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Schuster, S. J.

Publications and source records attributed to Schuster, S. J..

3 recordsLinked to original sources

Harnessing the CD2 axis to broaden and enhance the efficacy of CAR T cell therapies

Patients with T-cell lymphomas and leukemias have overall poor outcomes due to the lack of targeted and effective treatments, particularly in the relapsed and refractory settings. Development of chimeric antigen receptor (CAR) T-cells against T-cell neoplasms is limited by a lack of discriminating T-cell antigens that allow for effective anti-tumor responses while preventing CAR T-cell fratricide. We hypothesized that targeting CD2, a pan-T-cell antigen, using anti-CD2 CAR T-cells engineered without CD2 expression (CART2), would support CAR T-cell manufacturability and preclinical efficacy. Optimized CD2-knockout CART2, generated using CRISPR-Cas9, eradicated primary patient-derived CD2+ hematological neoplasms in vitro and in vivo, secreted effector cytokines, and exhibited adequate proliferative capacity. Nevertheless, CD2 has a key costimulatory function, and its deletion could lead to CAR T-cell dysfunction. Therefore, we tested the role of the CD2:CD58 axis in CAR T-cells, using the anti-CD19 CART models. We demonstrate that CD2 loss attenuates CART19 efficacy by reducing avidity for tumor antigen, co-stimulation, and ultimately in vivo activity. Analogously, we show that tumor CD58 loss reduces CART19 efficacy. To overcome this issue, we developed a novel PD-1:CD2 switch receptor that rescues intracellular CD2 signaling, particularly when PD-L1 is engaged, resulting in improved in vivo outcomes. Collectively, we studied the role of CD2 both as a target for CAR T cell therapy and as a critical costimulatory protein, whose signaling can be rescued using the PD-1:CD2 switch receptor. This receptor can be incorporated into CAR T-cells and provides an effective strategy to overcome CD2-signaling deficiencies.

cancer biology↗

A general approach to reduce off-target radioactivity in vivo via Tetrazine-Knock-Out (TKO)

Monoclonal antibodies have had a remarkable impact on cancer therapy due to their high target specificity. However, their large molecular weight results in slow blood clearance, which can take weeks to clear from circulation. As companion nuclear imaging and diagnostic tools, these characteristics force delayed imaging and the use of isotopes with long half-lives such as 89Zr. For optimal clinical application, it is desirable that radioimmunoconjugates remain in the blood for just enough time to accumulate adequately in target tissues, while non-targeted or circulating radioactivity is ideally rapidly excreted from the body to maximize imaging contrast and minimize radiation dose to healthy tissues. We addressed the current challenges of antibody-based imaging by developing rituximab radioimmunoconjugates that accumulate sufficient activity for tumor imaging within 24 h of administration, while clearing circulating radioactivity via administration of a small molecule clearing agent. Rituximab, an anti-CD20 monoclonal antibody, is used as standard first-line therapy for diffuse large B-cell lymphoma. CD20 is expressed by 95% of B-lymphocytes and their malignant counterparts, making it a therapeutic target for B-cell malignancies. We attached 125I, 68Ga, and 89Zr to rituximab using a "clickable" linker containing trans-cyclooctene and tested the ability of tetrazines to induce the inverse electron demand Diels-Alder reaction (iEDDA) after antibody administration. This "tetrazine-knock-out" (TKO) approach liberates the radioactivity from rituximab in the bloodstream, resulting in its rapid renal excretion which enhances target-to-background ratios, and minimizes off-target radiation exposure. Due to the internalization of the radioimmunoconjugate in CD20+ tumor cells, no substantial clearance was observed from Raji xenografts. We characterized different leaving groups, several cellular models and antibodies with distinct internalizaing properties. The TKO approach opens opportunities to use radiolabeled antibodies for low-abundance or heterogeneously expressed biologic targets and may allow radioimmunotherapy (RIT) for targets traditionally untenable due to dose-limiting toxicities. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=94 SRC="FIGDIR/small/596510v1_ufig1.gif" ALT="Figure 1"> View larger version (27K): org.highwire.dtl.DTLVardef@11bc2f0org.highwire.dtl.DTLVardef@19b4f72org.highwire.dtl.DTLVardef@17cee32org.highwire.dtl.DTLVardef@fa4491_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Alternative splicing of its 5' untranslated region controls CD20 mRNA translation and enables resistance to CD20-directed immunotherapies

Aberrant skipping of coding exons in CD19 and CD22 compromises responses to immunotherapy for B-cell malignancies. Here, we show that the MS4A1 gene encoding human CD20 also produces several mRNA isoforms with distinct 5 untranslated regions (5-UTR). Four variants (V1-4) were detectable by RNA-seq in distinct stages of normal B-cell differentiation and B-lymphoid malignancies, with V1 and V3 being the most abundant by far. During B-cell activation and Epstein-Barr virus infection, redirection of splicing from V1 to V3 coincided with increased CD20 positivity. Similarly, in diffuse large B-cell lymphoma only V3, but not V1, correlated with CD20 protein levels, suggesting that V1 might be translation-deficient. Indeed, the longer V1 isoform was found to contain upstream open reading frames (uORFs) and a stem-loop structure, which cooperatively inhibited polysome recruitment. By modulating CD20 isoforms with splice-switching Morpholino oligomers, we enhanced CD20 expression and anti-CD20 antibody rituximab-mediated cytotoxicity in a panel of B-cell lines. Furthermore, reconstitution of CD20-knockout cells with V3 mRNA led to the recovery of CD20 positivity, while V1-reconstituted cells had undetectable levels of CD20 protein. Surprisingly, in vitro CD20-directed CAR T cells were able to kill both V3- and V1-expressing cells, but the bispecific T cell engager mosunetuzumab was only effective against V3-expressing cells. To determine whether CD20 splicing is involved in immunotherapy resistance, we performed RNA-seq on four post-mosunetuzumab follicular lymphoma relapses and discovered that in two of them downregulation of CD20 was accompanied by the V3-to-V1 shift. Thus, splicing-mediated mechanisms of epitope loss extend to CD20-directed immunotherapies. Key PointsO_LIIn normal & malignant human B cells, CD20 mRNA is alternatively spliced into four 5-UTR isoforms, some of which are translation-deficient. C_LIO_LIThe balance between translation-deficient and -competent isoforms modulates CD20 protein levels & responses to CD20-directed immunotherapies C_LI Explanation of NoveltyWe discovered that in normal and malignant B-cells, CD20 mRNA is alternatively spliced to generate four distinct 5-UTRs, including the longer translation-deficient V1 variant. Cells predominantly expressing V1 were still sensitive to CD20-targeting chimeric antigen receptor T-cells. However, they were resistant to the bispecific anti-CD3/CD20 antibody mosunetuzumab, and the shift to V1 were observed in CD20-negative post-mosunetuzumab relapses of follicular lymphoma.

immunology↗