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钼辅因子缺陷症。

Molybdenum Cofactor Deficiency in Humans.

机构信息

Institute of Biochemistry, Department of Chemistry & Center for Molecular Medicine Cologne, University of Cologne, 50674 Cologne, Germany.

出版信息

Molecules. 2022 Oct 14;27(20):6896. doi: 10.3390/molecules27206896.

Abstract

Molybdenum cofactor (Moco) deficiency (MoCD) is characterized by neonatal-onset myoclonic epileptic encephalopathy and dystonia with cerebral MRI changes similar to hypoxic-ischemic lesions. The molecular cause of the disease is the loss of sulfite oxidase (SOX) activity, one of four Moco-dependent enzymes in men. Accumulating toxic sulfite causes a secondary increase of metabolites such as S-sulfocysteine and thiosulfate as well as a decrease in cysteine and its oxidized form, cystine. Moco is synthesized by a three-step biosynthetic pathway that involves the gene products of , and . Depending on which synthetic step is impaired, MoCD is classified as type A, B, or C. This distinction is relevant for patient management because the metabolic block in MoCD type A can be circumvented by administering cyclic pyranopterin monophosphate (cPMP). Substitution therapy with cPMP is highly effective in reducing sulfite toxicity and restoring biochemical homeostasis, while the clinical outcome critically depends on the degree of brain injury prior to the start of treatment. In the absence of a specific treatment for MoCD type B/C and SOX deficiency, we summarize recent progress in our understanding of the underlying metabolic changes in cysteine homeostasis and propose novel therapeutic interventions to circumvent those pathological changes.

摘要

钼辅因子(Moco)缺陷症(MoCD)的特征是新生儿发作的肌阵挛性癫痫性脑病和伴有脑 MRI 改变的肌张力障碍,其改变类似于缺氧缺血性病变。该疾病的分子病因是亚硫酸氧化酶(SOX)活性丧失,SOX 是男性四种 Moco 依赖性酶之一。积累的有毒亚硫酸盐会导致代谢物如 S-半胱氨酸和硫代硫酸盐的二次增加,以及半胱氨酸及其氧化形式胱氨酸的减少。Moco 是通过涉及基因产物 、 和 的三步生物合成途径合成的。根据哪个合成步骤受损,MoCD 可分为 A、B 或 C 型。这种区分对于患者管理很重要,因为 MoCD 型 A 的代谢障碍可以通过给予环吡喃四磷酸(cPMP)来规避。用 cPMP 进行替代治疗在降低亚硫酸盐毒性和恢复生化平衡方面非常有效,而临床结果则取决于开始治疗前脑损伤的程度。在缺乏 MoCD 型 B/C 和 SOX 缺乏的特异性治疗的情况下,我们总结了对半胱氨酸稳态中潜在代谢变化的理解的最新进展,并提出了规避这些病理变化的新的治疗干预措施。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4888/9607355/ccecae30e90b/molecules-27-06896-g001.jpg

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