DHFR2 RNA directly regulates dihydrofolate reductase and its expression level impacts folate one carbon metabolism

IF 4.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY The FASEB Journal Pub Date : 2025-02-17 DOI:10.1096/fj.202401039RR
Paola Drago, Niamh Bookey, Kit-Yi Leung, Michael Henry, Paula Meleady, Nicholas D. E. Greene, Anne Parle-McDermott
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Abstract

Dihydrofolate reductase activity is required in One Carbon Metabolism to ensure that the biologically active form of folate, tetrahydrofolate, is replenished and available as an enzyme cofactor for numerous cellular reactions, including purine and pyrimidine synthesis. Most cellular enzyme activity was thought to arise from the product of the DHFR gene on chromosome 5, with its paralogue DHFR2 (formerly known as DHFRL1; [chromosome 3]), believed to be responsible for mitochondrial dihydrofolate activity based on recombinant versions of the enzyme. In this paper, we confirm our earlier findings that dihydrofolate reductase activity in mitochondria is derived from the DHFR gene rather than DHFR2 and that endogenous DHFR2 protein is not detectable in most cells and tissues. Using HepG2 cell lines with modulated expression of either DHFR or DHFR2, we observed an impact of DHFR2 RNA on One Carbon Metabolism mediated through an influence on DHFR expression and activity. Knockout of DHFR2 results in a drop in dihydrofolate reductase activity, lowered 10-formyltetrahydrofolate abundance, downregulation of DHFR mRNA, and diminished DHFR protein abundance. We also observed downregulation of Serine Hydroxymethyltransferase and Thymidylate Synthase, two One Carbon Metabolism enzymes that work with DHFR to support de novo thymidylate synthesis. The expression of recombinant DHFR2 resulted in restoration of DHFR mRNA and protein levels while a DHFR knockdown cell line showed upregulation of DHFR2 RNA. We propose that the DHFR2 gene encodes an RNA molecule that regulates cellular dihydrofolate reductase activity through its impact on DHFR mRNA and protein.

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DHFR2 RNA直接调控二氢叶酸还原酶,其表达水平影响叶酸一碳代谢
单碳代谢需要二氢叶酸还原酶的活性,以确保叶酸的生物活性形式四氢叶酸的补充,并可作为许多细胞反应的酶辅因子,包括嘌呤和嘧啶的合成。大多数细胞酶活性被认为是由5号染色体上的DHFR基因及其旁系DHFR2(以前称为DHFRL1;[染色体3]),据信是基于重组酶的线粒体二氢叶酸活性的原因。在本文中,我们证实了我们早期的发现,线粒体中的二氢叶酸还原酶活性来源于DHFR基因而不是DHFR2,并且在大多数细胞和组织中检测不到内源性DHFR2蛋白。通过调节DHFR或DHFR2表达的HepG2细胞系,我们观察了DHFR2 RNA通过影响DHFR表达和活性介导的一碳代谢的影响。敲除DHFR2导致二氢叶酸还原酶活性下降,10-甲酰基四氢叶酸丰度降低,DHFR mRNA下调,DHFR蛋白丰度降低。我们还观察到丝氨酸羟甲基转移酶和胸腺苷酸合成酶的下调,这两种一碳代谢酶与DHFR一起支持胸腺苷酸的新合成。重组DHFR2的表达导致DHFR mRNA和蛋白水平的恢复,而DHFR敲低细胞系则显示DHFR2 RNA的上调。我们提出DHFR2基因编码一种RNA分子,通过影响DHFR mRNA和蛋白来调节细胞二氢叶酸还原酶活性。
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来源期刊
The FASEB Journal
The FASEB Journal 生物-生化与分子生物学
CiteScore
9.20
自引率
2.10%
发文量
6243
审稿时长
3 months
期刊介绍: The FASEB Journal publishes international, transdisciplinary research covering all fields of biology at every level of organization: atomic, molecular, cell, tissue, organ, organismic and population. While the journal strives to include research that cuts across the biological sciences, it also considers submissions that lie within one field, but may have implications for other fields as well. The journal seeks to publish basic and translational research, but also welcomes reports of pre-clinical and early clinical research. In addition to research, review, and hypothesis submissions, The FASEB Journal also seeks perspectives, commentaries, book reviews, and similar content related to the life sciences in its Up Front section.
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