Tregs play a key role in establishing and maintaining immune tolerance and homeostasis but despite progress, current Treg therapies face challenges of unstable phenotypes, lack of IL-2 support, and tissue specificity.
We present a strategy to address these challenges by harnessing a gene editing platform with dual AAV to engineer human regulatory T cells (EngTreg) from bulk CD4+ T cells resulting in the stable expression of FOXP3 and a chemically inducible cytokine signaling complex providing IL-2 signaling support. Additionally, a novel hypoimmune approach improves allogeneic cell persistence by preventing T, B, and NK cell mediated rejection, making possible an off-the-shelf approach. This modular engineering allows for indication specific, interchangeable tissue specific targeting including TCRs, CARs, or inflammation tuned alarmin receptors.
We present transcriptomic and flow cytometry analyses showing EngTregs express higher levels of core Treg and FOXP3 synergy genes, stability markers and tolerogenic proteins compared to cultured Tregs. EngTregs have been tailored for multiple indications: GNTI-122 targets IGRP for T1D, showing strong bystander suppression and disease prevention in mouse models. CAR19 EngTregs target B-cell driven autoimmune diseases with better safety compared to CAR-T cells. Gut epithelium targeting EngTregs ameliorate disease in murine IBD models. Tissue EngTregs target alarmin mediated inflammation and show efficacy in models of lung injury, AKI, and stroke.
Together, these data support EngTregs as a potent, stable, and versatile cell therapy platform for autoimmune, inflammatory, and ischemic diseases.
NIH-SBIR, venture capital, foundation funding
Translational and Interventional Immunology (TI)
P. Zarin, Gene I. Uenishi, Martina Sassone-Corsi et al.· Journal of Immunology· 0 citations
CD19 CAR T cells have demonstrated promising efficacy in SLE by deeply depleting B cells, but these autologous cell therapies are expensive to deploy, come with significant toxicity risks, and lack the ability to control additional immune cell functions driving autoreactive B cell generation and lupus pathogenesis.
We developed GNTI-350, an allogeneic hypoimmune CD19 CAR—engineered regulatory T cell (CAR19 EngTreg) therapy, which leverages stable FOXP3 expression, a CD19 CAR for selective targeting, and a rapamycin-inducible IL-2 signaling complex to sustain Treg function.
Persistence of GNTI-350 is enabled by Immune Evasion Engineering (IEE), a hypoimmune technology that allows MHC-deficient allogeneic cell therapies to evade host NK cell clearance. Human CAR19 EngTregs expressed canonical Treg markers, suppressed T cell proliferation, blocked B cell differentiation into plasma cells, and depleted CD19+ B cells in humanized mice with minimal inflammatory cytokine release versus conventional CD19 CAR T cells. In the SLE123 mouse model, CAR19 mEngTregs persisted >4 months, lowered autoantibodies, improved kidney pathology, and reduced the levels of T follicular helper (Tfh) and germinal center (GC) B cells - potentially showing a reinforcement of T follicular regulatory (Tfr) cell function.
These data show that GNTI-350 can safely achieve a durable immune reset and may provide superior therapeutic benefit over CAR-T approaches to patients with B cell—driven autoimmune diseases.
Venture capital, NIH
Therapeutic Approaches to Autoimmunity (THER)
P. Zarin, Chris B. Moore, Travis Drow et al.· Journal of Immunology· 0 citations