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Evolutionary Analyses and Natural Selection of Betaine-Homocysteine S-Methyltransferase (BHMT) and BHMT2 Genes

机译:甜菜碱-同型半胱氨酸S-甲基转移酶(BHMT)和BHMT2基因的进化分析和自然选择。

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摘要

Betaine-homocysteine S-methyltransferase (BHMT) and BHMT2 convert homocysteine to methionine using betaine and S-methylmethionine, respectively, as methyl donor substrates. Increased levels of homocysteine in blood are associated with cardiovascular disease. Given their role in human health and nutrition, we identified BHMT and BHMT2 genes and proteins from 38 species of deuterostomes including human and non-human primates. We aligned the genes to look for signatures of selection, to infer evolutionary rates and events across lineages, and to identify the evolutionary timing of a gene duplication event that gave rise to two genes, BHMT and BHMT2. We found that BHMT was present in the genomes of the sea urchin, amphibians, reptiles, birds and mammals; BHMT2 was present only across mammals. BHMT and BHMT2 were present in tandem in the genomes of all monotreme, marsupial and placental species examined. Evolutionary rates were accelerated for BHMT2 relative to BHMT. Selective pressure varied across lineages, with the highest dN/dS ratios for BHMT and BHMT2 occurring immediately following the gene duplication event, as determined using GA Branch analysis. Nine codons were found to display signatures suggestive of positive selection; these contribute to the enzymatic or oligomerization domains, suggesting involvement in enzyme function. Gene duplication likely occurred after the divergence of mammals from other vertebrates but prior to the divergence of extant mammalian subclasses, followed by two deletions in BHMT2 that affect oligomerization and methyl donor specificity. The faster evolutionary rate of BHMT2 overall suggests that selective constraints were reduced relative to BHMT. The dN/dS ratios in both BHMT and BHMT2 was highest following the gene duplication, suggesting that purifying selection played a lesser role as the two paralogs diverged in function.
机译:甜菜碱-同型半胱氨酸S-甲基转移酶(BHMT)和BHMT2分别使用甜菜碱和S-甲基甲硫氨酸作为甲基供体底物将高半胱氨酸转化为蛋氨酸。血液中同型半胱氨酸水平的升高与心血管疾病有关。鉴于它们在人类健康和营养中的作用,我们从38种氘化口琴(包括人类和非人类灵长类动物)中鉴定了BHMT和BHMT2基因和蛋白质。我们对基因进行比对,以寻找选择的特征,推断出跨系的进化速率和事件,并鉴定出引起两个基因BHMT和BHMT2的基因复制事件的进化时间。我们发现BHMT存在于海胆,两栖动物,爬行动物,鸟类和哺乳动物的基因组中。 BHMT2仅在哺乳动物中存在。 BHMT和BHMT2串联存在于所有检查的单端,有袋动物和胎盘物种的基因组中。相对于BHMT,BHMT2的进化速度加快。选择性压力跨谱系变化,使用GA Branch分析确定,在基因复制事件发生后,BHMT和BHMT2的dN / dS比率最高。发现有九个密码子显示出暗示阳性选择的特征。这些有助于酶或低聚结构域,表明参与酶功能。基因复制可能发生在哺乳动物与其他脊椎动物分化之后,但在现存的哺乳动物亚类分化之前,随后是BHMT2的两个缺失,这些缺失影响寡聚化和甲基供体特异性。总体而言,BHMT2的进化速度更快,这表明相对于 BHMT ,选择性限制有所降低。基因重复后, BHMT BHMT2 中的 dN / dS 比值最高,表明纯化选择发挥了作用由于两个旁系同源物在功能上有所不同,因此作用较小。

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