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来自肾上腺脑白质营养不良蛋白(ABCD1)缺陷小鼠的星形胶质细胞和线粒体表明,与肾上腺脑白质营养不良相关的极长链脂肪酸靶向多种细胞能量依赖性功能。

Astrocytes and mitochondria from adrenoleukodystrophy protein (ABCD1)-deficient mice reveal that the adrenoleukodystrophy-associated very long-chain fatty acids target several cellular energy-dependent functions.

作者信息

Kruska Nicol, Schönfeld Peter, Pujol Aurora, Reiser Georg

机构信息

Institut für Neurobiochemie, Medizinische Fakultät, Otto-von-Guericke-Universität Magdeburg, Leipziger Straße 44, D-39120 Magdeburg, Germany.

Institut für Biochemie und Zellbiologie, Medizinische Fakultät, Otto-von-Guericke-Universität Magdeburg, Leipziger Straße 44, D-39120 Magdeburg, Germany.

出版信息

Biochim Biophys Acta. 2015 May;1852(5):925-36. doi: 10.1016/j.bbadis.2015.01.005. Epub 2015 Jan 10.

Abstract

X-linked adrenoleukodystrophy (X-ALD) is a severe neurodegenerative disorder resulting from defective ABCD1 transport protein. ABCD1 mediates peroxisomal uptake of free very-long-chain fatty acids (VLCFA) as well as their CoA-esters. Consequently, VLCFA accumulate in patients' plasma and tissues, which is considered as pathogenic X-ALD triggering factor. Clinical symptoms are mostly manifested in neural tissues and adrenal gland. Here, we investigate astrocytes from wild-type control and a genetic X-ALD mouse model (Abcd1-knockout), exposed to supraphysiological VLCFA (C22:0, C24:0 and C26:0) concentrations. They exhibit multiple impairments of energy metabolism. Furthermore, brain mitochondria from Abcd1(-/-) mice and wild-type control respond similarly to VLCFA with increased ROS generation, impaired oxidative ATP synthesis and diminished Ca(2+) uptake capacity, suggesting that a defective ABCD1 exerts no adaptive pressure on mitochondria. In contrast, astrocytes from Abcd1(-/-) mice respond more sensitively to VLCFA than wild-type control astrocytes. Moreover, long-term application of VLCFA induces high ROS generation, and strong in situ depolarization of mitochondria, and, in Abcd1(-/-) astrocytes, severely diminishes the capability to revert oxidized pyridine nucleotides to NAD(P)H. In addition, observed differences in responses of mitochondria and astrocytes to the hydrocarbon chain length of VLCFA suggest that detrimental VLCFA activities in astrocytes involve defective cellular functions other than mitochondria. In summary, we clearly demonstrate that VLCFA increase the vulnerability of Abcd1(-/-) astrocytes.

摘要

X连锁肾上腺脑白质营养不良(X-ALD)是一种由缺陷性ABCD1转运蛋白导致的严重神经退行性疾病。ABCD1介导过氧化物酶体对游离极长链脂肪酸(VLCFA)及其辅酶A酯的摄取。因此,VLCFA在患者的血浆和组织中蓄积,这被认为是致病性X-ALD的触发因素。临床症状主要表现在神经组织和肾上腺。在此,我们研究了来自野生型对照和基因X-ALD小鼠模型(Abcd1基因敲除)的星形胶质细胞,它们暴露于超生理浓度的VLCFA(C22:0、C24:0和C26:0)中。这些星形胶质细胞表现出能量代谢的多种损伤。此外,Abcd1(-/-)小鼠和野生型对照的脑线粒体对VLCFA的反应相似,活性氧生成增加、氧化ATP合成受损以及钙摄取能力降低,这表明缺陷性的ABCD1对线粒体没有施加适应性压力。相比之下,Abcd1(-/-)小鼠的星形胶质细胞对VLCFA的反应比野生型对照星形胶质细胞更敏感。此外,长期应用VLCFA会诱导大量活性氧生成以及线粒体强烈的原位去极化,并且在Abcd1(-/-)星形胶质细胞中,严重降低了将氧化的吡啶核苷酸还原为NAD(P)H的能力。此外,观察到的线粒体和星形胶质细胞对VLCFA碳氢链长度反应的差异表明,星形胶质细胞中有害的VLCFA活性涉及线粒体以外的细胞功能缺陷。总之,我们清楚地证明VLCFA增加了Abcd1(-/-)星形胶质细胞的易损性。

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