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用于AADC缺乏症的CRISPR-Cas9敲除DDC SH-SY5Y体外模型为R347Q和L353P变体的致病性提供了见解:一项横断面结构和功能分析。

The CRISPR-Cas9 knockout DDC SH-SY5Y in vitro model for AADC deficiency provides insight into the pathogenicity of R347Q and L353P variants: a cross-sectional structural and functional analysis.

作者信息

Carmona-Carmona Cristian Andres, Bisello Giovanni, Franchini Rossella, Lunardi Gianluigi, Galavotti Roberta, Perduca Massimiliano, Ribeiro Rui P, Belviso Benny Danilo, Giorgetti Alejandro, Caliandro Rocco, Lievens Patricia M-J, Bertoldi Mariarita

机构信息

Department of Neurosciences, Biomedicine, and Movement Sciences, University of Verona, Italy.

Clinical Analysis Laboratory and Transfusional Medicine, IRCCS-Sacro Cuore Don Calabria Hospital, Negrar, Italy.

出版信息

FEBS J. 2025 Sep;292(18):4833-4853. doi: 10.1111/febs.70120. Epub 2025 May 3.

DOI:10.1111/febs.70120
PMID:40318155
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12443470/
Abstract

Aromatic amino acid decarboxylase (AADC) deficiency is a severe inherited recessive neurotransmitter disorder caused by an impairment in dopamine synthesis due to the lack/modification of AADC, the enzyme converting l-dopa to dopamine. Patients exhibit severe movement disorders and neurodevelopmental delay, with a high risk of premature mortality. Given the lack of a reliable model for the disease, we developed a dopa decarboxylase knockout model using CRISPR/Cas9 technology in the SH-SY5Y neuroblastoma cell line. This model showed a deficiency in AADC protein and activity, with an altered dopamine metabolites profile (low homovanillic acid and high 3-O-methyldopa) and a modified expression of key enzymes, such as dopamine beta-hydroxylase and monoamine oxidases, which are involved in the catecholamine pathway. We then transfected the DDC-KO cells with two AADC catalytic variants, R347Q and L353P, which resulted in loss-of-function and an altered profile of dopamine metabolites. By combining several structural approaches (X-ray crystallography, molecular dynamics, small angle X-ray scattering, dynamic light scattering, and spectroscopy), we determined that both variants alter the flexibility of the structural element to which they belong, whose integrity is essential for catalysis. This change causes a mispositioning of essential residues at the active site, leading, in turn, to an unproductive external aldimine, identifying the molecular basis for the loss-of-function. Overall, the DDC-KO model recapitulates some key features of AADC deficiency, is useful to study the molecular basis of the disease, and represents an ideal system for small molecule screening regarding specific enzyme defects, paving the way for a precision therapeutic approach.

摘要

芳香族氨基酸脱羧酶(AADC)缺乏症是一种严重的遗传性隐性神经递质疾病,由AADC(将左旋多巴转化为多巴胺的酶)缺乏/修饰导致多巴胺合成受损引起。患者表现出严重的运动障碍和神经发育迟缓,过早死亡风险很高。鉴于缺乏该疾病的可靠模型,我们利用CRISPR/Cas9技术在SH-SY5Y神经母细胞瘤细胞系中构建了多巴脱羧酶敲除模型。该模型显示AADC蛋白和活性缺乏,多巴胺代谢物谱改变(高香草酸含量低,3-O-甲基多巴含量高),并且参与儿茶酚胺途径的关键酶(如多巴胺β-羟化酶和单胺氧化酶)的表达发生改变。然后,我们用两个AADC催化变体R347Q和L353P转染DDC-KO细胞,结果导致功能丧失和多巴胺代谢物谱改变。通过结合几种结构方法(X射线晶体学、分子动力学、小角X射线散射、动态光散射和光谱学),我们确定这两个变体均改变了它们所属结构元件的灵活性,而该结构元件的完整性对于催化作用至关重要。这种变化导致活性位点处必需残基的位置错误,进而导致无效的外部醛亚胺,确定了功能丧失的分子基础。总体而言,DDC-KO模型概括了AADC缺乏症的一些关键特征,有助于研究该疾病的分子基础,并且代表了针对特定酶缺陷进行小分子筛选的理想系统,为精准治疗方法铺平了道路。

