CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Oxidative complexity: The role of ROS in the tumor environment and therapeutic implications.
Oxidative complexity: The role of ROS in the tumor environment and therapeutic implications.
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活性氧(ROS)是一组在生物过程中发挥关键作用的活性分子。在癌细胞和肿瘤微环境(TME)中经常观察到ROS水平的改变。ROS在癌症发展和治疗中的作用表现出显著的复杂性。升高的ROS水平可以诱导代谢重编程,促进癌细胞的增殖、侵袭和转移,导致癌症进展。
然而,过度的ROS积累会导致癌细胞发生凋亡、焦亡、坏死性凋亡和铁死亡,从而抑制肿瘤发展。在TME中,ROS通常通过增强癌症相关成纤维细胞(CAFs)的分化来促进血管生成和重塑细胞外基质(ECM),从而支持肿瘤生长。
同时,高ROS水平有利于免疫抑制细胞,包括M2极化巨噬细胞和调节性T细胞(Tregs),同时损害T细胞的抗肿瘤能力。在癌症治疗方面,仅将放化疗与抗氧化剂联合作为治疗策略过于简单化。相反,鉴于ROS固有的复杂性,强调调节ROS的靶向治疗至关重要。幸运的是,多种创新疗法已经出现,包括纳米药物递送系统(NDDS)、蛋白水解靶向嵌合体(PROTAC)和过继细胞疗法(ADT),它们不仅与免疫检查点治疗(ICT)表现出协同效应,还增强了TME的抗肿瘤能力。在本文中,我们阐明了ROS产生的机制,列举了ROS在癌症发展和TME中的作用,并讨论了ROS靶向癌症治疗学的进展。
Reactive oxygen species (ROS) constitutes a group of reactive molecules that play a critical role in biological processes. Varying ROS levels have been frequently observed in cancer cells and the tumor microenvironment (TME). The role of ROS displays significant complexity in cancer development and therapy. Elevated ROS levels can induce metabolic reprogramming and promote the proliferation, invasion, and metastasis of cancer cells, resulting in cancer progression.
However, excessive ROS accumulation leads to the occurrence of apoptosis, pyroptosis, necroptosis, and ferroptosis in cancer cells, which restrains tumor development. In the TME, ROS frequently promotes angiogenesis and remodels the extracellular matrix (ECM) by enhancing the differentiation of cancer-associated fibroblasts (CAFs), thereby supporting tumor growth. Concurrently, high ROS levels favour immunosuppressive cells, including M2-polarized macrophages, and regulatory T cells (Tregs), while impairing the antitumor capabilities of T cells. In the aspect of cancer therapy, it is overly simplistic to merely combine chemoradiotherapy with antioxidants as a therapeutic strategy.
Instead, highlighting targeted therapies that modulate ROS is essential, given their inherent complexity. Fortunately, a variety of innovative treatments have emerged, including nanodrug delivery systems (NDDS), proteolysis-targeting chimeras (PROTAC), and adoptive cell therapy (ADT), which not only exhibit synergistic effects with immune checkpoint therapy (ICT), but also enhance the antitumor capabilities of the TME.
In this paper, we elucidate the mechanism of ROS production, enumerate the role of ROS in cancer development and the TME, and discuss advancements in ROS-targeted cancer therapeutics.
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