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AMPK通过对PDHA进行顺序磷酸化来维持三羧酸循环,从而促进肿瘤转移。

AMPK maintains TCA cycle through sequential phosphorylation of PDHA to promote tumor metastasis.

作者信息

Cai Zhen, Peng Danni, Lin Hui-Kuan

机构信息

Department of Cancer Biology, Wake Forest School of Medicine, Winston-Salem, NC 27157, USA.

出版信息

Cell Stress. 2020 Nov 25;4(12):273-277. doi: 10.15698/cst2020.12.238.

Abstract

Cancer represents the leading public health problem throughout the world. Globally, about one out of six deaths is related to cancer, which is largely due to the metastatic lesions. However, there are no effective strategies for targeting cancer metastasis. Identification of the key druggable targets maintaining metastasis is crucial for cancer treatment. In our recent study (Cai et al. (2020), Mol Cell, doi: 10.1016/j.molcel.2020.09.018), we found that activity of AMPK was enriched in metastatic tumors compared to primary tumors. Depletion of AMPK rendered cancer cells more sensitive to metabolic and oxidative stress, leading to the impairment of breast cancer lung metastasis. Activation of AMPK rewired cancer metabolism towards TCA cycle, which protects disseminated cancer cells from both metabolic and oxidative stress-induced cell death, and facilitates cancer metastasis. Further, AMPK critically maintained the activity of pyruvate dehydrogenase complex (PDH), the rate limiting enzyme involved in TCA cycle, thus favoring the pyruvate metabolism towards TCA cycle rather than converting it to lactate. Mechanistically, AMPK was shown to co-localize with PDHA, the catalytic subunit of PDH, in the mitochondrial matrix and directly triggered the phosphorylation of PDHA on Ser295 and Ser314. Hyper-phosphorylation of Ser295 and Ser314 of PDHA promotes lung metastasis through elevating activity of PDH. Of note, PDHA Ser314 phosphorylation abrogated the interaction between PDHA and PDHKs leading to the dephosphorylation on previously reported S293 site, whose phosphorylation serves as a negative signal for PDH activation, while S295 phosphorylation serves as an intrinsic catalytic site required for pyruvate metabolism. Our study presented the first evidence for the pro-metastatic property of the AMPK-PDH axis and advance our current understanding of how PDH is activated under physiological and pathological conditions.

摘要

癌症是全球主要的公共卫生问题。在全球范围内,约六分之一的死亡与癌症有关,这在很大程度上归因于转移性病变。然而,目前尚无针对癌症转移的有效策略。确定维持转移的关键可药物靶点对于癌症治疗至关重要。在我们最近的研究中(Cai等人,(2020年),《分子细胞》,doi:10.1016/j.molcel.2020.09.018),我们发现与原发性肿瘤相比,AMPK的活性在转移性肿瘤中富集。AMPK的缺失使癌细胞对代谢和氧化应激更敏感,导致乳腺癌肺转移受损。AMPK的激活使癌症代谢转向三羧酸循环,这保护了播散的癌细胞免受代谢和氧化应激诱导的细胞死亡,并促进癌症转移。此外,AMPK关键地维持了参与三羧酸循环的限速酶丙酮酸脱氢酶复合体(PDH)的活性,从而有利于丙酮酸代谢向三羧酸循环方向进行,而不是将其转化为乳酸。从机制上讲,AMPK被证明与PDH的催化亚基PDHA在线粒体基质中共定位,并直接触发PDHA在Ser295和Ser314位点的磷酸化。PDHA的Ser295和Ser314位点的过度磷酸化通过提高PDH的活性促进肺转移。值得注意的是,PDHA的Ser314磷酸化消除了PDHA与丙酮酸脱氢酶激酶(PDHKs)之间的相互作用,导致先前报道的S293位点去磷酸化,该位点的磷酸化作为PDH激活的负信号,而S295磷酸化作为丙酮酸代谢所需的内在催化位点。我们的研究首次证明了AMPK-PDH轴的促转移特性,并推进了我们目前对PDH在生理和病理条件下如何被激活的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4075/7713264/70a07056b9b4/ces-04-273-g001.jpg

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