Dipartimento di Scienze della Salute della Donna, del Bambino e di Sanità Pubblica, Fondazione Policlinico Universitario Agostino Gemelli IRCCS, Rome, Italy.
Dipartimento di Scienze della Vita e Sanità Pubblica, Università Cattolica del Sacro Cuore, Rome, Italy.
Br J Haematol. 2024 Nov;205(5):1985-1994. doi: 10.1111/bjh.19775. Epub 2024 Sep 18.
G6PD deficiency results from mutations in the X-linked G6PD gene. More than 200 variants are associated with enzyme deficiency: each one of them may either cause predisposition to haemolytic anaemia triggered by exogenous agents (class B variants), or may cause a chronic haemolytic disorder (class A variants). Genotype-phenotype correlations are subtle. We report a rare G6PD variant, discovered in a baby presenting with severe jaundice and haemolytic anaemia since birth: the mutation of this class A variant was found to be p.(Arg454Pro). Two variants affecting the same codon were already known: G6PD Union, p.(Arg454Cys), and G6PD Andalus, p.(Arg454His). Both these class B variants and our class A variant exhibit severe G6PD deficiency. By molecular dynamics simulations, we performed a comparative analysis of the three mutants and of the wild-type G6PD. We found that the tetrameric structure of the enzyme is not perturbed in any of the variants; instead, loss of the positively charged Arg residue causes marked variant-specific rearrangement of hydrogen bonds, and it influences interactions with the substrates G6P and NADP. These findings explain severe deficiency of enzyme activity and may account for p.(Arg454Pro) expressing a more severe clinical phenotype.
葡萄糖-6-磷酸脱氢酶(G6PD)缺乏症是由于 X 连锁 G6PD 基因突变引起的。超过 200 种变异与酶缺乏有关:其中每一种都可能导致对外源药物敏感的溶血性贫血(B 类变异),或者可能导致慢性溶血性疾病(A 类变异)。基因型-表型相关性很微妙。我们报告了一个罕见的 G6PD 变异,该变异是在一个出生时就出现严重黄疸和溶血性贫血的婴儿中发现的:这种 A 类变异的突变是 p.(Arg454Pro)。已经发现了两个影响同一密码子的变异:G6PD Union,p.(Arg454Cys),和 G6PD Andalus,p.(Arg454His)。这两种 B 类变异和我们的 A 类变异都表现出严重的 G6PD 缺乏症。通过分子动力学模拟,我们对三种突变体和野生型 G6PD 进行了比较分析。我们发现,酶的四聚体结构在任何一种变异中都没有受到干扰;相反,带正电荷的精氨酸残基的丢失导致氢键发生明显的特定于变异的重排,并影响与底物 G6P 和 NADP 的相互作用。这些发现解释了酶活性的严重缺乏,并可能解释了 p.(Arg454Pro) 表达更严重的临床表型。