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Biology subjects

Lecka, M.

Publications and source records attributed to Lecka, M..

2 recordsLinked to original sources

Engineering cathepsin S selective chemical probes and antibody-drug conjugates through substrate profiling with unnatural amino acids

Cysteine cathepsins, particularly cathepsin S, are important regulators of proteolytic signaling in health and disease, including cancer progression and immune modulation. Despite their therapeutic relevance, selective chemical tools to study individual cathepsins remain limited due to overlapping substrate preferences. Here we present design of cathepsin S selective chemical probes and cathepsin S-cleavable antibody-drug conjugates (ADCs) through substrate profiling with unnatural amino acids. First, Hybrid Combinatorial Substrate Library (HyCoSuL) technology incorporating a broad spectrum of unnatural amino acids was applied to comprehensively investigate the substrate specificity of cathepsin S. This approach enabled the identification of highly selective tetrapeptide motifs that served as scaffolds for the design of optimized fluorogenic substrates, irreversible inhibitors, and fluorescent activity-based probes (ABPs). These tools demonstrated high selectivity toward cathepsin S over closely related family members in both biochemical and cellular settings. We then translated these findings to develop cathepsin S-activated ADCs, incorporating the optimized peptide motifs as protease-cleavable linkers for targeted payload release. Using these linkers, we further generated MMAE-based antibody-drug conjugates directed against HER-2 and the TROP-2 proteins, demonstrating cathepsin S-dependent cytotoxicity in HER-2-positive as well as HER-2-negative/TROP-2-positive breast cancer models. Finally, we employed anti-cathepsin S antibodies in combination with mass cytometry (CyTOF) to assess the spatial distribution of cathepsin S expression in breast cancer patient samples. By correlating cathepsin S levels with tumor-associated markers such as TROP-2 and HER-2, we identified potential co-expression patterns that support the rationale for personalized therapy using antibody-drug conjugates selectively activated by cathepsin S. This integrative approach provides a comprehensive platform for profiling cathepsin S activity at the molecular, cellular, and tissue levels, with broad implications for the development of precision therapeutics and diagnostic strategies in oncology.

cancer biology↗

A new universal chimeric-antigen receptor (CAR)- fragment antibody binder (FAB) split system for cancer immunotherapy

Chimeric antigen receptor T (CAR-T) cell therapy has shown extraordinary results in treating hematological cancer. However, many patients relapse because of heterogeneous antigen expression and outgrowth of antigen lost variants. Other problems include on-target-off-tumor toxicity and the requirement for manufacturing of complex cellular products. Universal and modular CAR constructs offer significantly improved flexibility, safety and cost-effectiveness over conventional CAR constructs. Here we present a new chimeric-antigen receptor (CAR)-fragment antibody binder (Fab) platform based on an engineered protein G variant (GA1) and Fab scaffolds that present exquisite specificity and selectivity on antibody capture. The expression of GA1CAR on human CD8+T cells leads to antigen recognition and T cell effector function that can be modulated according to the affinity of the CAR for the Fab scaffold and of the Fab for the target. GA1CAR-T cells can recognize multiple Fab-antigen pairs on breast and ovarian cancer cell lines. Adoptive transfer of GA1CAR-T cells/Fabs in breast cancer xenograft models leads to effective tumor control. Rapid re-direction of the CAR-T cells to a new target can be achieved by using different Fabs. GA1CAR expression confers favorable phenotypic properties to T cells including a higher effector function upon exposure to antigen as compared to conventional scFv CAR-T cells. This highly versatile "plug and play" CAR-T platform has potential for application in personalized therapy, preventing antigen loss variant escape, decreasing toxicity and increasing access.

bioengineering↗