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甘氨酸裂解系统H蛋白对胚胎存活至关重要,这意味着其功能超出了甘氨酸裂解系统。

Glycine Cleavage System H Protein Is Essential for Embryonic Viability, Implying Additional Function Beyond the Glycine Cleavage System.

作者信息

Leung Kit-Yi, De Castro Sandra C P, Galea Gabriel L, Copp Andrew J, Greene Nicholas D E

机构信息

Great Ormond Street Institute of Child Health, University College London, London, United Kingdom.

出版信息

Front Genet. 2021 Jan 25;12:625120. doi: 10.3389/fgene.2021.625120. eCollection 2021.

Abstract

Glycine cleavage system H protein (GCSH) is a component of the glycine cleavage system (GCS), a conserved protein complex that acts to decarboxylate glycine. Mutation of or , encoding the GCS components aminomethyltransferase and glycine decarboxylase, can cause malformations of the developing CNS (neural tube defects (NTDs) and ventriculomegaly) as well as a post-natal life-limiting neurometabolic disorder, Non-Ketotic Hyperglycinemia. In contrast, it is unclear whether mutation of contributes to these conditions and we therefore investigated GCSH loss of function in mice. Mice that were heterozygous for a null allele were viable and did not exhibit elevated plasma glycine. Moreover, heterozygous mutation of did not increase the frequency of NTDs in mutant embryos. Homozygous null mice were not recovered at post-natal stages. Analysis of litters at E8.5-10.5, revealed the presence of homozygous null embryos which were much smaller than littermates and had failed to develop beyond early post-implantation stages with no visible somites or head-folds. Hence, unlike null mutations of or , which are compatible with embryonic survival despite the presence of NTDs, loss of causes embryonic death prior to mid-gestation. Maternal supplementation with formate did not restore embryonic development beyond E7.5, suggesting that the primary cause of lethality was not loss of glycine cleavage activity or suppression of folate one-carbon metabolism. These findings suggest that GCSH has additional roles beyond function in the glycine cleavage system. We hypothesize that GCSH potentially acts in lipoylation of 2-oxoacid dehydrogenase proteins, as reported in bacteria.

摘要

甘氨酸裂解系统H蛋白(GCSH)是甘氨酸裂解系统(GCS)的一个组成部分,GCS是一种保守的蛋白复合物,作用是使甘氨酸脱羧。编码GCS组分氨基甲基转移酶和甘氨酸脱羧酶的基因发生突变,可导致发育中的中枢神经系统出现畸形(神经管缺陷(NTDs)和脑室扩大)以及一种限制出生后寿命的神经代谢疾病——非酮症高甘氨酸血症。相比之下,GCSH基因突变是否导致这些病症尚不清楚,因此我们研究了小鼠中GCSH功能缺失的情况。GCSH无效等位基因杂合的小鼠能够存活,且血浆甘氨酸水平未升高。此外,GCSH杂合突变并未增加GCS突变胚胎中NTDs的发生频率。纯合GCSH无效小鼠在出生后阶段未存活下来。对E8.5 - 10.5期的窝仔分析显示,存在纯合无效胚胎,这些胚胎比同窝仔小得多,且在植入后早期阶段之后未能发育,没有可见的体节或头褶。因此,与GCS其他组分的无效突变不同,尽管存在NTDs,但这些突变与胚胎存活兼容,而GCSH缺失会导致妊娠中期之前胚胎死亡。母体补充甲酸盐并不能使胚胎发育恢复到E7.5期以后,这表明致死的主要原因不是甘氨酸裂解活性丧失或叶酸一碳代谢受抑制。这些发现表明,GCSH在甘氨酸裂解系统中的功能之外还有其他作用。我们推测,如细菌中所报道的那样,GCSH可能在2 - 氧代酸脱氢酶蛋白的硫辛酰化过程中发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1289/7868403/2ef558a2150f/fgene-12-625120-g001.jpg

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