RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
肿瘤细胞治疗研究
英文原题:Programmed Cell Death in Urological Cancers: Orchestrating the Immune Microenvironment and Immunotherapy.
Programmed Cell Death in Urological Cancers: Orchestrating the Immune Microenvironment and Immunotherapy.
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程序性细胞死亡调控肿瘤免疫微环境。目前尚缺乏对多种程序性细胞死亡通路如何共同协调泌尿系统免疫景观重塑的全面综合。本综述总结并讨论了多种程序性细胞死亡模式,包括铁死亡、焦亡、自噬、PANoptosis、坏死性凋亡和铜死亡,如何以情境依赖的方式调控免疫逃逸或免疫激活。目前的临床前证据表明,坏死性凋亡、焦亡和铜死亡可能通过促进损伤相关分子模式的释放以及增加功能性 CD8 + T 细胞和树突状细胞的浸润来增强抗肿瘤免疫,从而可能改善对免疫治疗的应答。与此同时,若干程序性细胞死亡通路表现出显著的情境依赖性。在肾细胞癌中,铁死亡表现出功能性矛盾:其诱导可直接消除癌细胞,但由此产生的脂质过氧化可同时损害浸润免疫细胞的存活和代谢适应性。这种双重效应要求采用精确的、细胞类型特异性的策略,以确保铁死亡介导的肿瘤抑制不会削弱抗肿瘤免疫应答。同样,肿瘤细胞中的自噬通过选择性降解主要组织相容性复合体 I 类(MHC-I)并稳定程序性死亡配体 1 来促进免疫逃逸,同时它也改善了NK 细胞的细胞毒性功能和细胞寿命。
因此,未来的药物开发应考虑细胞类型特异性的调控,以应对不同细胞间的这些矛盾效应,并避免非预期的免疫抑制。关于PANoptosis的新兴证据将多种程序性细胞死亡通路整合为一个协同框架,可能为研究免疫治疗耐药提供有用的方向。最终,靶向程序性细胞死亡的复杂图景可能为改善癌症治疗和泌尿系统免疫治疗提供策略依据,但仍需要更强的转化证据。
Programmed cell death regulates the tumor immune microenvironment. A comprehensive synthesis of how multiple programmed cell death pathways collectively orchestrate the remodeling of the urological immune landscape is currently lacking. This review summarizes and discusses how diverse programmed cell death modes, including ferroptosis, pyroptosis, autophagy, PANoptosis, necroptosis and cuproptosis, regulate immune evasion or activation in a context-dependent manner. Current preclinical evidence suggests that necroptosis, pyroptosis, and cuproptosis may enhance anti-tumor immunity by facilitating the release of damage-associated molecular patterns and increasing the infiltration of functional CD8 + T cells and dendritic cells, thereby potentially improving responses to immunotherapy. At the same time, several programmed cell death pathways display exhibit pronounced context dependence. In renal cell carcinoma, ferroptosis exhibited a functional contradiction: while its induction directly eliminated cancer cells, the resulting lipid peroxidation could simultaneously impair the survival and metabolic fitness of infiltrating immune cells.
This dualistic effect necessitated precise, cell-type-specific strategies to ensure that ferroptosis-mediated tumor suppression did not undermine the anti-tumor immune response. Similarly, autophagy in tumor cells facilitated immune evasion via the selective degradation of major histocompatibility complex class I (MHC-I) and stabilizing programmed death-ligand 1, while it also improved the cytotoxic function and cellular longevity of natural killer cells.
Consequently, future drug development should consider cell-type-specific modulation to address these contradictory effects across different cells and avoid unintended immunosuppression. Emerging evidence on PANoptosis, which integrates multiple programmed cell death pathways into a synergistic framework, may provide a useful direction for investigating immune therapeutic resistance.
Ultimately, targeting the intricate landscape of programmed cell death may inform strategies for improving cancer treatment and urological immunotherapy, but stronger translational evidence is still needed.
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