英文原题:Modulation of ferroptosis bridges radiotherapy and immunotherapy to improve cancer treatment outcomes.
程序性细胞死亡逃逸促进恶性进展,并削弱多种肿瘤的治疗效果。
程序性细胞死亡逃逸推动恶性肿瘤进展并削弱多种肿瘤的治疗效果。铁死亡是一种铁驱动的膜脂质氧化,最终导致膜完整性灾难性丧失,已成为一种代谢上独特的易损性,可通过放疗和免疫治疗联合加以治疗性利用。电离辐射压垮肿瘤微环境内细胞的抗氧化缓冲能力,使氧化还原平衡转向过氧化膜损伤,并绕过治疗难治性肿瘤中活跃的耐药机制。铁死亡细胞尸体释放警报素和脂质过氧化产物,触发免疫原性细胞死亡,从而重塑免疫监视,招募抗原呈递细胞,并降低免疫检查点抑制剂和过继性细胞疗法的激活障碍。与此同时,放疗触发的肿瘤微环境代谢重编程以谷氨酰胺依赖、脂质过氧化积累和胱氨酸限制为标志,与免疫调节效应协同增强抗肿瘤免疫。本综述解构调控铁死亡易损性的酶级联和代谢检查点,描绘辐射诱导的代谢重编程如何将细胞毒性和免疫刺激性治疗目标联系起来。我们探讨铁死亡是否作为连接放疗和免疫治疗的中心节点,评估利用这一双重功能的放射免疫联合策略的临床前数据。转化障碍依然存在。治疗窗受限、缺乏经过验证的药效学标志物以及正常组织中不明确的毒理学后果,需要在临床应用前进行仔细评估。我们勾勒出一个概念框架,将铁死亡作为放疗与免疫治疗之间的机制桥梁,提出在肿瘤特异性代谢条件下靶向诱导铁死亡,可能重塑多模式治疗策略,并提升癌症治疗结局,超越单药方案所能实现的边际获益。
Programmed cell death evasion fuels malignant progression and undermines therapeutic efficacy across diverse neoplasms. Ferroptosis, an iron-driven membrane lipid oxidation that culminates in catastrophic membrane integrity loss, has emerged as a metabolically distinct liability amenable to therapeutic exploitation through radiotherapy and immunotherapy combinations. Ionising radiation overwhelms cellular antioxidant buffering capacities within the tumour microenvironment, shifting the redox balance toward peroxidative membrane injury and bypassing resistance mechanisms active in treatment refractory tumours. Ferroptotic corpses release alarmins and lipid peroxidation products, triggering immunogenic cell death that reshapes immune surveillance, draws in antigen presenting cells, and reduces activation barriers for immune checkpoint inhibitors and adoptive cellular therapies. At the same time, radiotherapy triggered metabolic reprogramming of the tumour microenvironment marked by glutamine dependence, lipid peroxidation accumulation, and cystine limitation aligns with immunomodulatory effects to strengthen anti-tumour immunity. This Review deconstructs the enzymatic cascades and metabolic checkpoints that govern ferroptotic vulnerability, mapping how radiation induced metabolic rewiring links cytotoxic and immune stimulatory therapeutic goals. We examine whether ferroptosis serves as a central node connecting radiotherapy and immunotherapy, assessing preclinical data on radio immunotherapy combination strategies that leverage this dual functionality. Translational barriers remain. Constrained therapeutic windows, lack of validated pharmacodynamic markers, and unclear toxicological consequences in normal tissues require careful evaluation prior to clinical application. We outline a conceptual framework for deploying ferroptosis as a mechanistic bridge between radiotherapy and immunotherapy, suggesting that its targeted induction under tumour specific metabolic conditions could reshape multimodal treatment strategies and enhance cancer treatment outcomes beyond the marginal gains achievable with single agent approaches.
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