Suppr超能文献

神经营养因子与神经退行性疾病:受体陷入困境?

Neurotrophins and neurodegenerative diseases: receptors stuck in traffic?

作者信息

Kruttgen Alex, Saxena Smita, Evangelopoulos Maria Eleptheria, Weis Joachim

机构信息

Division of Neuropathology, Institute of Pathology, University of Berne, Berne, Switzerland.

出版信息

J Neuropathol Exp Neurol. 2003 Apr;62(4):340-50. doi: 10.1093/jnen/62.4.340.

Abstract

Neurotrophins are well known for their physiological role as key modulators of neuronal survival, neurite out-growth, and synaptic connectivity during development and into adulthood. Moreover, neurotrophins are potent agents, ameliorating neuronal degeneration in many model systems for neurological diseases. However, a causal role for mutations in neurotrophins or neurotrophin receptors in human neurodegenerative diseases has been largely lacking. As neurotrophin receptors are located at synapses and as their signaling involves the neuronal nucleus, they need to bridge tantalizing distances in order to retrogradely communicate their survival signals. On the other hand, anterogradely transported neurotrophins are released at the synapse and act on postsynaptic cells. Antero- and retrograde signaling and trafficking is an emerging focus of interest in neurotrophin research. Some neurodegenerative diseases are known to affect transport of organelles. Thus, it appears likely that neurodegeneration could be caused by "indirect" effects on neurotrophin trafficking and, hence, signaling. In this review we summarize recent work on neurotrophins in neurodegenerative diseases with special focus on possible implications of disturbed trafficking of organelles and retrograde axonal signaling.

摘要

神经营养因子作为发育过程及成年期神经元存活、轴突生长和突触连接的关键调节因子,其生理作用广为人知。此外,神经营养因子还是强效因子,可改善多种神经疾病模型系统中的神经元退化。然而,在人类神经退行性疾病中,神经营养因子或神经营养因子受体突变的因果作用在很大程度上尚不存在。由于神经营养因子受体位于突触处,且其信号传导涉及神经元细胞核,它们需要跨越诱人的距离才能逆行传递其存活信号。另一方面,顺行运输的神经营养因子在突触处释放并作用于突触后细胞。顺行和逆行信号传导及运输是神经营养因子研究中一个新出现的关注焦点。已知一些神经退行性疾病会影响细胞器的运输。因此,神经退行性变似乎可能是由对神经营养因子运输及信号传导的“间接”影响所致。在本综述中,我们总结了神经营养因子在神经退行性疾病方面的最新研究工作,特别关注细胞器运输紊乱和逆行轴突信号传导的可能影响。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验