Search bioRxiv⌕ Search

Biology subjects

Burroni, B.

Publications and source records attributed to Burroni, B..

2 recordsLinked to original sources

Safety profiling of CAR-T cells using an organotypic human tissue platform

CAR-T-cell-associated on-target off-tumor (OTOT) toxicity represents a major safety concern, as recognition of target antigens on healthy tissues can trigger severe and potentially life-threatening complications. Predicting OTOT toxicity remains a challenge because current preclinical models fail to capture the complexity of native human tissues. Here, we developed a human organotypic tissue platform that enables functional assessment of CAR-T-cell activity in intact human tissues across organ-specific and inflammatory contexts. Using a panel of clinically relevant CAR-T-cell products with known OTOT toxicities, we demonstrate that the platform faithfully recapitulates clinically observed tissue-specific toxicity profiles. CAR-T cells targeting EGFR, HER2, and mesothelin induced inflammatory and cytotoxic responses in healthy human lung tissue, whereas CD19 CAR-T cells remained inactive. We further show that OTOT toxicity cannot be reliably predicted from antigen abundance alone but instead results from the integration of multiple target-dependent determinants, including CAR affinity, inflammatory context, antigen accessibility, and effector-cell dose. The platform also enables quantitative assessment of inflammatory and cytotoxic responses and supports evaluation of pharmacological and CAR design-based strategies to mitigate toxicity. Together, this work establishes the first human organotypic platform for functional modeling of CAR-T-cell-associated OTOT toxicity, providing a clinically relevant framework for preclinical safety evaluation and the rational development of safer engineered cell therapies. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=167 SRC="FIGDIR/small/740527v1_ufig1.gif" ALT="Figure 1"> View larger version (38K): org.highwire.dtl.DTLVardef@12c8addorg.highwire.dtl.DTLVardef@150d392org.highwire.dtl.DTLVardef@17218f7org.highwire.dtl.DTLVardef@1c54078_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

CLONAL LYMPHOCYTE EXPANSIONS AND JAK-STAT PATHWAY MUTATIONS DEFINE A PATHOGENIC CONTINUUM DRIVING RESISTANCE TO GLUTEN-FREE DIET IN CELIAC DISEASE

Background&AimsDespite recent advances, refractory celiac disease (RCD) poses challenging questions. In type 2 RCD (RCD2), the lack of response to the gluten-free diet is attributed to an intestinal intraepithelial lymphoma carrying driver JAK1 or STAT3 mutations. However, it remains unclear whether these can be safely targeted for therapy. In RCD1, pathogenic insights are still lacking. MethodsDuodenal biopsies and peripheral blood mononuclear cells (PBMCs) from patients with RCD1, RCD2, active CeD, CeD in remission, and controls were analyzed. Lymphocyte populations were characterized using single-cell transcriptomic, genomic, and TCR repertoire profiling. Functional and exome sequencing analyses were performed on patient-derived RCD2 cell lines exposed to JAK inhibitors. ResultsWe show that clonal malignant RCD2 lymphocytes exhibit interpatient similarities but substantial intratumoral heterogeneity, and provide in vitro evidence that JAK inhibitors can select drug-resistant tumor cells, arguing against their use as monotherapy. In RCD1, we identified clonal T-cell expansions harboring mutations that enhance the JAK-STAT pathway. The detection of both RCD2 and a CD4 lymphoproliferation in a patient initially diagnosed with RCD1 further illustrates the diversity of lymphoproliferative outcomes in celiac disease. ConclusionsThese findings suggest that RCD subtypes may share underlying mechanisms driven by clonal evolution and JAK-STAT dysregulation. They also highlight the potential limitations of JAK inhibitor monotherapy and the importance of molecularly informed therapeutic strategies. What You Need to KnowO_ST_ABSBACKGROUND AND CONTEXTC_ST_ABSRefractory celiac disease (RCD) can lead to intestinal lymphoma, but the biological processes driving immune cell transformation and therapy resistance remain incompletely understood. NEW FINDINGSSingle-cell analyses reveal clonal evolution, JAK-STAT pathway dysregulation, and shared molecular features between RCD subtypes, with implications for disease progression and treatment response. LIMITATIONSSample size and reliance on ex vivo models limit generalizability; further in vivo validation of resistance mechanisms is needed to confirm therapeutic implications. CLINICAL RESEARCH RELEVANCEThese findings suggest that RCD subtypes may share underlying mechanisms driven by clonal evolution and JAK-STAT dysregulation. They also highlight the potential limitations of JAK inhibitor monotherapy and the importance of molecularly informed therapeutic strategies. BASIC RESEARCH RELEVANCEThis work uncovers mechanisms of immune cell transformation in chronic intestinal inflammation and provides insight into how tumor heterogeneity and somatic mutations drive disease progression and therapeutic resistance. Lay summaryThis study reveals shared mechanisms in refractory celiac disease subtypes driven by clonal evolution and JAK-STAT activation, highlighting limits of JAK inhibitor monotherapy and the need for personalized treatments.

cancer biology↗