Kaluba Faith C, Rogers Thomas J, Jeong Yu-Jin, Waldhart Althea, Sokol Kelly H, Lee Cameron J, Daniels Samuel R, Longo Joseph, Johnson Amy, Sheldon Ryan D, Jones Russell G, Lien Evan C
Department of Metabolism and Nutritional Programming, Van Andel Institute, 333 Bostwick Ave. NE, Grand Rapids, MI 49503.
Van Andel Institute Graduate School, 333 Bostwick Ave. NE, Grand Rapids, MI 49503.
bioRxiv. 2024 Nov 3:2024.10.31.621317. doi: 10.1101/2024.10.31.621317.
Cancer cells are exposed to diverse metabolites in the tumor microenvironment that are used to support the synthesis of nucleotides, amino acids, and lipids needed for rapid cell proliferation. Recent work has shown that ketone bodies such as β-hydroxybutyrate (β-OHB), which are elevated in circulation under fasting conditions or low glycemic diets, can serve as an alternative fuel that is metabolized in the mitochondria to provide acetyl-CoA for the tricarboxylic acid (TCA) cycle in some tumors. Here, we discover a non-canonical route for β-OHB metabolism, in which β-OHB can bypass the TCA cycle to generate cytosolic acetyl-CoA for fatty acid synthesis in cancer cells. We show that β-OHB-derived acetoacetate in the mitochondria can be shunted into the cytosol, where acetoacetyl-CoA synthetase (AACS) and thiolase convert it into acetyl-CoA for fatty acid synthesis. This alternative metabolic routing of β-OHB allows it to avoid oxidation in the mitochondria and net contribute to anabolic biosynthetic processes. In cancer cells, β-OHB is used for fatty acid synthesis to support cell proliferation under lipid-limited conditions and contributes to tumor growth under lipid-limited conditions induced by a calorie-restricted diet . Together, these data demonstrate that β-OHB is preferentially used for fatty acid synthesis in cancer cells to support tumor growth.
癌细胞暴露于肿瘤微环境中的多种代谢物中,这些代谢物用于支持快速细胞增殖所需的核苷酸、氨基酸和脂质的合成。最近的研究表明,酮体如β-羟基丁酸酯(β-OHB),在禁食条件或低血糖饮食下循环中会升高,可作为一种替代燃料,在线粒体中代谢,为某些肿瘤中的三羧酸(TCA)循环提供乙酰辅酶A。在此,我们发现了一条β-OHB代谢的非经典途径,其中β-OHB可绕过TCA循环,生成胞质乙酰辅酶A用于癌细胞中的脂肪酸合成。我们表明,线粒体中β-OHB衍生的乙酰乙酸可被转运到胞质溶胶中,在那里乙酰乙酰辅酶A合成酶(AACS)和硫解酶将其转化为乙酰辅酶A用于脂肪酸合成。β-OHB的这种替代代谢途径使其能够避免在线粒体中氧化,并对合成代谢生物合成过程有净贡献。在癌细胞中,β-OHB用于脂肪酸合成,以在脂质受限条件下支持细胞增殖,并在热量限制饮食诱导的脂质受限条件下促进肿瘤生长。总之,这些数据表明β-OHB在癌细胞中优先用于脂肪酸合成以支持肿瘤生长。