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A Hepatocellular Cancer Patient-Derived Organoid Xenograft Model to Investigate Impact of Liver Regeneration on Tumor Growth
Published on: February 2, 2024
Engineering CAR T Cells for Hepatocellular Carcinoma Recurrence after Liver Transplantation
Lorenz Kocheise1, Gabriel Bacil1, Pavan Bhimalli1
1Gastrointestinal Malignancies Section, Thoracic and GI Malignancies Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA.
Background & Aims:
Liver transplantation improves outcomes in hepatocellular carcinoma (HCC), yet treatment options for patients with tumor recurrence remain limited to tyrosine kinase inhibitors. Glypican-3 (GPC3)-targeted CAR T cells offer a tumor-directed immune-based therapeutic strategy, but their efficacy may be limited by post-transplant immunosuppression. We developed a CAR T cell platform combining CRISPR/Cas9-mediated FKBP1A disruption to confer resistance to FKBP12-dependent immunosuppressive agents, including tacrolimus, everolimus, and sirolimus, with TRAC knockout to eliminate endogenous T cell receptor expression and reduce alloreactivity.
Methods:
Human T cells were edited using Cas9 ribonucleoprotein complexes targeting FKBP1A and TRAC, expanded, and transduced with an anti-GPC3 CAR construct. Cytokine production and cytotoxicity were assessed in vitro. Antitumor activity under tacrolimus treatment was evaluated in a Hep G2 xenograft model, and xenoreactivity was assessed in a graft-versus-host disease model. FKBP1A/TRAC double-knockout T cells were enriched using mTOR inhibitor selection combined with CD3-based MACS depletion. PBMCs from liver transplant recipients were used to evaluate feasibility for clinical translation during the early post-transplant period.
Results:
Tacrolimus suppressed wild-type CAR T cell function but not FKBP1A/TRAC double-knockout CAR T cells, which retained cytokine production, cytotoxicity, and in vivo antitumor activity. Cyclosporine A remained suppressive, enabling its potential use as a pharmacologic control strategy. TRAC disruption reduced xenoreactivity. CD3-based MACS depletion and mTOR inhibition achieved functional double-knockout efficiencies greater than 98%, without compromising cell viability. Functional FKBP1A/TRAC knockout CAR T cells were generated from patient PBMC samples 30 days post-transplant.
Conclusions:
Dual-edited GPC3 CAR T cells resist tacrolimus-based immunosuppression while limiting alloreactivity, supporting their use for recurrent HCC after liver transplantation. Sequential, high-viability selection in a modular cellular engineering framework enables adaptation to alternative tumor targets and next-generation CAR T cell designs.
Insights
Engineered CAR T cells targeting GPC3 resist immunosuppression after liver transplant for hepatocellular carcinoma. This dual-edited approach overcomes tacrolimus effects, offering a new therapy for tumor recurrence.
Area of Science:
- Immunotherapy
- Oncology
- Gene Editing
Background:
- Liver transplantation improves outcomes for hepatocellular carcinoma (HCC), but recurrence is challenging.
- Current treatments for recurrent HCC post-transplant are limited, often to tyrosine kinase inhibitors.
- Glypican-3 (GPC3)-targeted CAR T cells show promise but are hindered by post-transplant immunosuppression.
Purpose of the Study:
- To develop GPC3-targeted CAR T cells resistant to common immunosuppressive drugs used after liver transplantation.
- To enhance the efficacy of CAR T cell therapy for recurrent HCC in the post-transplant setting.
- To reduce alloreactivity of CAR T cells by eliminating endogenous T cell receptor expression.
Main Methods:
- Utilized CRISPR/Cas9 to disrupt FKBP1A (conferring drug resistance) and TRAC (reducing alloreactivity) in human T cells.
- Engineered T cells to express a GPC3-specific CAR (chimeric antigen receptor).
- Assessed in vitro cytokine production and cytotoxicity, and in vivo antitumor activity in a xenograft model under tacrolimus treatment.
Main Results:
- FKBP1A/TRAC double-knockout CAR T cells maintained function and antitumor activity despite tacrolimus exposure.
- Wild-type CAR T cells showed suppressed function in the presence of tacrolimus.
- TRAC disruption reduced xenoreactivity, and efficient enrichment of double-knockout cells was achieved (>98%) without compromising viability.
Conclusions:
- Dual-edited GPC3 CAR T cells demonstrate resistance to tacrolimus-based immunosuppression and reduced alloreactivity.
- This strategy supports the use of GPC3 CAR T cells for treating recurrent HCC after liver transplantation.
- The modular cellular engineering framework allows for adaptation to other targets and next-generation CAR T cell designs.
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