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本文引用的文献

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Mild/moderate phenotypes in AADC deficiency: Focus on the aromatic amino acid decarboxylase protein.芳香族氨基酸脱羧酶缺乏症的轻/中度表型:聚焦于芳香族氨基酸脱羧酶蛋白
J Inherit Metab Dis. 2025 Jan;48(1):e12791. doi: 10.1002/jimd.12791. Epub 2024 Aug 21.
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An attenuated, adult case of AADC deficiency demonstrated by protein characterization.通过蛋白质表征证实的1例成人型芳香族氨基酸脱羧酶缺乏症轻症病例。
Mol Genet Metab Rep. 2024 Mar 16;39:101071. doi: 10.1016/j.ymgmr.2024.101071. eCollection 2024 Jun.
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Newborn screening for aromatic l-amino acid decarboxylase deficiency - Strategies, results, and implication for prevalence calculations.
芳香族L-氨基酸脱羧酶缺乏症的新生儿筛查——策略、结果及对患病率计算的影响
Mol Genet Metab. 2024 Mar;141(3):108148. doi: 10.1016/j.ymgme.2024.108148. Epub 2024 Jan 31.
4
Aromatic L-Amino Acid Decarboxylase Deficiency: A Genetic Screening in Sicilian Patients with Neurological Disorders.芳香族L-氨基酸脱羧酶缺乏症:西西里岛神经系统疾病患者的基因筛查
Genes (Basel). 2024 Jan 21;15(1):134. doi: 10.3390/genes15010134.
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Detection of hidden intronic DDC variant in aromatic L-amino acid decarboxylase deficiency by adaptive sampling.通过自适应采样检测芳香族 L-氨基酸脱羧酶缺乏症中的隐性内含子 DDC 变异。
J Hum Genet. 2024 Apr;69(3-4):153-157. doi: 10.1038/s10038-023-01217-2. Epub 2024 Jan 12.
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Novel presentation of AADC deficiency as a mild phenotype with exercise-induced dystonic crises: A case report.芳香族氨基酸脱羧酶缺乏症以运动诱发肌张力障碍危象为表现的轻度表型:一例报告。
Heliyon. 2023 Dec 16;10(1):e23746. doi: 10.1016/j.heliyon.2023.e23746. eCollection 2024 Jan 15.
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Case report: Childhood epilepsy and borderline intellectual functioning hiding an AADC deficiency disorder associated with compound heterozygous gene pathogenic variants.病例报告:儿童癫痫和边缘智力功能障碍掩盖了一种与复合杂合基因致病性变异相关的芳香族氨基酸脱羧酶缺乏症。
Front Neurol. 2023 Dec 5;14:1284339. doi: 10.3389/fneur.2023.1284339. eCollection 2023.
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Human aromatic amino acid decarboxylase is an asymmetric and flexible enzyme: Implication in aromatic amino acid decarboxylase deficiency.人芳香族氨基酸脱羧酶是一种不对称且灵活的酶:在芳香族氨基酸脱羧酶缺乏症中的意义。
Protein Sci. 2023 Aug;32(8):e4732. doi: 10.1002/pro.4732.
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Exome sequencing data screening to identify undiagnosed Aromatic l-amino acid decarboxylase deficiency in neurodevelopmental disorders.外显子组测序数据筛查以鉴定神经发育障碍中的未诊断芳香族 l-氨基酸脱羧酶缺乏症。
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Prevalence of DDC genotypes in patients with aromatic L-amino acid decarboxylase (AADC) deficiency and in silico prediction of structural protein changes.芳香族 L-氨基酸脱羧酶(AADC)缺陷患者中 DDC 基因型的流行情况及结构蛋白变化的计算机预测。
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