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首页> 外文期刊>Human Genetics >Structure and function of glucose-6-phosphate dehydrogenase-deficient variants in Chinese population.
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Structure and function of glucose-6-phosphate dehydrogenase-deficient variants in Chinese population.

机译:中国人口中葡萄糖-6-磷酸脱氢酶缺陷变异体的结构和功能。

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摘要

A systematic study on the structure and function of Glucose-6-phosphate dehydrogenase (G6PD) variations was carried out in China. A total of 155,879 participants were screened for G6PD deficiency by the G6PD/6PGD ratio method and 6,683 cases have been found. The prevalence of G6PD deficiency ranged from 0 to 17.4%. With informed consent, 1,004 cases from 11 ethnic-based groups were subjected to molecular analysis. Our results showed the followings: (1) The G6PD variants are consistent across traditional ethnic boundaries, but vary in frequencies across ethnic-based groups in Chinese population, (2) The G6PD variants in Chinese population are different from those in African, European, and Indian populations, (3) A novel G6PD-deficiency mutation, 274C-->T, has been found, and (4) Denaturing high performance liquid chromatography is of great advantage to detecting G6PD-deficient mutations for diagnosis and genetic counseling. Moreover, functional analysis of the human G6PD variants showed the following: (1) The charge property, polarity, pK-radical and side-chain radical of the substituting amino acid have an effect on G6PD activity, (2) The G6PDArg459 and Arg463 play important roles in anchoring NADP+ to the catalytic domain to maintain the enzymatic activity, and (3) The sequence from codon 459 to the carboxyl terminal is essential for the enzymatic function.
机译:在中国对6-磷酸葡萄糖脱氢酶(G6PD)变异的结构和功能进行了系统研究。通过G6PD / 6PGD比值法筛选了155,879名参与者,以寻找G6PD缺乏症,共发现6,683例。 G6PD缺乏症的患病率为0%至17.4%。在知情同意的情况下,对来自11个民族的1,004例病例进行了分子分析。我们的研究结果表明:(1)G6PD变体在传统种族边界上是一致的,但在中国人口中不同族裔群体的频率有所不同;(2)中国人口的G6PD变体与非洲,欧洲,和印度人,(3)已发现新的G6PD缺陷型突变274C-> T,并且(4)变性高效液相色谱法对于检测G6PD缺陷型突变具有很大优势,以进行诊断和遗传咨询。此外,对人G6PD变体的功能分析表明:(1)取代氨基酸的电荷性质,极性,pK自由基和侧链自由基对G6PD活性有影响,(2)G6PDArg459和Arg463发挥作用在将NADP +锚定到催化结构域以维持酶活性方面起着重要的作用,并且(3)从459密码子到羧基末端的序列对于酶功能至关重要。

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