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Bonnal, R.

Publications and source records attributed to Bonnal, R..

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↗

B cell receptor silencing reveals the origin of high-grade B cell lymphomas with MYC and BCL2 rearrangements

The B cell receptor (BCR) is essential for mature B cell lymphomas, serving as therapeutic target. Here, we show that high-grade B cell lymphomas with MYC and BCL2 rearrangements (HGBCL-DH-BCL2) predominantly exhibit immunoglobulin heavy (IGH) chain silencing, leading to BCR shutdown. HGBCL-DH-BCL2 with undetectable IGH (IGHUND) differ from IGH-expressing counterparts for germinal center-zone gene programs, MYC expression and T cell infiltration. While IGH+ HGBCL-DH-BCL2 prefer IGM/IG-Kappa expression, IGHUND counterparts have completed IGH class-switching, favoring IG-Lambda (IGL) light chains. IGHUND HGBCL-DH-BCL2 preserve IGHV gene integrity, overcoming antigen-driven selection. IGH silencing precedes onset and shapes evolution of HGBCL-DH-BCL2 from Follicular Lymphoma (FL) or FL/HGBCL-DH-BCL2 common precursor. In FL/HGBCL-DH-BCL2 pairs and HGBCL-DH-BCL2 models, BCR silencing promoted RAG1/2-dependent IG light chain editing, causing t(8;22)(q24;q11)/IGL::MYC. IGH silencing protected HGBCL-DH-BCL2 models from killing by CD79B-targeting Polatuzumab-Vedotin. Collectively, HGBCL-DH-BCL2 primarily originate from BCR-silenced isotype-switched t(14;18)/IGH::BCL2-positive (pre)FL cells acquiring IGL::MYC translocations during IG light chain revision, with clinical implications. SignificanceThese findings link BCR silencing in isotype-switched t(14;18)+ Follicular Lymphoma cells (or their precursors) to RAG1/2 re-expression, promoting IGL::MYC translocations responsible for transformation into high-grade B cell lymphomas (HGBCL). Predominant silencing of the BCR complex in HGBCL with MYC and BCL2 rearrangements protects tumor cells from CD79B-directed Polatuzumab-Vedotin killing.

cancer biology↗