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钠氢交换蛋白 1 在质子动力学失调和癌症代谢重编程中的作用及其后果。

The Role of Sodium Hydrogen Exchanger 1 in Dysregulation of Proton Dynamics and Reprogramming of Cancer Metabolism as a Sequela.

机构信息

Department of Bioscience, Biotechnology, and Biopharmaceutics, University of Bari, 90126 Bari, Italy.

Alfarouk Biomedical Research LLC, Tampa, FL 33617, USA.

出版信息

Int J Mol Sci. 2019 Jul 28;20(15):3694. doi: 10.3390/ijms20153694.

Abstract

Cancer cells have an unusual regulation of hydrogen ion dynamics that are driven by poor vascularity perfusion, regional hypoxia, and increased glycolysis. All these forces synergize/orchestrate together to create extracellular acidity and intracellular alkalinity. Precisely, they lead to extracellular pH (pH) values as low as 6.2 and intracellular pH values as high as 8. This unique pH gradient (∆pH to ∆pH) across the cell membrane increases as the tumor progresses, and is markedly displaced from the electrochemical equilibrium of protons. These unusual pH dynamics influence cancer cell biology, including proliferation, metastasis, and metabolic adaptation. Warburg metabolism with increased glycolysis, even in the presence of Oxygen with the subsequent reduction in Krebs' cycle, is a common feature of most cancers. This metabolic reprogramming confers evolutionary advantages to cancer cells by enhancing their resistance to hypoxia, to chemotherapy or radiotherapy, allowing rapid production of biological building blocks that support cellular proliferation, and shielding against damaging mitochondrial free radicals. In this article, we highlight the interconnected roles of dysregulated pH dynamics in cancer initiation, progression, adaptation, and in determining the programming and re-programming of tumor cell metabolism.

摘要

癌细胞的氢离子动态受到血管生成不良、局部缺氧和糖酵解增加的驱动,其调控方式不同寻常。所有这些力量协同作用,共同导致细胞外酸度和细胞内碱度增加。确切地说,它们导致细胞外 pH(pH)值低至 6.2,细胞内 pH 值高达 8。随着肿瘤的进展,这种独特的跨细胞膜 pH 梯度(∆pH 至 ∆pH)增加,并明显偏离质子的电化学平衡。这种异常的 pH 动力学会影响癌细胞生物学,包括增殖、转移和代谢适应。即使在存在氧气的情况下,糖酵解增加导致克雷布斯循环减少,这是大多数癌症的共同特征。这种代谢重编程通过增强癌细胞对缺氧、化疗或放疗的抵抗力,为癌细胞提供了进化优势,从而快速产生支持细胞增殖的生物构建块,并防止线粒体自由基的损伤。在本文中,我们强调了失调的 pH 动力学在癌症发生、进展、适应以及决定肿瘤细胞代谢的编程和重新编程中的相互关联作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f99/6696090/ae22d4b07813/ijms-20-03694-g001.jpg

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