Jul 2026· Human Gene Therapy· pp.
10430342261467645
· 0 citations· 42 references
Medicine
TL;DR
A three-layer mechanistic framework is presented that reframes manufacturing as biology: integration biology determines genomic risk and transgene stability; clonal fitness shapes persistence, dominance, and exhaustion; and epigenomic imprinting preconfigures functional trajectories.
Abstract
Chimeric antigen receptor (CAR) T-cell therapy has transformed hematological cancer care, yet variability in efficacy, durability, and safety cannot be explained solely by antigen selection or patient factors. We propose that manufacturing platforms are active biological determinants of outcome. Viral vectors, used in all licensed products, provide stable genomic integration and durable expression but are limited by cost, cargo capacity, and centralized production. Nonviral strategies, including transposons, CRISPR knock-ins, and messenger RNA delivery, enable faster, less-expensive manufacturing with larger payloads, while introducing distinct safety and persistence profiles. This review presents a three-layer mechanistic framework that reframes manufacturing as biology: integration biology determines genomic risk and transgene stability; clonal fitness shapes persistence, dominance, and exhaustion; and epigenomic imprinting, influenced by gene transfer method, cytokines, and culture stress, preconfigures functional trajectories. Clinical observations link platform choice to immune recovery, where prolonged B-cell aplasia and delayed T-cell reconstitution contribute to infection-related nonrelapse mortality, and hematopoietic reserve at apheresis emerges as a practical predictor. Finally, manufacturing is positioned as the key to democratizing cell therapy. Decentralized, nonviral production aligned with regulatory standards may enable equitable access and transition CAR-T therapy from innovation to sustainable global care.
The pharmacological imperative for transient CAR expression is delineated, including lipid nanoparticles in combination with mRNA, which avoids risks of insertional mutagenesis and enables titratable, short-lived CAR expression, thereby enhancing safety management and suitability for applications beyond oncology.
Yudian Xiao, Ming-Liang Bai, M. Ang et al.· Advances in Pharmacology· 0 citations
This review highlights key engineering strategies enabling in vivo CAR T-cell generation, summarizes emerging clinical research and development, and discusses future opportunities for expanding in vivo CAR T-cell therapies as scalable immunotherapy platforms.
Janani Gopalakrishnan, B. Rathod, Sachin Puri· International Immunopharmaco...· 0 citations
This review highlights how CAR-based strategies can be adapted across diverse disease settings by redirecting engineered immune responses toward disease-sustaining cellular compartments and position programmable cellular immunotherapy as a broadly adaptable platform for eliminating persistent pathological cells, remodeling diseased tissue environments, and restoring long-term immune homeostasis.
Saurabh Upadhyay, Sungwoo Cho, K. Upmanyu et al.· Signal Transduction and Targ...· 0 citations
The biological mechanisms underlying resistance to CAR-T therapy in solid tumors are examined and emerging combination strategies designed to enhance tumor recognition, trafficking, persistence, and antitumor activity are critically evaluated.
Wei Cheng, Mei-Lan Liu, Yu-Hua Diao et al.· Cancer Biome and Targeted Th...· 0 citations
This review examines the transition from single‐axis engineering to an integrated framework that addresses hurdles in sequence, and delineates how next‐generation CAR‐T cells are designed for precise spatiotemporal activation through logic‐gated and pharmacologically regulatable receptors, while being reinforced by metabolic and epigenetic reprogramming to resist TME‐driven exhaustion.
Chao Yang, Tan Li, Ping He et al.· Cell Proliferation· 0 citations
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