In vivo generation of CAR T cells: biology, delivery platforms, clinical promise, and translational challenges

遗传增强 基因传递 离体 体内 计算生物学 嵌合抗原受体 转化研究 风险分析(工程) 免疫系统 病毒载体 载体(分子生物学) 转基因 计算机科学 免疫原性 医学 基因组编辑 生物技术 生物信息学 免疫疗法 转化医学 癌症免疫疗法 合成生物学
作者
Laura Volta,Saar Gill
出处
期刊: 卷期号:2 (1): 100027-100027 被引量:2
标识
DOI:10.1016/j.bict.2025.100027
摘要

The in vivo generation of CAR T-cells represents a potentially transformative advancement in adoptive immunotherapy, offering a promising alternative to conventional ex vivo manufacturing. By delivering CAR transgenes directly into circulating T-cells within the patient’s body, this approach aims to streamline treatment logistics, reduce production costs, and broaden accessibility. A variety of gene delivery platforms are under active investigation, including viral vectors such as lentivirus and adeno-associated virus (AAV), as well as non-viral systems like lipid nanoparticles (LNPs). These technologies are being optimized to enhance the specificity, efficiency, and safety of gene transfer. Several challenges will arise as in vivo CAR T-cell generation is translated to the clinic. These include relatively novel risks such as specificity (risk of off-target genetic modification) and efficiency (low number of genetically modified cells), along with more conventional risks such as redirection of T-cells against undesired targets and long-term depletion of healthy cellular counterparts. Strategies under development to mitigate these concerns include the use of transient expression systems (e.g., mRNA), targeted delivery mechanisms to minimize off-target activity, and the incorporation of immune-evasive features to reduce vector clearance. Additionally, ensuring compatibility with scalable and GMP-compliant manufacturing pipelines is essential for clinical development. Ongoing preclinical research is focused on refining delivery precision, minimizing adverse immune responses, and establishing long-term safety profiles. If these efforts prove successful, in vivo CAR T-cell therapies could overcome many of the current limitations of ex vivo approaches and redefine the landscape of cell-based cancer treatment by offering more accessible treatment options.
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