CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:CAR-T-Cell-Based Cancer Immunotherapies: Potentials, Limitations, and Future Prospects.
CAR-T-Cell-Based Cancer Immunotherapies: Potentials, Limitations, and Future Prospects.
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癌症涉及细胞和遗传层面的多种因素,因此需要能够有效处理这两个层面的免疫疗法。T 细胞可通过特异性识别癌细胞上的抗原来对抗癌细胞。这种 T 细胞固有能力已用于开发细胞免疫疗法,但其中大多数只能通过主要组织相容性复合体(MHC)靶向抗原。新型基因编辑技术,如成簇规律间隔短回文重复序列相关蛋白 9(CRISPR-Cas9),能够精确编辑 DNA 序列。CRISPR-Cas9 使基因工程改造嵌合抗原受体(CAR)成为可能,可克服传统免疫疗法的相关问题。CAR-T(CAR-T)细胞疗法通过分离患者 T 细胞并进行基因改造,使其表达合成 CAR。CAR-T 治疗多种癌症已显示出极佳的临床结局。
然而,实体瘤 CAR-T 疗效仍受到多种挑战限制。必须解决这些问题,才能使 CAR-T 成为更好且更安全的治疗选择。CAR-T 联合靶向多种抗原的其他免疫疗法已显示积极结果。
此外,近期开发的布尔逻辑门控高级 CAR 加上人工智能,拓展了 CAR-T 治疗实体瘤和血液癌症的潜力。本综述旨在介绍 CAR-T 细胞结构、类型及多种开发方法,详细描述 CAR-T 治疗血液系统恶性肿瘤和实体瘤的临床应用,并讨论相关局限、降低 CAR-T 相关毒性的潜在策略及未来展望。
Cancer encompasses various elements occurring at the cellular and genetic levels, necessitating an immunotherapy capable of efficiently addressing both aspects. T cells can combat cancer cells by specifically recognizing antigens on them. This innate capability of T cells has been used to develop cellular immunotherapies, but most of them can only target antigens through major histocompatibility complexes (MHCs). New gene-editing techniques such as clustered regularly interspaced short palindromic repeat (CRISPR)-associated protein 9 (CRISPR-cas9) can precisely edit the DNA sequences.
CRISPR-cas9 has made it possible to generate genetically engineered chimeric antigen receptors (CARs) that can overcome the problems associated with old immunotherapies. In chimeric antigen receptor T (CAR-T) cell therapy, the patient's T cells are isolated and genetically modified to exhibit synthetic CAR(s).
CAR-T cell treatment has shown remarkably positive clinical outcomes in cancers of various types. Nevertheless, there are various challenges that reduce CAR-T effectiveness in solid tumors. It is required to address these challenges in order to make CAR-T cell therapy a better and safer option. Combining CAR-T treatment with other immunotherapies that target multiple antigens has shown positive outcomes.
Moreover, recently generated Boolean logic-gated advanced CARs along with artificial intelligence has expanded its potential to treat solid tumors in addition to blood cancers. This review aims to describe the structure, types, and various methods used to develop CAR-T cells. The clinical applications of CAR-T cells in hematological malignancies and solid tumours have been described in detail.
In addition, this discussion has addressed the limitations associated with CAR-T cells, explored potential strategies to mitigate CAR-T-related toxicities, and delved into future perspectives.
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