Cancer Systems Biology Center, The China-Japan Union Hospital, Jilin University, Changchun, China.
School of Artificial Intelligence, Jilin University, Changchun, China.
Cancer Res. 2020 Mar 1;80(5):1143-1155. doi: 10.1158/0008-5472.CAN-19-3392. Epub 2020 Jan 13.
Considerable metabolic reprogramming has been observed in a conserved manner across multiple cancer types, but their true causes remain elusive. We present an analysis of around 50 such reprogrammed metabolisms (RM) including the Warburg effect, nucleotide synthesis, and sialic acid biosynthesis in cancer. Analyses of the biochemical reactions conducted by these RMs, coupled with gene expression data of their catalyzing enzymes, in 7,011 tissues of 14 cancer types, revealed that all RMs produce more H than their original metabolisms. These data strongly support a model that these RMs are induced or selected to neutralize a persistent intracellular alkaline stress due to chronic inflammation and local iron overload. To sustain these RMs for survival, cells must find metabolic exits for the nonproton products of these RMs in a continuous manner, some of which pose major challenges, such as nucleotides and sialic acids, because they are electrically charged. This analysis strongly suggests that continuous cell division and other cancerous behaviors are ways for the affected cells to remove such products in a timely and sustained manner. As supporting evidence, this model can offer simple and natural explanations to a range of long-standing open questions in cancer research including the cause of the Warburg effect. SIGNIFICANCE: Inhibiting acidifying metabolic reprogramming could be a novel strategy for treating cancer.
在多种癌症类型中,观察到代谢重编程以一种保守的方式发生,但它们的确切原因仍难以捉摸。我们对大约 50 种这样的代谢重编程(RM)进行了分析,包括癌症中的瓦伯格效应、核苷酸合成和唾液酸生物合成。对这些 RM 所进行的生化反应的分析,加上对其催化酶的基因表达数据的分析,在 14 种癌症类型的 7011 种组织中进行,揭示了所有 RM 比其原始代谢产物产生更多的 H+。这些数据强烈支持这样一种模型,即这些 RM 是为了中和由于慢性炎症和局部铁过载引起的持续的细胞内碱性应激而被诱导或选择的。为了维持这些 RM 的生存,细胞必须以连续的方式为这些 RM 的非质子产物找到代谢出口,其中一些产物由于带电荷而构成重大挑战,例如核苷酸和唾液酸。这种分析强烈表明,持续的细胞分裂和其他癌症行为是受影响细胞以及时和持续的方式去除这些产物的方式。作为支持证据,该模型可以为癌症研究中一系列长期存在的悬而未决的问题提供简单而自然的解释,包括瓦伯格效应的原因。
抑制酸化代谢重编程可能是治疗癌症的一种新策略。