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Cwilichowska-Puslecka, N.

Publications and source records attributed to Cwilichowska-Puslecka, N..

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↗

Single-cell profiling of CAR-T CD19 cell phenotypes and immune system dynamics in pediatric BCP-ALL

BackgroundChimeric Antigen Receptor T-cell (CAR-T) therapy targeting CD19 has transformed the treatment of relapsed/refractory B-cell precursor acute lymphoblastic leukemia (BCP-ALL). However, the phenotypic heterogeneity of CAR+ T-cells and their interactions with the immune system remain poorly understood. Here, we characterize CAR+ T-cell subsets and persistence in patients receiving standard-of-care tisagenlecleucel in an effort to optimize therapeutic efficacy in pediatric BCP-ALL. MethodsNineteen pediatric patients with relapsed/refractory BCP-ALL treated with tisagenlecleucel in Poland were included in the study. CAR+ T-cell composition and the peripheral blood mononuclear cell (PBMC) immune system were assessed using mass cytometry, with qPCR validation of CAR+ T-cells. Machine learning algorithms in R classified phenotypes. Statistical analyses examined associations between CAR+ T-cell subsets, immune system changes, and CAR-T therapy outcomes, including cytokine release syndrome (CRS). ResultsInfusion product analysis showed a predominance of CD4+ Central Memory (16.6%), MAIT/NKT (7.04%), and Treg memory (63.3%) cells, with high consistency between paired products. Post-infusion, CAR+ Treg memory cells declined to <1%, while CD8+ subsets expanded. PBMC immune system analysis revealed increased monocyte and NK cell counts post-infusion. Patients who experienced CRS had fewer classical monocytes at day 7 and fewer transitional monocytes at day 28. Early and late NK cells increased post-infusion in all patients. However, pre-infusion levels were lower in patients experiencing CRS. CRS correlated with higher CAR+ CD8+ Terminal Effector and MAIT/NKT frequencies in infusion products. While CAR+ composition was not linked to disease burden, prior treatments, or therapy outcomes, changes in monocyte and NK cell dynamics were associated with disease burden, relapse, and CRS. ConclusionsThis study provides a detailed characterization of CAR-T CD19 cell composition and post-infusion dynamics in pediatric BCP-ALL patients treated with tisagenlecleucel. Infusion products were predominantly CAR+ CD4+ T cells with a Central Memory phenotype, including a notable Treg memory subset that declined post-infusion. CAR+ CD8+ subsets expanded, coinciding with immune system shifts. These changes correlated with clinical responses, including CRS, highlighting the role of the immune system in CAR-T therapy outcomes and informing strategies to optimize treatment. Summary boxO_ST_ABSWHAT IS ALREADY KNOWN ON THIS TOPICC_ST_ABSCD19-targeted CAR-T therapy has revolutionized the treatment of relapsed/refractory pediatric BCP-ALL. While studies have examined the diverse composition of CAR-T infusion products in adult large B-cell lymphoma (LBCL), there is limited data in the pediatric BCP-ALL setting. WHAT THIS STUDY ADDSThis study demonstrates that standard-of-care CAR-T infusion products (tisagenlecleucel) are primarily composed of CAR+ CD4+ Central Memory and regulatory T cells, which decline post-infusion as CAR+ CD8+ subsets expand. Additionally, monocyte and NK cell dynamics are closely linked to cytokine release syndrome (CRS) and treatment outcomes, emphasizing the critical role of immune system interactions in CAR-T therapy efficacy. HOW THIS STUDY MIGHT AFFECT RESEARCH, PRACTICE, OR POLICYThese findings indicate that monitoring immune system shifts could enhance CRS risk assessment and improve patient stratification, leading to more personalized CAR-T therapy. Additionally, insights into CAR+ T-cell composition may guide the development of strategies to optimize CAR-T efficacy, potentially improving long-term treatment outcomes in pediatric BCP-ALL.

cancer biology↗