PIK3R1 mutations in individuals with insulin resistance or growth retardation: Case series and in silico functional analysis.

IF 3.2 3区 医学
Tomofumi Takayoshi, Yushi Hirota, Aki Sugano, Kenji Sugawara, Takehito Takeuchi, Mika Ohta, Kai Yoshimura, Seiji Nishikage, Akane Yamamoto, Yu Mimura, Shinji Higuchi, Jun Mori, Rie Kawakita, Tohru Yorifuji, Yutaka Takaoka, Wataru Ogawa
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Abstract

Aims/introduction: Phosphatidylinositol 3-kinase (PI3K) plays a key role in insulin signaling, and mutations in PIK3R1, which encodes a regulatory subunit (p85α) of this enzyme, are responsible for SHORT syndrome, which is associated with insulin-resistant diabetes. We here describe four Japanese individuals from three families with SHORT syndrome who harbor either a common or a previously unknown mutation in PIK3R1 as well as provide an in silico functional analysis of the mutant proteins.

Materials and methods: Gene sequencing was performed to identify PIK3R1 mutations. 3D structural analysis of wild-type and mutant p85α proteins was performed by homology modeling, and structural optimization and molecular dynamics simulations confirmed stable trajectories. Docking simulations of p85α with a phosphopeptide were also conducted.

Results: We identified two families with a common mutation (c.1945C>T, p.R649W) and one family with a previously unidentified mutation (c.1957A>T, p.K653*) of PIK3R1. In silico modeling revealed that both mutations impaired binding of p85α to phosphopeptide, with K653* resulting in the loss of amino acids that contribute to such binding. Docking simulations showed a significant loss of docking energy for the R649W mutant compared with the wild-type protein (P = 0.00329).

Conclusions: The four cases of SHORT syndrome were associated with early-onset diabetes and intrauterine growth retardation, with the identified mutations likely disrupting the binding of p85α to phosphopeptide and thereby impairing insulin signaling. One case uniquely manifested diabetes without insulin resistance, emphasizing the need for further study of the clinical variability of SHORT syndrome, especially with regard to its associated diabetes.

胰岛素抵抗或生长迟缓个体的PIK3R1突变:病例系列和计算机功能分析
目的/简介:磷脂酰肌醇3-激酶(PI3K)在胰岛素信号传导中起着关键作用,PIK3R1的突变,编码该酶的一个调节亚基(p85α),负责与胰岛素抵抗性糖尿病相关的SHORT综合征。我们在这里描述了来自三个SHORT综合征家族的四名日本人,他们携带PIK3R1的常见突变或以前未知的突变,并提供了突变蛋白的计算机功能分析。材料和方法:采用基因测序方法鉴定PIK3R1突变。通过同源性建模对野生型和突变型p85α蛋白进行了三维结构分析,结构优化和分子动力学模拟证实了稳定的轨迹。p85α与一个磷酸肽的对接模拟也进行了。结果:我们鉴定出两个家族具有PIK3R1的共同突变(c.1945C>T, p.R649W),一个家族具有先前未识别的突变(c.1957A>T, p.r 653*)。硅模型显示,这两种突变都破坏了p85α与磷酸肽的结合,K653*导致有助于这种结合的氨基酸的丢失。对接模拟显示,与野生型蛋白相比,R649W突变体的对接能量损失显著(P = 0.00329)。结论:4例SHORT综合征与早发性糖尿病和宫内生长迟缓有关,所发现的突变可能破坏p85α与磷酸肽的结合,从而损害胰岛素信号传导。1例独特表现为糖尿病,无胰岛素抵抗,强调需要进一步研究SHORT综合征的临床变异性,特别是与糖尿病相关的变异性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Diabetes Investigation
Journal of Diabetes Investigation Medicine-Internal Medicine
自引率
9.40%
发文量
218
期刊介绍: Journal of Diabetes Investigation is your core diabetes journal from Asia; the official journal of the Asian Association for the Study of Diabetes (AASD). The journal publishes original research, country reports, commentaries, reviews, mini-reviews, case reports, letters, as well as editorials and news. Embracing clinical and experimental research in diabetes and related areas, the Journal of Diabetes Investigation includes aspects of prevention, treatment, as well as molecular aspects and pathophysiology. Translational research focused on the exchange of ideas between clinicians and researchers is also welcome. Journal of Diabetes Investigation is indexed by Science Citation Index Expanded (SCIE).
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