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首页> 外文期刊>Frontiers in Cell and Developmental Biology >Cathepsin D Variants Associated With Neurodegenerative Diseases Show Dysregulated Functionality and Modified α-Synuclein Degradation Properties
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Cathepsin D Variants Associated With Neurodegenerative Diseases Show Dysregulated Functionality and Modified α-Synuclein Degradation Properties

机译:与神经变性疾病相关的组织蛋白酶D变体显示出疑难解则和改性α-突触核蛋白降解特性

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摘要

Cathepsin D (CTSD) is a lysosomal protease important for the degradation of various substrates including disease-associated proteins like α-synuclein (a-syn), amyloid precursor protein (APP) and tau, all of which tend to aggregate if not efficiently degraded. Hence, it is not surprising that genetic variants within the CTSD gene have been linked to neurodegenerative diseases, like Parkinson's and Alzheimer's disease (PD, AD) as well as the lysosomal storage disorder neuronal ceroid-lipofuscinosis type-10 (NCL10). Although recent studies have shown the molecular dependence of substrate degradation via CTSD within autophagic pathways, only little is known about the precise role of lysosomal CTSD function in disease development. We here performed biochemical, cellular and structural analyses of eleven disease-causing CTSD point mutations found in genomic sequencing data of patients to understand their role in neurodegeneration. Therefore, CTSD variants were analyzed for cellular localization, maturation and enzymatic activity in overexpression analyses. Moreover, for PD-associated mutants, intracellular degradation of a-syn was monitored. In summary, our results suggest that NCL10-associated CTSD variants are significantly impaired in lysosomal maturation and enzymatic activity, whereas the AD- and PD-associated variants seemed rather unaffected, indicating normal maturation and lysosomal presence. Interestingly, a PD-associated CTSD variant (A239V) exhibited increased enzymatic activity accompanied by enhanced a-syn degradation. By structural analyses of this mutant utilizing molecular dynamics simulation (MDS), we identified a structural change within a loop adjacent to the catalytic center leading to a higher flexibility and potentially accelerated substrate exchange rates. Our data sheds light into the role of CTSD in disease development and helps to understand the structural regulation of enzymatic function, which could be utilized for targeted CTSD activation. Because of the degradative function of CTSD, this enzyme is especially interesting for therapeutic strategies tackling protein aggregates in neurodegenerative disorders.
机译:组织蛋白酶D(CTSD)是一种溶酶体蛋白质,其各种底物的降解重要,包括α-突触核蛋白(A-SYN),淀粉样蛋白前体蛋白(APP)和TAU等疾病相关蛋白质,所有这些蛋白质蛋白质(AP)和TAU都倾向于汇总,如果没有有效地降级。因此,CTSD基因内的遗传变异与神经退行性疾病相连,如帕金森和阿尔茨海默病(Pd,AD)以及溶酶体储存障碍神经元饼干型-10(NCL10),这并不令人惊讶。尽管最近的研究表明,通过CTSD在自噬途径中,底物降解的分子依赖性,但对于溶酶体CTTSD功能在疾病发育中的确切作用仅知之甚少。我们在这里进行了11个疾病的生物化学,细胞和结构分析,导致患者基因组测序数据中发现的患者突变突变,​​以了解它们在神经变性中的作用。因此,在过表达分析中分析CTSD变体进行细胞定位,成熟和酶活性。此外,对于PD相关突变体,监测A-SYN的细胞内降解。总之,我们的结果表明,NCL10相关的CTSD变体在溶酶体成熟和酶活性中显着受损,而AD-和PD相关变体似乎相当不受影响,表明正常成熟和溶酶体存在。有趣的是,PD相关的CTSD变体(A239V)表现出增加的酶活性,伴随着增强的A-SYN降解。通过利用分子动力学模拟(MDS)的这种突变体的结构分析,我们鉴定了与催化中心相邻的环路内的结构变化,导致更高的柔韧性和潜在加速的基底汇率。我们的数据揭示了CTSD在疾病发展中的作用,并有助于了解酶促功能的结构调节,可用于靶向CTSD激活。由于CTSD的降解功能,对于治疗策略在神经变性疾病中解决蛋白质聚集体而特别有趣。

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