工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Hypoxic microenvironment in cancer: role in metabolic reprogramming.
Hypoxic microenvironment in cancer: role in metabolic reprogramming.
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缺氧是实体瘤的一个标志性特征,源于结构和功能异常的血管系统、快速的细胞增殖以及灌注受损,导致肿瘤团块内慢性和周期性氧剥夺。缺氧肿瘤微环境主要通过缺氧诱导因子(HIF-1α和HIF-2α)的稳定化和激活来协调广泛的分子重编程,这些因子调控着支配代谢、血管生成、干性、侵袭和免疫调节的广泛转录网络。在低氧张力下,肿瘤细胞转向有氧糖酵解,增强谷氨酰胺利用,促进脂质合成和储存,抑制线粒体氧化磷酸化,并通过协调调控ROS生成和抗氧化系统来精细调节氧化还原平衡。这些适应性变化不仅在代谢应激下维持增殖和存活,还促进上皮-间充质转化、细胞外基质重塑和转移播散。
除恶性细胞外,缺氧还重编程基质区室——包括癌相关成纤维细胞、内皮细胞、肿瘤相关巨噬细胞和髓源性抑制细胞——从而建立一个代谢协同、促血管生成且深度免疫抑制的微环境。缺氧诱导的酸中毒、乳酸积累和HIF驱动的细胞因子信号进一步损害细胞毒性T细胞和NK细胞活性,促进免疫逃逸以及对放疗、化疗和免疫治疗的抵抗。来自单细胞多组学、空间转录组学、代谢成像以及针对HIF信号、血管生成通路和代谢酶的早期临床试验的新兴证据,已揭示了缺氧驱动恶性肿瘤中可干预的脆弱性。本综述综合了缺氧诱导代谢重编程的机制基础、其在肿瘤进展和治疗耐药中的作用,并讨论了旨在利用缺氧相关代谢依赖性以推进精准肿瘤学的创新策略。
Hypoxia, a defining hallmark of solid tumors, arises from structurally and functionally abnormal vasculature, rapid cellular proliferation, and impaired perfusion, resulting in chronic and cycling oxygen deprivation within the tumor massThe hypoxic tumor microenvironment orchestrates extensive molecular reprogramming primarily through stabilization and activation of hypoxia-inducible factors (HIF-1α and HIF-2α), which regulate broad transcriptional networks governing metabolism, angiogenesis, stemness, invasion, and immune modulation. Under low oxygen tension, tumor cells shift toward aerobic glycolysis, enhance glutamine utilization, promote lipid synthesis and storage, suppress mitochondrial oxidative phosphorylation, and fine-tune redox balance through coordinated regulation of ROS-generating and antioxidant systems. These adaptations not only sustain proliferation and survival under metabolic stress but also facilitate epithelial-mesenchymal transition, extracellular matrix remodeling, and metastatic dissemination.
Beyond malignant cells, hypoxia reprograms stromal compartments-including cancer-associated fibroblasts, endothelial cells, tumor-associated macrophages, and myeloid-derived suppressor cells-thereby establishing a metabolically cooperative, angiogenic, and profoundly immunosuppressive microenvironment. Hypoxia-induced acidosis, lactate accumulation, and HIF-driven cytokine signaling further impair cytotoxic T-cell and NK-cell activity, contributing to immune escape and resistance to radiotherapy, chemotherapy, and immunotherapy.
Emerging evidence from single-cell multi-omics, spatial transcriptomics, metabolic imaging, and early-phase clinical trials targeting HIF signaling, angiogenic pathways, and metabolic enzymes has uncovered actionable vulnerabilities in hypoxia-driven malignancies. This review synthesizes the mechanistic foundations of hypoxia-induced metabolic reprogramming, its role in tumor progression and therapeutic resistance, and discusses innovative strategies aimed at exploiting hypoxia-associated metabolic dependencies to advance precision oncology.
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