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Hertwig, M.

Publications and source records attributed to Hertwig, M..

2 recordsLinked to original sources

Activity-based chemical proteomics uncovers unexpected covalent targets of E64d and reveals a role for cysteine cathepsins in PLD3 proteostasis

Catalytic activity of 5'-3' exonuclease Phospholipase D3 (PLD3) is associated with immune signaling and neurodegeneration including Alzheimers disease. PLD3 undergoes multiple post-translational modifications and proteolytic cleavage to establish its catalytically active form. However, the proteases catalyzing the cleavage of PLD3 have remained unidentified. To study the proteolytic cleavage of PLD3, we have evaluated the small molecule covalent inhibitor E64d that blocks proteolysis catalyzed by cysteine cathepsins. To validate the selectivity of E64d, we have designed and synthetized an E64d propargyl analogue and carried out a detailed activity-based protein profiling to reveal a broad engagement of the compound with other protein targets including bleomycin hydrolase (BLMH), Kelch-like ECH-associated protein 1 (KEAP1), transcription elongation factor SPT5 (SUPT5H) and asparagine synthetase (ASNS). The specificity of the E64d-protein interactions was confirmed by biochemical assays and mass spectrometry-based site identifications. In neurons, treatment with E64d lead to about 50-fold PLD3 accumulation and dysregulation of its proteolytic cleavage, while there was only a minor overall change on the whole proteome level. Taken together, this study provides insights into previously unknown E64d selectivity and renders cysteine cathepsins responsible for PLD3 degradation in neurons. It highlights the importance of cysteine cathepsins activity in neuronal lysosomes for proper PLD3 processing and hence it suggests that their activation might be responsible for decreased PLD3 levels in neurons of patients with Alzheimers diseases. These findings are key for further elucidation of PLD3 function in neurodegenerative diseases.

biochemistry↗

Somatic gene delivery for flexible in vivo modeling of high-risk sarcoma

A particular challenge hampering therapeutic advancements for high-risk sarcoma patients is the broad spectrum of molecularly distinct sarcoma entities and the corresponding lack of suitable model systems to recapitulate and study these diseases. To overcome this predicament, we developed a novel genetically-controlled, yet versatile mouse modeling platform allowing delivery of different genetic lesions by electroporation (EPO) of the thigh muscle wildtype mice. This optimized sarcoma EPO-GEMM (EPO-based genetically engineered mouse model) platform allowed the generation of ten biologically distinct sarcoma entities, including Synovial Sarcoma (SS), fusion-positive and fusion-negative Rhabdomyosarcoma (RMS), Alveolar Soft Part Sarcoma (ASPS), Undifferentiated Pleomorphic Sarcoma (UPS) and Infantile Fibrosarcoma (IFS). Comprehensive molecular profiling and cross-species analyses confirmed faithful recapitulation of the human disease, including the expression of relevant immunotherapy targets. Syngeneic allografting enabled reliable preservation and scalability of Sarcoma-EPO-GEMMs for treatment trials, such as B7-H3-directed CAR-T cell therapy in an immunocompetent background.

cancer biology↗