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Maciocia, P.

Publications and source records attributed to Maciocia, P..

2 recordsLinked to original sources

Endothelin receptor blockade potentiates adoptive T cell and CAR T cell therapies

Adoptive T cell therapies have transformed the treatment of selected haematological malignancies but remain limited in many cancer settings by biological barriers that restrict effective and durable antitumour responses. Here, we investigated whether pharmacological blockade of the endothelin receptor pathway, which regulates vascular, stromal and immune processes relevant to antitumour responses, could enhance T cell-based cellular immunotherapy. Using orthotopic 4T1 triple-negative breast cancer and A20 B cell lymphoma models, we evaluated endothelin receptor blockade with non-engineered adoptive T cell therapy and anti-CD19 CAR T cell therapy, respectively, with or without immune checkpoint inhibition. Endothelin receptor blockade substantially increased objective responses across both therapeutic platforms, while the addition of immune checkpoint inhibition further increased response frequency and promoted maintained complete responses, resulting in the most durable tumour control. Mice achieving maintained complete responses resisted tumour rechallenge, consistent with long-term antitumour immune protection. High-dimensional T cell profiling identified distinct intratumoral T cell states associated with tumour control and elevated CD2 expression as a recurring feature across these populations. Together, these findings identify endothelin receptor blockade as a rational combinatorial strategy for enhancing T cell-based cellular immunotherapy and provide a strong rationale for the clinical evaluation of this therapeutic strategy.

immunology↗

Autoantibody origins in lupus and in relapse post CAR-T therapy

Anti-CD19 chimeric antigen receptor (CAR)-T therapy induces profound remissions in lupus by depleting B cells, challenging the longstanding view that treatment-resistant disease is sustained by long-lived plasma cells. Additionally, emerging relapses highlight the need to understand how pathogenic autoantibodies arise. Using molecular antibody tagging in mice with human monogenic lupus variants, we reveal that autoantibody-producing cell cohorts are long-lived but plasma cells are short-lived, requiring continuous replenishment from proliferating precursors. The spleen acts as a major plasma cell reservoir, with perivascular localization conserved in mice and lupus patients. Relapse after anti-CD19 CAR-T occurred through newly-generated B cells rather than treatment-resistant clones. Plasma cell depletion by anti-BCMA CAR-T failed to eliminate some precursors that become autoantibody-secreting. These findings demonstrate that continuous B cell-to-plasma cell differentiation, not intrinsic plasma cell longevity, sustains pathogenic antibody responses in lupus, supporting a potential benefit of adjunctive therapies after CAR-T, particularly in genetically predisposed patients.

immunology↗