四氢生物蝶呤
错义突变
生物蝶呤
高苯丙氨酸血症
内分泌学
内科学
突变体
GTP环水解酶I
苯丙氨酸羟化酶
多巴胺
神经递质
生物
医学
突变
遗传学
一氧化氮
苯丙氨酸
一氧化氮合酶
基因
中枢神经系统
氨基酸
作者
Xiaoling Jiang,Huazhen Liu,Yongxian Shao,Mingzhi Peng,Wen Zhang,Li Duan,Xiuzhen Li,Yanna Cai,Ting Tan,Xinshuo Lu,Jianan Xu,Xueying Su,Yunting Lin,Zongcai Liu,Yonglan Huang,Chunhua Zeng,Ya‐Ping Tang,Li Liu
标识
DOI:10.1016/j.metabol.2019.02.001
摘要
Background GTP cyclohydrolase I (GTPCH) deficiency could impair the synthesis of tetrahydrobiopterin and causes metabolic diseases involving phenylalanine catabolism, neurotransmitter synthesis, nitric oxide production and so on. Though improvements could be achieved by tetrahydrobiopterin and neurotransmitter precursor levodopa supplementation, residual motor and mental deficits remain in some patients. An appropriate GTPCH deficiency animal model with clinical symptoms, especially the motor impairments, is still not available for mechanism and therapy studies yet. Objectives and methods To investigate whether the heterozygous GTPCH missense mutation p.Leu117Arg identified from a patient with severe infancy-onset dopa-responsive motor impairments is causative and establish a clinical relevant GTPCH deficiency mouse model, we generated a mouse mutant mimicking this missense mutation using the CRISPR/Cas9 technology. Series of characterization experiments on the heterozygous and homozygous mutants were conducted. Results The expressions of GTPCH were not significantly changed in the mutants, but the enzyme activities were impaired in the homozygous mutants. BH4 reduction and phenylalanine accumulation were observed both in the liver and brain of the homozygous mutants. Severer metabolic disturbance occurred in the brain than in the liver. Significant reduction of neurotransmitter dopamine, norepinephrine and serotonin was observed in the brains of homozygous mutants. Live-born homozygous mutants exhibited infancy-onset motor and vocalization deficits similar to the disease symptoms observed in the patient, while no obvious symptoms were observed in the young heterozygous mutant mice. With benserazide-levodopa treatment, survival of the homozygous mutants was improved but not completely rescued. Conclusions The GTPCH p.Leu117Arg missense mutation is deleterious and could cause tetrahydrobiopterin, phenylalanine and neurotransmitter metabolic disturbances and infancy-onset motor dysfunctions recessively. This is the first GTPCH deficiency mouse model which could be live-born and exhibits significant motor impairments. The different extents of BH4 reduction and phenylalanine accumulation observed between liver and brain in response to GTPCH deficiency gives potential new insights into the vulnerability of brain to GTPCH deficiency.
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