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时间和细胞特异性缺失确立了神经元 NPC1 缺陷足以介导神经退行性变。

Temporal and cell-specific deletion establishes that neuronal Npc1 deficiency is sufficient to mediate neurodegeneration.

机构信息

Department of Pathology, University of Michigan Medical School, Ann Arbor, MI 48109, USA.

出版信息

Hum Mol Genet. 2011 Nov 15;20(22):4440-51. doi: 10.1093/hmg/ddr372. Epub 2011 Aug 19.

Abstract

Niemann-Pick type C (NPC) disease is an autosomal recessive lysosomal storage disorder caused by mutations in the NPC1 or NPC2 genes. Loss of function mutations in either gene disrupt intracellular lipid trafficking and lead to a clinically heterogeneous phenotype that invariably includes neurological dysfunction and early death. The mechanism by which impaired lipid transport leads to neurodegeneration is poorly understood. Here we used mice with a conditional null allele to establish the timing and cell type that underlie neurodegeneration due to Npc1 deficiency. We show that global deletion of Npc1 in adult mice leads to progressive weight loss, impaired motor function and early death in a time course similar to that resulting from germline deletion. These phenotypes are associated with the occurrence of characteristic neuropathology including patterned Purkinje cell loss, axonal spheroids and reactive gliosis, demonstrating that there is not a significant developmental component to NPC neurodegeneration. Furthermore, we show that these same changes occur when Npc1 is specifically deleted only in neurons, establishing that neuronal deficiency is sufficient to mediate central nervous system (CNS) disease. In contrast, astrocyte-specific deletion does not impact behavioral phenotypes, CNS histopathology or synaptic function. We conclude that defects arising in neurons, but not in astrocytes, are the determining factor in the development of NPC neuropathology.

摘要

尼曼-匹克 C 型(NPC)病是一种常染色体隐性溶酶体贮积症,由 NPC1 或 NPC2 基因突变引起。这两个基因的功能丧失突变会破坏细胞内脂质运输,导致临床表现异质性,包括神经功能障碍和早逝。功能受损的脂质转运如何导致神经退行性变的机制尚不清楚。在这里,我们使用条件性敲除小鼠建立了 NPC1 缺乏导致神经退行性变的时间和细胞类型。我们发现,成年小鼠中 NPC1 的全局缺失会导致体重逐渐减轻、运动功能受损和早逝,其时间进程与生殖系缺失相似。这些表型与特征性的神经病理学有关,包括模式化的浦肯野细胞丢失、轴突球体和反应性神经胶质增生,表明 NPC 神经退行性变没有明显的发育成分。此外,我们还表明,当 Npc1 仅在神经元中特异性缺失时,也会发生这些相同的变化,这表明神经元的缺乏足以介导中枢神经系统(CNS)疾病。相比之下,星形胶质细胞特异性缺失不会影响行为表型、CNS 组织病理学或突触功能。我们得出结论,神经元而非星形胶质细胞中出现的缺陷是 NPC 神经病理学发展的决定因素。

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