评估糖尿病患者 APPL1 基因突变的致病性和功能特征

Ping Shi, Yang Tian, Feng Xu, Lu-Na Liu, Wanhong Wu, Ying-Zhou Shi, An-Qi Dai, Hang-Yu Fang, Kun-Xia Li, Chao Xu
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Given the limited understanding of MODY14, it is imperative to identify additional cases and carry out comprehensive research on MODY14 and APPL1 mutations.\n AIM\n To assess the pathogenicity of APPL1 gene mutations in diabetic patients and to characterize the functional role of the APPL1 domain.\n METHODS\n Patients exhibiting clinical signs and a medical history suggestive of MODY were screened for the study. Whole exome sequencing was performed on the patients as well as their family members. The pathogenicity of the identified APPL1 variants was predicted on the basis of bioinformatics analysis. In addition, the pathogenicity of the novel APPL1 variant was preliminarily evaluated through in vitro functional experiments. Finally, the impact of these variants on APPL1 protein expression and the insulin pathway were assessed, and the potential mechanism underlying the interaction between the APPL1 protein and the insulin receptor was further explored.\n RESULTS\n A total of five novel mutations were identified, including four missense mutations (Asp632Tyr, Arg633His, Arg532Gln, and Ile642Met) and one intronic mutation (1153-16A>T). Pathogenicity prediction analysis revealed that the Arg532Gln was pathogenic across all predictions. The Asp632Tyr and Arg633His variants also had pathogenicity based on MutationTaster. In addition, multiple alignment of amino acid sequences showed that the Arg532Gln, Asp632Tyr, and Arg633His variants were conserved across different species. Moreover, in in vitro functional experiments, both the c.1894G>T (at Asp632Tyr) and c.1595G>A (at Arg532Gln) mutations were found to downregulate the expression of APPL1 on both protein and mRNA levels, indicating their pathogenic nature. 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引用次数: 0

摘要

背景 适应蛋白、磷酸酪氨酸与 PH 结构域和亮氨酸拉链 1(APPL1)在调节胰岛素信号传导和葡萄糖代谢中发挥着重要作用。APPL1 基因突变与 14 型成熟期发病糖尿病(MODY14)的发病有关。目前,仅发现两个基因突变[c.1655T>A (p.Leu552*) 和 c.281G>A p.(Asp94Asn)] 与该病有关。鉴于对 MODY14 的了解还很有限,当务之急是确定更多病例,并对 MODY14 和 APPL1 基因突变进行全面研究。目的 评估糖尿病患者中 APPL1 基因突变的致病性,并确定 APPL1 结构域的功能作用。方法 筛选出临床症状和病史提示为 MODY 的患者进行研究。对患者及其家庭成员进行了全外显子组测序。根据生物信息学分析预测了已确定的 APPL1 变异的致病性。此外,还通过体外功能实验初步评估了新型 APPL1 变异的致病性。最后,评估了这些变异对 APPL1 蛋白表达和胰岛素通路的影响,并进一步探讨了 APPL1 蛋白与胰岛素受体相互作用的潜在机制。结果 共鉴定出五个新型突变,包括四个错义突变(Asp632Tyr、Arg633His、Arg532Gln 和 Ile642Met)和一个内含子突变(1153-16A>T)。致病性预测分析表明,Arg532Gln 在所有预测中都具有致病性。根据 MutationTaster,Asp632Tyr 和 Arg633His 变体也具有致病性。此外,氨基酸序列的多重比对结果表明,Arg532Gln、Asp632Tyr 和 Arg633His 变体在不同物种中是保守的。此外,在体外功能实验中发现,c.1894G>T(Asp632Tyr位点)和c.1595G>A(Arg532Gln位点)突变均会在蛋白和mRNA水平上下调APPL1的表达,表明其具有致病性。因此,根据患者的临床和家族病史,结合生物信息学分析和功能实验结果,c.1894G>T(Asp632Tyr 处)和 c.1595G>A(Arg532Gln 处)突变被归类为致病突变。重要的是,所有这些突变都位于 APPL1 的磷酸酪氨酸结合域,而磷酸酪氨酸结合域在胰岛素增敏效应中起着关键作用。结论 这项研究为了解 APPL1 基因突变在糖尿病中的致病性提供了新的视角,并揭示了糖尿病诊断和治疗的潜在靶点。
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Assessment of pathogenicity and functional characterization of APPL1 gene mutations in diabetic patients
BACKGROUND Adaptor protein, phosphotyrosine interacting with PH domain and leucine zipper 1 (APPL1) plays a crucial role in regulating insulin signaling and glucose metabolism. Mutations in the APPL1 gene have been associated with the development of maturity-onset diabetes of the young type 14 (MODY14). Currently, only two mutations [c.1655T>A (p.Leu552*) and c.281G>A p.(Asp94Asn)] have been identified in association with this disease. Given the limited understanding of MODY14, it is imperative to identify additional cases and carry out comprehensive research on MODY14 and APPL1 mutations. AIM To assess the pathogenicity of APPL1 gene mutations in diabetic patients and to characterize the functional role of the APPL1 domain. METHODS Patients exhibiting clinical signs and a medical history suggestive of MODY were screened for the study. Whole exome sequencing was performed on the patients as well as their family members. The pathogenicity of the identified APPL1 variants was predicted on the basis of bioinformatics analysis. In addition, the pathogenicity of the novel APPL1 variant was preliminarily evaluated through in vitro functional experiments. Finally, the impact of these variants on APPL1 protein expression and the insulin pathway were assessed, and the potential mechanism underlying the interaction between the APPL1 protein and the insulin receptor was further explored. RESULTS A total of five novel mutations were identified, including four missense mutations (Asp632Tyr, Arg633His, Arg532Gln, and Ile642Met) and one intronic mutation (1153-16A>T). Pathogenicity prediction analysis revealed that the Arg532Gln was pathogenic across all predictions. The Asp632Tyr and Arg633His variants also had pathogenicity based on MutationTaster. In addition, multiple alignment of amino acid sequences showed that the Arg532Gln, Asp632Tyr, and Arg633His variants were conserved across different species. Moreover, in in vitro functional experiments, both the c.1894G>T (at Asp632Tyr) and c.1595G>A (at Arg532Gln) mutations were found to downregulate the expression of APPL1 on both protein and mRNA levels, indicating their pathogenic nature. Therefore, based on the patient’s clinical and family history, combined with the results from bioinformatics analysis and functional experiment, the c.1894G>T (at Asp632Tyr) and c.1595G>A (at Arg532Gln) mutations were classified as pathogenic mutations. Importantly, all these mutations were located within the phosphotyrosine-binding domain of APPL1, which plays a critical role in the insulin sensitization effect. CONCLUSION This study provided new insights into the pathogenicity of APPL1 gene mutations in diabetes and revealed a potential target for the diagnosis and treatment of the disease.
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