Marsh Nicole M, MacEwen Melissa J S, Chea Jane, Kenerson Heidi L, Kwong Albert A, Locke Timothy M, Miralles Francisco Javier, Sapre Tanmay, Gozali Natasha, Hart Madeleine L, Bammler Theo K, MacDonald James W, Sullivan Lucas B, Atilla-Gokcumen G Ekin, Ong Shao-En, Scott John D, Yeung Raymond S, Sancak Yasemin
Department of Pharmacology, University of Washington, Seattle, WA, United States.
Department of Surgery, University of Washington Medical Center, Seattle, WA, United States.
bioRxiv. 2024 Nov 30:2024.05.27.596106. doi: 10.1101/2024.05.27.596106.
Metabolic adaptations in response to changes in energy supply and demand are essential for survival. The mitochondrial calcium uniporter plays a key role in coordinating metabolic homeostasis by regulating TCA cycle activation, mitochondrial fatty acid oxidation, and cellular calcium signaling. However, a comprehensive analysis of uniporter-regulated mitochondrial pathways has remained unexplored. Here, we investigate metabolic consequences of uniporter loss- and gain-of-function using uniporter knockout cells and the liver cancer fibrolamellar carcinoma (FLC), which we demonstrate to have elevated mitochondrial calcium levels. Our results reveal that branched-chain amino acid (BCAA) catabolism and the urea cycle are uniporter-regulated metabolic pathways. Reduced uniporter function boosts expression of BCAA catabolism genes, and the urea cycle enzyme ornithine transcarbamylase (OTC). In contrast, high uniporter activity in FLC suppresses their expression. This suppression is mediated by reduced expression of the transcription factor KLF15, a master regulator of liver metabolism. Thus, uniporter responsive calcium signaling plays a central role in FLC-associated metabolic changes, including hyperammonemia. Our study identifies an important role for mitochondrial calcium signaling in metabolic adaptation through transcriptional regulation of metabolism and elucidates its importance for BCAA and ammonia metabolism in FLC.
对能量供应和需求变化做出反应的代谢适应对生存至关重要。线粒体钙单向转运体通过调节三羧酸循环激活、线粒体脂肪酸氧化和细胞钙信号传导,在协调代谢稳态中发挥关键作用。然而,对单向转运体调节的线粒体途径的全面分析仍未得到探索。在这里,我们使用单向转运体敲除细胞和肝癌纤维板层癌(FLC)来研究单向转运体功能丧失和功能获得的代谢后果,我们证明FLC的线粒体钙水平升高。我们的结果表明,支链氨基酸(BCAA)分解代谢和尿素循环是单向转运体调节的代谢途径。单向转运体功能降低会促进BCAA分解代谢基因和尿素循环酶鸟氨酸转氨甲酰酶(OTC)的表达。相反,FLC中高单向转运体活性会抑制它们的表达。这种抑制是由肝脏代谢的主要调节因子转录因子KLF15的表达降低介导的。因此,单向转运体响应性钙信号在与FLC相关的代谢变化中起核心作用,包括高氨血症。我们的研究确定了线粒体钙信号在通过代谢转录调节进行代谢适应中的重要作用,并阐明了其对FLC中BCAA和氨代谢的重要性。