CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Potential of CAR-Macrophages Derived from Induced Pluripotent Stem Cells (iMacs) for Solid Tumor Therapy.
Potential of CAR-Macrophages Derived from Induced Pluripotent Stem Cells (iMacs) for Solid Tumor Therapy.
分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。
巨噬细胞是一种免疫细胞,在免疫系统中发挥重要功能,包括控制炎症、促进组织愈合以及防御疾病。然而,在实体瘤中,它们常被重编程为肿瘤相关巨噬细胞(TAMs),通过促进血管生长、抑制免疫反应和促进肿瘤扩散来支持肿瘤。来源于血液的巨噬细胞,包括单核细胞和外周血单个核细胞(PBMCs),存在三大局限:不同供者间的不一致性、体外存活时间有限以及基因修饰的技术挑战。
因此,这阻碍了其研究和治疗应用。诱导多能干细胞来源的巨噬细胞(iMacs)通过提供一种可更新、可规模化且具有遗传灵活性同时保持巨噬细胞天然功能的细胞来源,解决了这些问题。这为开发嵌合抗原受体(CAR)修饰的iMacs开辟了可能性,此类细胞将巨噬细胞吞噬和摧毁细胞的能力与精确的肿瘤靶向能力相结合。这些修饰细胞可以重塑肿瘤微环境(TME),触发机体的靶向免疫反应,并增强抗肿瘤活性。来自临床前模型的证据显示了抗原依赖性抗肿瘤活性和免疫激活。初步临床研究表明,在晚期实体瘤患者中具有可接受的安全性特征和肿瘤浸润。本综述探讨了开发这些针对实体瘤的iMacs疗法的最新进展及其潜力,以及临床应用中需要解决的主要生物学、安全性和生产制造挑战。通过标准化生产方法并与现有抗癌药物联合使用来应对这些挑战,可使iMacs成为实体瘤的可行治疗平台。
Macrophages, a type of immune cell, perform essential functions in the immune system, including controlling inflammation, facilitating tissue healing, and defending the body against disease.
However, in solid tumors, they are often reprogrammed into tumor-associated macrophages (TAMs) that support tumors through promotion of blood vessel growth, suppressing immune responses, and promoting tumor spread. Macrophages derived from blood-based sources, including monocytes and peripheral blood mononuclear cells (PBMCs), suffer from three major limitations: inconsistency across different donors, limited survival outside the body, and technical challenges in genetic modification. Consequently, this hinders their research and therapeutic use. Induced Pluripotent Stem Cell-derived macrophages (iMacs) address these issues by providing a renewable and scalable cell source that is genetically flexible while maintaining the natural functions of macrophages. This has opened the possibility for developing chimeric antigen receptor (CAR)-modified iMacs, which combine the ability of macrophages to engulf and destroy cells with precise tumor targeting capabilities.
These modified cells can reshape the tumor microenvironment (TME), trigger the body’s targeted immune response, and enhance anti-tumor activity. Evidence from preclinical models demonstrate antigen-dependent anti-tumor activity and immune activation. Initial clinical studies indicate acceptable safety profiles and tumor infiltration in patients with advanced solid tumors.
This review explores the recent progress in developing these iMacs therapies against solid tumors and their potential, as well as major biological, safety, and manufacturing challenges to be addressed for clinical use. Addressing these challenges through standardized production methods and combination with existing cancer drugs could establish iMacs as a viable treatment platform for solid tumors.
MEMBER ACCOUNT
登录成功会直接打开下一页。