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神经分泌细胞中脑多巴胺神经营养因子的细胞内运输和分泌。

Intracellular trafficking and secretion of cerebral dopamine neurotrophic factor in neurosecretory cells.

机构信息

Department of Neurobiology, Shandong Provincial Key Laboratory of Mental Disorders, School of Medicine, Shandong University, Jinan, Shandong, China.

出版信息

J Neurochem. 2011 Apr;117(1):121-32. doi: 10.1111/j.1471-4159.2011.07179.x. Epub 2011 Feb 9.

Abstract

Cerebral dopamine neurotrophic factor (CDNF) is a novel evolutionary conserved protein which can protect and restore the function of dopaminergic neurons in the rat model of Parkinson's disease, suggesting that CDNF might be beneficial for the treatment of Parkinson's disease. CDNF is widely expressed in neurons in several brain regions including cerebral cortex, hippocampus, substantia nigra, striatum and cerebellum. Human CDNF is glycosylated and secreted from transiently transfected cells; however, the mechanism underlying CDNF secretion is currently unclear. In this study, we found that CDNF could be secreted primarily via the regulated secretion pathway in PC12 cells. The glycosylation of CDNF is not required for its secretion. Moreover, we identified two key subdomains in CDNF which are important for its intracellular localization and secretion. Disrupting helix-1 of CDNF significantly reduces its constitutive and regulated secretion and the helix-1 mutant is retained in the endoplasmic reticulum. Although helix-7 mutation only decreases CDNF regulated secretion and has no effect on its constitutive secretion, which is further supported by the reduction in co-localization of helix-7 mutant with secretory granules. In all, these findings will advance our understanding of the molecular mechanism of CDNF trafficking and secretion.

摘要

脑源性神经营养因子(CDNF)是一种新型进化保守蛋白,可保护和恢复帕金森病大鼠模型中多巴胺能神经元的功能,提示 CDNF 可能有益于帕金森病的治疗。CDNF 在包括大脑皮层、海马体、黑质、纹状体和小脑在内的几个脑区的神经元中广泛表达。人 CDNF 经瞬时转染的细胞进行糖基化和分泌;然而,CDNF 分泌的机制目前尚不清楚。在本研究中,我们发现 CDNF 可以主要通过 PC12 细胞中的调节分泌途径进行分泌。CDNF 的糖基化对于其分泌不是必需的。此外,我们鉴定了 CDNF 中两个对其细胞内定位和分泌很重要的关键亚结构域。破坏 CDNF 的螺旋-1 结构域显著降低其组成型和调节型分泌,并且螺旋-1 突变体在内质网中被保留。虽然螺旋-7 突变仅降低 CDNF 的调节型分泌,而不影响其组成型分泌,但这进一步得到了与分泌颗粒共定位的螺旋-7 突变体减少的支持。总之,这些发现将促进我们对 CDNF 运输和分泌的分子机制的理解。

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