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本文引用的文献

1
Increased antioxidant response in medium-chain acyl-CoA dehydrogenase deficiency: does lipoic acid have a protective role?中链酰基辅酶 A 脱氢酶缺乏症中的抗氧化反应增加:硫辛酸是否具有保护作用?
Pediatr Res. 2020 Oct;88(4):556-564. doi: 10.1038/s41390-020-0801-1. Epub 2020 Feb 11.
2
Clinical and biochemical outcomes of patients with medium-chain acyl-CoA dehydrogenase deficiency.中链酰基辅酶 A 脱氢酶缺乏症患者的临床和生化结局。
Mol Genet Metab. 2020 Jan;129(1):13-19. doi: 10.1016/j.ymgme.2019.11.006. Epub 2019 Nov 25.
3
Oxidative damage in mitochondrial fatty acids oxidation disorders patients and the in vitro effect of l-carnitine on DNA damage induced by the accumulated metabolites.线粒体脂肪酸氧化障碍患者的氧化损伤,以及左旋肉碱对蓄积代谢物诱导的 DNA 损伤的体外作用。
Arch Biochem Biophys. 2020 Jan 15;679:108206. doi: 10.1016/j.abb.2019.108206. Epub 2019 Nov 22.
4
Disturbance of mitochondrial functions associated with permeability transition pore opening induced by cis-5-tetradecenoic and myristic acids in liver of adolescent rats.顺式-5-十四碳烯酸和豆蔻酸诱导未成年大鼠肝脏线粒体功能障碍与通透性转换孔开放相关。
Mitochondrion. 2020 Jan;50:1-13. doi: 10.1016/j.mito.2019.09.008. Epub 2019 Oct 23.
5
Impairment of mitochondrial bioenergetics and permeability transition induction caused by major long-chain fatty acids accumulating in VLCAD deficiency in skeletal muscle as potential pathomechanisms of myopathy.在骨骼肌中,由于 VLCAD 缺乏导致的长链脂肪酸大量积累,引起线粒体生物能学和通透性转换的损伤,可能是肌病的潜在发病机制。
Toxicol In Vitro. 2020 Feb;62:104665. doi: 10.1016/j.tiv.2019.104665. Epub 2019 Oct 16.
6
Mitochondria in Health and Disease.线粒体在健康与疾病中的作用
Cells. 2019 Jul 5;8(7):680. doi: 10.3390/cells8070680.
7
Clinical and biochemical outcome of patients with very long-chain acyl-CoA dehydrogenase deficiency.极长链酰基辅酶 A 脱氢酶缺乏症患者的临床和生化结局。
Mol Genet Metab. 2019 May;127(1):64-73. doi: 10.1016/j.ymgme.2019.04.001. Epub 2019 Apr 16.
8
The Role of Mitochondria in Reactive Oxygen Species Generation and Its Implications for Neurodegenerative Diseases.线粒体在活性氧生成中的作用及其对神经退行性疾病的影响
Cells. 2018 Dec 17;7(12):274. doi: 10.3390/cells7120274.
9
Mitochondrial energetics is impaired in very long-chain acyl-CoA dehydrogenase deficiency and can be rescued by treatment with mitochondria-targeted electron scavengers.线粒体能量代谢在极长链酰基辅酶 A 脱氢酶缺乏症中受损,并且可以通过使用靶向线粒体的电子清除剂治疗来挽救。
Hum Mol Genet. 2019 Mar 15;28(6):928-941. doi: 10.1093/hmg/ddy403.
10
Management and diagnosis of mitochondrial fatty acid oxidation disorders: focus on very-long-chain acyl-CoA dehydrogenase deficiency.线粒体脂肪酸氧化障碍的管理和诊断:重点关注极长链酰基辅酶 A 脱氢酶缺乏症。
J Hum Genet. 2019 Feb;64(2):73-85. doi: 10.1038/s10038-018-0527-7. Epub 2018 Nov 6.

证据表明,氧化失衡和线粒体功能障碍与脂肪酸氧化障碍的病理生理学有关。

Evidence that Oxidative Disbalance and Mitochondrial Dysfunction are Involved in the Pathophysiology of Fatty Acid Oxidation Disorders.

机构信息

Departamento de Análises Clínicas, Faculdade de Farmácia, Universidade Federal do Rio Grande do Sul, Porto Alegre, RS, Brazil.

Serviço de Genética Médica, Hospital de Clíınicas de Porto Alegre, Ramiro Barcelos, 2350, Porto Alegre, RS, 90035-003, Brazil.

出版信息

Cell Mol Neurobiol. 2022 Apr;42(3):521-532. doi: 10.1007/s10571-020-00955-7. Epub 2020 Sep 2.

DOI:10.1007/s10571-020-00955-7
PMID:32876899
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11441193/
Abstract

Mitochondrial fatty acid β-oxidation disorders (FAODs) are a group of about 20 diseases which are caused by specific mutations in genes that codify proteins or enzymes involved in the fatty acid transport and mitochondrial β-oxidation. As a consequence of these inherited metabolic defects, fatty acids can not be used as an appropriate energetic source during special conditions, such as prolonged fasting, exercise or other catabolic states. Therefore, patients usually present hepatopathy, cardiomyopathy, severe skeletal myopathy and neuropathy, besides biochemical features like hypoketotic hypoglycemia, metabolic acidosis, hypotony and hyperammonemia. This set of symptoms seems to be related not only with the energy deficiency, but also with toxic effects provoked by fatty acids and carnitine derivatives accumulated in the tissues of the patients. The understanding of the mechanisms by which these metabolites provoke tissue injury in FAODs is crucial for the developmental of novel therapeutic strategies that promote increased life expectancy, as well as improved life quality for patients. In this sense, the objective of this review is to present evidence from the scientific literature on the role of oxidative damage and mitochondrial dysfunction in the pathogenesis of the most prevalent FAODs: medium-chain acyl-CoA dehydrogenase (MCAD), long-chain 3-hydroxyacyl-CoA dehydrogenase (LCHAD) and very long-chain acyl-CoA dehydrogenase (VLCAD) deficiencies. It is expected that the findings presented in this review, obtained from both animal model and patients studies, may contribute to a better comprehension of the pathophysiology of these diseases.

摘要

线粒体脂肪酸β-氧化障碍(FAODs)是一组约 20 种疾病,这些疾病是由编码脂肪酸转运和线粒体β-氧化相关蛋白或酶的特定基因突变引起的。由于这些遗传性代谢缺陷,脂肪酸在特殊情况下(如长时间禁食、运动或其他分解代谢状态)不能作为适当的能量来源。因此,患者通常表现出肝、心脏、严重的骨骼肌和神经病,以及生化特征如低酮性低血糖、代谢性酸中毒、低血压和高血氨血症。这组症状似乎不仅与能量缺乏有关,而且与脂肪酸和肉碱衍生物在患者组织中积累所引起的毒性作用有关。了解这些代谢物在 FAOD 中引起组织损伤的机制对于开发新的治疗策略至关重要,这些策略可以提高患者的预期寿命和生活质量。在这方面,本综述的目的是从科学文献中提供证据,说明氧化损伤和线粒体功能障碍在最常见的 FAODs(中链酰基辅酶 A 脱氢酶(MCAD)、长链 3-羟基酰基辅酶 A 脱氢酶(LCHAD)和极长链酰基辅酶 A 脱氢酶(VLCAD)缺乏症)发病机制中的作用。预计本综述中从动物模型和患者研究中获得的发现将有助于更好地理解这些疾病的病理生理学。