基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Hypoxia: syndicating triple negative breast cancer against various therapeutic regimens.
Hypoxia: syndicating triple negative breast cancer against various therapeutic regimens.
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三阴性乳腺癌(TNBC)是最致命的乳腺癌亚型之一,具有高度侵袭性、异质性和缺氧特征。生物学和临床观察均显示,TNBC相关死亡率在全球范围内很高。新近研究明确表明,缺氧调节TNBC中关键代谢、发育和生存通路,包括糖酵解和血管生成。这些通路改变会促进癌症干细胞(CSC)富集和免疫逃逸,进一步导致肿瘤侵袭、迁移和转移。
此外,缺氧还会调节表观遗传可塑性和DNA损伤应答(DDR),推动TNBC存活和进展。缺氧会造成低氧环境,改变肿瘤微环境中的缺氧诱导因子1α(HIF-1α)信号,使肿瘤得以存活并对多种疗法产生耐药。
因此,亟需开发靶向疗法以克服当前TNBC治疗方案的耐药和局限。本综述深入讨论了HIF-1α作为靶点在多种治疗方案中的潜在意义,包括化疗、放疗、免疫治疗、抗血管生成治疗、辅助治疗、光动力疗法、过继性细胞治疗、联合治疗、抗体药物偶联物和癌症疫苗。文章还回顾靶向HIF-1α的内在机制及现存问题,并展望通过靶向缺氧诱导信号克服TNBC耐药的前景和主要替代策略。
Triple-negative breast cancer (TNBC) is one of the deadliest subtypes of breast cancer (BC) for its high aggressiveness, heterogeneity, and hypoxic nature. Based on biological and clinical observations the TNBC related mortality is very high worldwide. Emerging studies have clearly demonstrated that hypoxia regulates the critical metabolic, developmental, and survival pathways in TNBC, which include glycolysis and angiogenesis.
Alterations to these pathways accelerate the cancer stem cells (CSCs) enrichment and immune escape, which further lead to tumor invasion, migration, and metastasis. Beside this, hypoxia also manipulates the epigenetic plasticity and DNA damage response (DDR) to syndicate TNBC survival and its progression. Hypoxia fundamentally creates the low oxygen condition responsible for the alteration in Hypoxia-Inducible Factor-1alpha (HIF-1α) signaling within the tumor microenvironment, allowing tumors to survive and making them resistant to various therapies.
Therefore, there is an urgent need for society to establish target-based therapies that overcome the resistance and limitations of the current treatment plan for TNBC. In this review article, we have thoroughly discussed the plausible significance of HIF-1α as a target in various therapeutic regimens such as chemotherapy, radiotherapy, immunotherapy, anti-angiogenic therapy, adjuvant therapy photodynamic therapy, adoptive cell therapy, combination therapies, antibody drug conjugates and cancer vaccines.
Further, we also reviewed here the intrinsic mechanism and existing issues in targeting HIF-1α while improvising the current therapeutic strategies. This review highlights and discusses the future perspectives and the major alternatives to overcome TNBC resistance by targeting hypoxia-induced signaling.
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