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Magnani, C. F.

Publications and source records attributed to Magnani, C. F..

2 recordsLinked to original sources

Acquisition of an immunosuppressive microenvironment after CAR-T therapy drives T-cell dysfunction and resistance

Chimeric antigen receptor (CAR) T cells targeting CD19 induce durable responses in B-cell acute lymphoblastic leukemia (B-ALL). However, the contribution of the tumor microenvironment to the therapeutic response after CAR-T cell treatment remains incompletely understood. We performed single-cell RNA sequencing and spectral flow cytometry-based analyses of bone marrow-resident immune cells from B-ALL patients before and after CAR T-cell treatment. We observed profound changes in the microenvironment in response to CAR T cell-mediated inflammation, including an increase in myeloid cells. Significant induction of the IFN response, hypoxia, and TGF-{beta}-signaling was associated with expansion of myeloid-derived suppressor cells (MDSCs) and endogenous exhausted CD8+ T cells. PD1 expression in endogenous T cells post-treatment was associated with a lack of durable response in the cohort of patients analyzed. Further, we revealed that HIF1, VEGF, and TGFBR2 are key players in the intercellular communication between CAR T cells and the immune niche, driving widespread T-cell dysfunction. Infusion of anti-CD19 CAR T cells led to increased accumulation of human MDSCs, exacerbation of a hypoxic environment and T-cell exhaustion in HSPC-humanized mice bearing a human tumor. In conclusion, CAR T-cell-mediated myeloid activation is associated with pathways of immune dysregulation that may antagonize the effects of therapy. Key pointsO_LIThe tumor immune context post-treatment affects CAR T-cell fate and endogenous immunity in B-cell acute lymphoblastic leukemia. C_LIO_LIIFN response, hypoxia, and TGF-{beta}-signaling result in endogenous T-cell exhaustion and compromise CAR T-cell efficacy. C_LI

immunology↗

Anti-CD117 CAR T cells incorporating a safety switch eradicate human acute myeloid leukemia and hematopoietic stem cells

Acute Myeloid Leukemia originates from the accumulation of mutations in hematopoietic stem and progenitor cells, leading to the emergence of leukemia-initiating cells, which sustain blast formation. CAR T cells specific for the CD117 antigen can deplete malignant and healthy hematopoietic stem cells. Here we exploit non-viral technology to achieve early termination of CAR T cell activity to prevent incoming graft rejection. Transient expression of an anti-CD117 CAR by mRNA conferred T cells the ability to eliminate CD117+ targets in vitro and in vivo. As an alternative approach, we used a Sleeping Beauty transposon vector for the generation of CAR T cells incorporating an inducible Caspase 9 safety switch. Stable CAR expression was associated with high proportion of T memory stem cells, low levels of exhaustion markers, and potent cellular cytotoxicity. Anti-CD117 CAR T cells mediated depletion of leukemic cells and healthy hematopoietic stem cells in NSG mice reconstituted with human leukemia or CD34+ cord blood cells, respectively, and could be chemically terminated in vivo. The use of a non-viral technology to control CAR T cell pharmacokinetic properties is attractive for a first-in-human study in patients with acute myeloid leukemia prior to hematopoietic stem cell transplantation.

cancer biology↗