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首页> 外文期刊>The international journal of biochemistry and cell biology >Molecular and in silico analyses validates pathogenicity of homozygous mutations in the NPR2 gene underlying variable phenotypes of Acromesomelic dysplasia , type Maroteaux
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Molecular and in silico analyses validates pathogenicity of homozygous mutations in the NPR2 gene underlying variable phenotypes of Acromesomelic dysplasia , type Maroteaux

机译:分子和硅藻分析验证了acromesomelic发育不良的NPR2基因下的NPR2基因中的纯合突变的致病性,Maroteaux

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摘要

Homozygous and/or heterozygous loss of function mutations in the natriuretic peptide receptor B (NPR2) have been reported in causing acromesomelic dysplasia, type Maroteaux with variable clinical features and idiopathic short stature with nonspecific skeletal deformities. On the other hand, gain of function mutations in the same gene result in overgrowth disorder suggesting that NPR2 and its ligand, natriuretic peptide precursor C (CNP), are the key players of endochondral bone growth. However, the precise mechanism behind phenotypic variability of theNPR2mutations is not fully understood so far.In the present study, three consanguineous families of Pakistani origin (A, B, C) with variable phenotypes of acromesomelic dysplasia, type Maroteaux were evaluated at clinical and molecular levels. Linkage analysis followed by Sanger sequencing of theNPR2gene revealed three homozygous mutations including p.(Leu314?Arg), p.(Arg371*), and p.(Arg1032*) in family A, B and C, respectively. In silico structural and functional analyses substantiated that a novel missense mutation [p.(Leu314?Arg)] in family A allosterically affects binding of NPR2 homodimer to its ligand (CNP) which ultimately results in defective guanylate cyclase activity. A nonsense mutation [p.(Arg371*)] in family B entirely removed the transmembrane domain, protein kinase domain and guanylate cyclase domains of the NPR2 resulting in abolishing its guanylate cyclase activity. Another novel mutation [p.(Arg1032*)], found in family C, deteriorated the guanylate cyclase domain of the protein and probably plundered its guanylate cyclase activity. These results suggest that guanylate cyclase activity is the most critical function of the NPR2 and phenotypic severity of the NPR2 mutations is proportional to the reduction in its guanylate cyclase activity.
机译:据报道,寄生肽受体B(NPR2)中的纯合和/或杂合的功能突变丧失引起acriomesomelic发育不良,术语型术术,具有可变临床特征和具有非特异性骨骼畸形的特发性矮小状态。另一方面,同一基因中的功能突变的增益导致过度生长的疾病,表明NPR2及其配体,Natri尿肽前体C(CNP)是中间骨生长的关键参与者。然而,到目前为止,本研究尚未完全理解表型变异性的精确机制。本研究,在临床和分子中评估了三种临床症状发育不良的Pakistani Origin(A,B,C)的三个近亲家族,在临床和分子中评估了Maroteaux。水平。 Linkage分析随后对THEPR2GENE的Sanger测序揭示了三种纯合突变,包括p。(Leu314?Arg),p。(Arg371 *)和p。(Arg1032 *)分别在家庭A,B和C中。在硅结构和功能分析中证实了一种新的小麦致义突变[p。(Leu314?Arg)]在家庭中,一个重想体地影响NPR2同源过二聚体对其配体(CNP)的结合,最终导致血晶环化酶活性有缺陷。在家庭B中的无意义突变[p。(Arg371 *)]完全取出NPR2的跨膜结构域,蛋白激酶结构域,蛋白激酶结构域和胍基环化酶结构域,导致废除其胍基环化酶活性。在家庭C中发现的另一个新突变[p。(Arg1032 *)]劣化了蛋白质的胍基环酶结构域,并且可能掠夺其胍基环化酶活性。这些结果表明,胍基环化酶活性是NPR2最关键的功能,NPR2突变的表型严重程度与其胍基环化酶活性的降低成比例。

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  • 作者单位

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Division of Life Sciences Division of Applied Life Sciences (BK21 Plus) Plant Molecular Biology;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biotechnology &

    Genetic Engineering Kohat University of Science &

    Technology (KUST);

    Division of Life Sciences Division of Applied Life Sciences (BK21 Plus) Plant Molecular Biology;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biotechnology Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

    Department of Biochemistry Faculty of Biological Sciences Quaid-i-Azam University Islamabad;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

    AMDM; NPR2guanylate cyclase; Homology model; Molecular dynamics simulation;

    机译:AMDM;NPR2guanylate环酶;同源模型;分子动力学模拟;

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