Impairments in SHMT2 expression or cellular folate availability reduce oxidative phosphorylation and pyruvate kinase activity.

Joanna L Fiddler, Jamie E Blum, Katarina E Heyden, Luisa F Castillo, Anna E Thalacker-Mercer, Martha S Field
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Abstract

Background: Serine hydroxymethyltransferase 2 (SHMT2) catalyzes the reversible conversion of tetrahydrofolate (THF) and serine-producing THF-conjugated one-carbon units and glycine in the mitochondria. Biallelic SHMT2 variants were identified in humans and suggested to alter the protein's active site, potentially disrupting enzymatic function. SHMT2 expression has also been shown to decrease with aging in human fibroblasts. Immortalized cell models of total SHMT2 loss or folate deficiency exhibit decreased oxidative capacity and impaired mitochondrial complex I assembly and protein levels, suggesting folate-mediated one-carbon metabolism (FOCM) and the oxidative phosphorylation system are functionally coordinated. This study examined the role of SHMT2 and folate availability in regulating mitochondrial function, energy metabolism, and cellular proliferative capacity in both heterozygous and homozygous cell models of reduced SHMT2 expression. In this study, primary mouse embryonic fibroblasts (MEF) were isolated from a C57Bl/6J dam crossed with a heterozygous Shmt2+/- male to generate Shmt2+/+ (wild-type) or Shmt2+/- (HET) MEF cells. In addition, haploid chronic myeloid leukemia cells (HAP1, wild-type) or HAP1 cells lacking SHMT2 expression (ΔSHMT2) were cultured for 4 doublings in either low-folate or folate-sufficient culture media. Cells were examined for proliferation, total folate levels, mtDNA content, protein levels of pyruvate kinase and PGC1α, pyruvate kinase enzyme activity, mitochondrial membrane potential, and mitochondrial function.

Results: Homozygous loss of SHMT2 in HAP1 cells impaired cellular folate accumulation and altered mitochondrial DNA content, formate production, membrane potential, and basal respiration. Formate rescued proliferation in HAP1, but not ΔSHMT2, cells cultured in low-folate medium. Pyruvate kinase activity and protein levels were impaired in ΔSHMT2 cells and in MEF cells exposed to low-folate medium. Mitochondrial biogenesis protein levels were elevated in Shmt2+/- MEF cells, while mitochondrial mass was increased in both homozygous and heterozygous models of SHMT2 loss.

Conclusions: The results from this study indicate disrupted mitochondrial FOCM impairs mitochondrial folate accumulation and respiration, mitochondrial formate production, glycolytic activity, and cellular proliferation. These changes persist even after a potentially compensatory increase in mitochondrial biogenesis as a result of decreased SHMT2 levels.

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SHMT2表达或细胞叶酸可用性的损伤会降低氧化磷酸化和丙酮酸激酶活性。
背景:丝氨酸羟甲基转移酶2 (SHMT2)在线粒体中催化四氢叶酸(THF)的可逆转化,并产生丝氨酸- THF共轭的一碳单位和甘氨酸。双等位SHMT2变异在人类中被发现,并被认为改变了蛋白质的活性位点,潜在地破坏了酶的功能。在人类成纤维细胞中,SHMT2的表达也随着年龄的增长而下降。SHMT2缺失或叶酸缺乏的永生化细胞模型表现出氧化能力下降、线粒体复合体I组装和蛋白质水平受损,表明叶酸介导的单碳代谢(FOCM)和氧化磷酸化系统在功能上是协调的。本研究在SHMT2表达降低的杂合子和纯合子细胞模型中检测了SHMT2和叶酸有效性在调节线粒体功能、能量代谢和细胞增殖能力中的作用。在这项研究中,我们从C57Bl/6J与一个杂合的Shmt2+/-雄性杂交中分离出小鼠胚胎成纤维细胞(MEF),产生Shmt2+/+(野生型)或Shmt2+/- (HET) MEF细胞。此外,将单倍体慢性髓系白血病细胞(HAP1,野生型)或缺乏SHMT2表达的HAP1细胞(ΔSHMT2)在低叶酸或叶酸充足的培养基中培养4倍。检测细胞增殖、总叶酸水平、mtDNA含量、丙酮酸激酶和PGC1α蛋白水平、丙酮酸激酶酶活性、线粒体膜电位和线粒体功能。结果:HAP1细胞中SHMT2的纯合缺失损害了细胞叶酸积累,改变了线粒体DNA含量、甲酸生成、膜电位和基础呼吸。在低叶酸培养基中培养的HAP1细胞中,甲酸可促进增殖,但ΔSHMT2细胞不能。在ΔSHMT2细胞和暴露于低叶酸培养基的MEF细胞中,丙酮酸激酶活性和蛋白水平受损。在Shmt2+/- MEF细胞中,线粒体生物发生蛋白水平升高,而在Shmt2缺失的纯合子和杂合子模型中,线粒体质量均增加。结论:本研究的结果表明,线粒体FOCM的破坏会损害线粒体叶酸的积累和呼吸,线粒体甲酸的产生,糖酵解活性和细胞增殖。即使在SHMT2水平降低导致线粒体生物发生的潜在代偿性增加之后,这些变化仍然存在。
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