mechanism. Comparative analysis, augmented by AI-driven 3D-point-cloud approaches, distinguished Rv0183s ligand-binding cavity from that of human monoacylglycerol lipase, implying the possibility for species-selective inhibition. This selectivity was further supported by molecular docking simulations which validated the experimental binding affinities and predicted strong, specific binding modes. Our study presents not only the structural basis for the inhibition of Rv0183 by these novel hydroxypyrrolidine-based inhibitors but also demonstrates the utility of integrating computational and empirical methods to achieve species-specific targeting. This approach could minimize off-target effects in humans, marking a significant step toward developing more effective antitubercular therapies. The potential to selectively inhibit Mtb in its dormant state could lead to treatments that prevent the persistence and resurgence of the disease, addressing a crucial gap in the fight against tuberculosis.

biochemistry↗

Unmasking Crucial Residues in Adipose Triglyceride Lipase (ATGL) for Co-Activation with Comparative Gene Identification-58 (CGI-58)

Lipolysis is an essential metabolic process that releases unesterified fatty acids from neutral lipid stores to maintain energy homeostasis in living organisms. Adipose triglyceride lipase (ATGL) plays a key role in intracellular lipolysis and can be co-activated upon interaction with the protein comparative gene identification-58 (CGI-58). The underlying molecular mechanism of ATGL stimulation by CGI-58 is incompletely understood. Based on analysis of evolutionary conservation, we used site directed mutagenesis to study a C-terminally truncated variant and full-length mouse ATGL providing insights in the protein co-activation on a per-residue level. We identified the region from residues N209-N215 in mouse ATGL as essential for co-activation by mouse CGI-58. ATGL variants with amino-acids exchanges in this region were still able to hydrolyze triacylglycerol at the basal level and to interact with CGI-58, yet could not be activated by CGI-58. Our studies also demonstrate that full-length mouse ATGL showed higher tolerance to specific single amino acid exchanges in the N209-N215 region upon CGI-58 co-activation compared to C-terminally truncated ATGL variants. The region is either directly involved in protein-protein interaction or essential for conformational changes required in the co-activation process. Three-dimensional models of the ATGL/CGI-58 complex with the artificial intelligence software AlphaFold demonstrated that a large surface area is involved in the protein-protein interaction. Mapping important amino acids for co-activation of both proteins, ATGL and CGI-58, onto the 3D model of the complex locates these essential amino acids at the predicted ATGL/CGI-58 interface thus strongly corroborating the significance of these residues in CGI-58 mediated co-activation of ATGL.

biochemistry↗