CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Cancer Stem Cells Decide the Fate of Cancer Immunotherapy by Remodeling Tumor Microenvironment.
Cancer Stem Cells Decide the Fate of Cancer Immunotherapy by Remodeling Tumor Microenvironment.
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癌症免疫治疗(CIT)的成功受到肿瘤微环境(TME)的复杂影响,TME是一个包含免疫细胞、基质成分和细胞外成分的复杂生态系统。尽管免疫检查点抑制剂(ICIs)、过继细胞疗法、癌症疫苗及其他免疫治疗干预措施取得了临床突破,但许多患者仍无法应答并最终死亡。新出现的证据表明,癌症干细胞(CSCs)是免疫逃逸、治疗耐药和肿瘤复发的重要驱动因素。CSCs通过分泌免疫抑制因子、招募调节性免疫细胞以及诱导抗肿瘤TME亚群的表型转换来调节TME,从而创建一个阻碍免疫监视的保护性龛。反之,TME通过缺氧、代谢改变和免疫抑制性细胞群体来保护CSCs。这种双向交互作用支持肿瘤进展,并主要通过以下方式赋予对免疫治疗策略的耐药性:(i) 通过高表达免疫检查点分子逃避免疫识别并抑制活性T细胞,(ii) 创建免疫抑制性促肿瘤环境,以及 (iii) 逃避免疫介导的CSCs凋亡,同时治疗诱导其池的富集。
因此,通过CSC靶向药物、代谢调节剂或联合免疫疗法来靶向CSCs并同时重编程TME,为克服免疫治疗耐药和实现持久临床应答提供了有前景的途径。本综述讨论了在设计对多种肿瘤类型具有更广泛疗效的下一代免疫疗法的背景下,对CSC-TME相互作用的更深层机制理解。
Success of cancer immunotherapy (CIT) is intricately influenced by the tumor microenvironment (TME), a complex ecosystem that encompasses immune cells, stromal elements, and extracellular components. Despite the clinical breakthroughs of immune-checkpoint inhibitors (ICIs), adoptive cell therapies, cancer vaccines, and other immunotherapeutic interventions, many patients fail to respond and eventually die. Emerging evidence points to cancer stem cells (CSCs) as critical drivers of immune evasion, therapy-resistance, and tumor relapse. CSCs modulate the TME by secreting immune-suppressive factors, recruiting regulatory immune cells, and inducing phenotype-switching of anti-tumor TME subsets, thereby creating a protective niche that hinders immune surveillance. Conversely, the TME protects CSCs through hypoxia, altered metabolism, and immuno-suppressive cell populations.
This bi-directional crosstalk supports tumor progression and provides resistance to immunotherapeutic strategies mainly by: (i) escaping immune-recognition and inhibiting active T cells via high immune-checkpoint molecule expression, (ii) creating immunosuppressive pro-tumor environment, and (iii) evading immune-mediated apoptosis of CSCs along with therapy-induced enrichment of their pool.
Targeting CSCs in concert with reprogramming the TME via CSC-directed agents, metabolic modulators, or combinatorial immunotherapies, therefore, offers a promising avenue to overcome immunotherapy-resistance and achieve durable clinical responses. This review discusses the deeper mechanistic understanding of CSC-TME interactions, in light of designing next-generation immunotherapies with broader efficacy across diverse tumor types.
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