Feedback loop between hypoxia and energy metabolic reprogramming aggravates the radioresistance of cancer cells.

IF 9.4 1区 医学 Q1 HEMATOLOGY Experimental Hematology & Oncology Pub Date : 2024-05-22 DOI:10.1186/s40164-024-00519-1
Zheng Shi, Cuilan Hu, Xiaogang Zheng, Chao Sun, Qiang Li
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Abstract

Radiotherapy is one of the mainstream approaches for cancer treatment, although the clinical outcomes are limited due to the radioresistance of tumor cells. Hypoxia and metabolic reprogramming are the hallmarks of tumor initiation and progression and are closely linked to radioresistance. Inside a tumor, the rate of angiogenesis lags behind cell proliferation, and the underdevelopment and abnormal functions of blood vessels in some loci result in oxygen deficiency in cancer cells, i.e., hypoxia. This prevents radiation from effectively eliminating the hypoxic cancer cells. Cancer cells switch to glycolysis as the main source of energy, a phenomenon known as the Warburg effect, to sustain their rapid proliferation rates. Therefore, pathways involved in metabolic reprogramming and hypoxia-induced radioresistance are promising intervention targets for cancer treatment. In this review, we discussed the mechanisms and pathways underlying radioresistance due to hypoxia and metabolic reprogramming in detail, including DNA repair, role of cancer stem cells, oxidative stress relief, autophagy regulation, angiogenesis and immune escape. In addition, we proposed the existence of a feedback loop between energy metabolic reprogramming and hypoxia, which is associated with the development and exacerbation of radioresistance in tumors. Simultaneous blockade of this feedback loop and other tumor-specific targets can be an effective approach to overcome radioresistance of cancer cells. This comprehensive overview provides new insights into the mechanisms underlying tumor radiosensitivity and progression.

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缺氧与能量代谢重编程之间的反馈回路加剧了癌细胞的放射抗性。
放疗是治疗癌症的主流方法之一,但由于肿瘤细胞的放射抗性,临床治疗效果有限。缺氧和代谢重编程是肿瘤发生和发展的标志,与放射抗性密切相关。在肿瘤内部,血管生成的速度落后于细胞增殖的速度,某些部位的血管发育不全和功能异常导致癌细胞缺氧,即缺氧。这使得辐射无法有效消除缺氧的癌细胞。癌细胞转而以糖酵解作为主要能量来源,这种现象被称为沃伯格效应,以维持其快速增殖速度。因此,参与代谢重编程和缺氧诱导的放射抗性的途径是治疗癌症的有希望的干预目标。在这篇综述中,我们详细讨论了缺氧和代谢重编程导致放射抗性的机制和途径,包括DNA修复、癌症干细胞的作用、氧化应激缓解、自噬调节、血管生成和免疫逃逸。此外,我们还提出了能量代谢重编程和缺氧之间存在反馈回路,这与肿瘤放射抗性的发展和加剧有关。同时阻断这一反馈回路和其他肿瘤特异性靶点是克服癌细胞放射抗性的有效方法。这篇全面的综述提供了对肿瘤放射敏感性和进展机制的新见解。
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来源期刊
CiteScore
12.60
自引率
7.30%
发文量
97
审稿时长
6 weeks
期刊介绍: Experimental Hematology & Oncology is an open access journal that encompasses all aspects of hematology and oncology with an emphasis on preclinical, basic, patient-oriented and translational research. The journal acts as an international platform for sharing laboratory findings in these areas and makes a deliberate effort to publish clinical trials with 'negative' results and basic science studies with provocative findings. Experimental Hematology & Oncology publishes original work, hypothesis, commentaries and timely reviews. With open access and rapid turnaround time from submission to publication, the journal strives to be a hub for disseminating new knowledge and discussing controversial topics for both basic scientists and busy clinicians in the closely related fields of hematology and oncology.
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