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肿瘤缺氧揭秘:对微环境、检测工具和新兴疗法的深入了解。

Tumor hypoxia unveiled: insights into microenvironment, detection tools and emerging therapies.

机构信息

Center for Translational Research and Molecular Biology of Cancer, Maria Skłodowska-Curie National Research Institute of Oncology, Gliwice Branch, Wybrzeże Armii Krajowej Street 15, 44-102, Gliwice, Poland.

出版信息

Clin Exp Med. 2024 Oct 3;24(1):235. doi: 10.1007/s10238-024-01501-1.

Abstract

Hypoxia is one of the defining characteristics of the tumor microenvironment (TME) in solid cancers. It has a major impact on the growth and spread of malignant cells as well as their resistance to common treatments like radiation and chemotherapy. Here, we explore the complex functions of hypoxia in the TME and investigate its effects on angiogenesis, immunological evasion, and cancer cell metabolism. For prognostic and therapeutic reasons, hypoxia identification is critical, and recent developments in imaging and molecular methods have enhanced our capacity to precisely locate underoxygenated areas inside tumors. Furthermore, targeted therapies that take advantage of hypoxia provide a potential new direction in the treatment of cancer. Therapeutic approaches that specifically target hypoxic conditions in tumors without causing adverse effects are being led by hypoxia-targeted nanocarriers and hypoxia-activated prodrugs (HAPs). This review provides an extensive overview of this dynamic and clinically significant area of oncology research by synthesizing current knowledge about the mechanisms of hypoxia in cancer, highlighting state-of-the-art detection methodologies, and assessing the potential and efficacy of hypoxia-targeted therapies.

摘要

缺氧是实体瘤肿瘤微环境(TME)的一个决定性特征。它对恶性细胞的生长和扩散以及它们对放疗和化疗等常见治疗方法的耐药性有重大影响。在这里,我们探讨了缺氧在 TME 中的复杂功能,并研究了它对血管生成、免疫逃逸和癌细胞代谢的影响。出于预后和治疗的原因,缺氧的识别至关重要,成像和分子方法的最新进展增强了我们在肿瘤内精确定位缺氧区域的能力。此外,利用缺氧的靶向治疗为癌症治疗提供了一个潜在的新方向。通过缺氧靶向纳米载体和缺氧激活前药(HAPs)专门针对肿瘤缺氧条件而不引起不良反应的治疗方法正在引领这一趋势。通过综合当前关于癌症缺氧机制的知识,突出最先进的检测方法,并评估缺氧靶向治疗的潜力和疗效,本文对肿瘤学研究中这一动态且具有临床意义的领域进行了全面概述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76e4/11449960/4eca3f60a9f0/10238_2024_1501_Fig1_HTML.jpg

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