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二乙基亚硝胺诱导的肝细胞癌的生物能量表型分析揭示了腺苷酸激酶同工型表达与复合体I支持的呼吸作用降低之间的联系。

Bioenergetic Phenotyping of DEN-Induced Hepatocellular Carcinoma Reveals a Link Between Adenylate Kinase Isoform Expression and Reduced Complex I-Supported Respiration.

作者信息

McLaughlin Kelsey L, Nelson Margaret A M, Coalson Hannah S, Hagen James T, Montgomery McLane M, Wooten Ashley R, Zeczycki Tonya N, Vohra Nasreen A, Fisher-Wellman Kelsey H

机构信息

Brody School of Medicine, Department of Physiology, East Carolina University, Greenville, NC, United States.

East Carolina Diabetes and Obesity Institute, East Carolina University, Greenville, NC, United States.

出版信息

Front Oncol. 2022 Jun 8;12:919880. doi: 10.3389/fonc.2022.919880. eCollection 2022.

Abstract

Hepatocellular carcinoma (HCC) is the most common form of liver cancer worldwide. Increasing evidence suggests that mitochondria play a central role in malignant metabolic reprogramming in HCC, which may promote disease progression. To comprehensively evaluate the mitochondrial phenotype present in HCC, we applied a recently developed diagnostic workflow that combines high-resolution respirometry, fluorometry, and mitochondrial-targeted nLC-MS/MS proteomics to cell culture (AML12 and Hepa 1-6 cells) and diethylnitrosamine (DEN)-induced mouse models of HCC. Across both model systems, CI-linked respiration was significantly decreased in HCC compared to nontumor, though this did not alter ATP production rates. Interestingly, CI-linked respiration was found to be restored in DEN-induced tumor mitochondria through acute treatment with P1, P5-di(adenosine-5') pentaphosphate (Ap5A), a broad inhibitor of adenylate kinases. Mass spectrometry-based proteomics revealed that DEN-induced tumor mitochondria had increased expression of adenylate kinase isoform 4 (AK4), which may account for this response to Ap5A. Tumor mitochondria also displayed a reduced ability to retain calcium and generate membrane potential across a physiological span of ATP demand states compared to DEN-treated nontumor or saline-treated liver mitochondria. We validated these findings in flash-frozen human primary HCC samples, which similarly displayed a decrease in mitochondrial respiratory capacity that disproportionately affected CI. Our findings support the utility of mitochondrial phenotyping in identifying novel regulatory mechanisms governing cancer bioenergetics.

摘要

肝细胞癌(HCC)是全球最常见的肝癌形式。越来越多的证据表明,线粒体在HCC的恶性代谢重编程中起核心作用,这可能促进疾病进展。为了全面评估HCC中存在的线粒体表型,我们将最近开发的一种诊断流程应用于细胞培养(AML12和Hepa 1-6细胞)以及二乙基亚硝胺(DEN)诱导的HCC小鼠模型,该流程结合了高分辨率呼吸测定法、荧光测定法和线粒体靶向的nLC-MS/MS蛋白质组学。在这两种模型系统中,与非肿瘤组织相比,HCC中与复合体I(CI)相关的呼吸显著降低,不过这并未改变ATP生成速率。有趣的是,通过用腺苷酸激酶的广泛抑制剂P1,P5-二(腺苷-5')五磷酸(Ap5A)进行急性处理,发现DEN诱导的肿瘤线粒体中与CI相关的呼吸得以恢复。基于质谱的蛋白质组学显示,DEN诱导的肿瘤线粒体中腺苷酸激酶同工型4(AK4)的表达增加,这可能解释了对Ap5A的这种反应。与DEN处理的非肿瘤或生理盐水处理的肝脏线粒体相比,肿瘤线粒体在生理范围内的ATP需求状态下保留钙和产生膜电位的能力也有所降低。我们在快速冷冻的人类原发性HCC样本中验证了这些发现,这些样本同样显示线粒体呼吸能力下降,且对CI的影响尤为明显。我们的研究结果支持线粒体表型分析在识别调控癌症生物能量学的新机制方面的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50f6/9213884/cffdf3f7b8be/fonc-12-919880-g001.jpg

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