Search bioRxiv⌕ Search

Biology subjects

Posey, A. D.

Publications and source records attributed to Posey, A. D..

2 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↗

OxLDL-targeted Chimeric Antigen Receptor T Regulatory Cells Reduce Atherosclerotic Plaque Development

Cardiovascular disease caused by atherosclerosis is responsible for 18 million deaths annually, highlighting a significant need for new medical therapies, especially for patients ineligible for surgical interventions. Atherosclerosis is driven by the accumulation of low-density lipoprotein (LDL) and the formation of foam cells, accompanied by oxidative stress and the deposition of oxidized LDL (OxLDL), a pro-inflammatory molecule. Lowering LDL is the mainstay of current medical treatment in addition to blood pressure control and lifestyle changes, but to date, specifically targeting the inflammatory pathways contributing to plaque development without significant systemic side effects has not been feasible. Over the past decade, chimeric antigen receptor (CAR) T cells have treated cancer and restored immune imbalance in autoimmune diseases in patients and resolved cardiac fibrosis in preclinical models. Using an inducible T regulatory cell (Treg) platform, we created an anti-OxLDL-specific CAR Treg therapy that exerts cell- and cytokine-mediated immunosuppression to reduce macrophage-foam cell formation in vitro. Murine anti-OxLDL CAR Tregs inhibited 80% of atherosclerotic plaque formation in immunocompetent mouse models of hyperlipidemia and atherosclerosis. These studies illustrate the potential of anti-OxLDL CAR Tregs to mitigate the inflammation and plaque deposition associated with OxLDL, potentially offering a new therapeutic option for atherosclerosis.

synthetic biology↗