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在体外模型中,叶酸缺乏对蛋氨酸循环中间体和DNA甲基化的细胞及转化特异性影响阶段。

Cell and stage of transformation-specific effects of folate deficiency on methionine cycle intermediates and DNA methylation in an in vitro model.

作者信息

Stempak Joanne M, Sohn Kyoung-Jin, Chiang En-Pei, Shane Barry, Kim Young-In

机构信息

Department of Nutritional Sciences, University of Toronto, Toronto, Ontario, Canada, M5S 1A8.

出版信息

Carcinogenesis. 2005 May;26(5):981-90. doi: 10.1093/carcin/bgi037. Epub 2005 Feb 3.

Abstract

Folate is an essential co-factor in the remethylation of homocysteine to methionine, thereby ensuring the supply of S-adenosylmethionine, the methyl group donor for most biological methylations, including that of DNA. Aberrant patterns and dysregulation of DNA methylation are consistent events in carcinogenesis and hence, DNA methylation is considered to be mechanistically related to the development of cancer. Folate deficiency appears to increase the risk of several malignancies, and aberrant DNA methylation has been considered to be a leading mechanism by which folate deficiency enhances carcinogenesis. Although diets deficient in methyl group donors (choline, folate, methionine and vitamin B12) have been consistently observed to induce DNA hypomethylation, the effect of an isolated folate deficiency on DNA methylation remains highly controversial and unresolved. Whether or not isolated folate deficiency can modulate DNA methylation is an important issue because it would establish a mechanistic link between folate deficiency and cancer. We examined the effects of isolated folate deficiency on methionine cycle intermediates, genomic and site-specific DNA methylation and DNA methyltransferase in an in vitro model of folate deficiency, using untransformed NIH/3T3 and CHO-K1 cells, and human HCT116 and Caco-2 colon cancer cells. Our data demonstrate that the effect of folate deficiency on the methionine cycle pathway and DNA methylation in these cells is highly complex and appears to depend on the cell type and stage of transformation, and may be gene and site-specific. The direction of changes of methionine cycle intermediates in response to folate deficiency is not uniformly consistent with the known biochemical effect of folate on the methionine cycle pathway. Moreover, the effect of folate deficiency on DNA methylation appears to be mediated by both methionine cycle intermediate-dependent and independent pathways.

摘要

叶酸是同型半胱氨酸再甲基化生成甲硫氨酸过程中必需的辅助因子,从而确保了S-腺苷甲硫氨酸的供应,S-腺苷甲硫氨酸是大多数生物甲基化反应(包括DNA甲基化)的甲基供体。DNA甲基化模式异常和失调是致癌过程中的常见事件,因此,DNA甲基化被认为在机制上与癌症的发生发展相关。叶酸缺乏似乎会增加多种恶性肿瘤的风险,异常的DNA甲基化被认为是叶酸缺乏促进致癌作用的主要机制。尽管一直观察到缺乏甲基供体(胆碱、叶酸、甲硫氨酸和维生素B12)的饮食会诱导DNA低甲基化,但单纯叶酸缺乏对DNA甲基化的影响仍极具争议且尚无定论。单纯叶酸缺乏是否能调节DNA甲基化是一个重要问题,因为这将在叶酸缺乏与癌症之间建立起机制上的联系。我们使用未转化的NIH/3T3和CHO-K1细胞以及人HCT116和Caco-2结肠癌细胞,在叶酸缺乏的体外模型中研究了单纯叶酸缺乏对甲硫氨酸循环中间体、基因组和位点特异性DNA甲基化以及DNA甲基转移酶的影响。我们的数据表明,叶酸缺乏对这些细胞中甲硫氨酸循环途径和DNA甲基化的影响非常复杂,似乎取决于细胞类型和转化阶段,并且可能具有基因和位点特异性。叶酸缺乏时甲硫氨酸循环中间体的变化方向与叶酸对甲硫氨酸循环途径的已知生化作用并不一致。此外,叶酸缺乏对DNA甲基化的影响似乎是由甲硫氨酸循环中间体依赖性和非依赖性途径共同介导的。

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