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果蝇神经系统可塑性的结构方面。

Structural aspects of plasticity in the nervous system of Drosophila.

机构信息

Center for Transdisciplinary Research, Niigata University, Niigata, 951-8585, Japan.

Brain Research Institute, Niigata University, Niigata, 951-8585, Japan.

出版信息

Neural Dev. 2018 Jul 1;13(1):14. doi: 10.1186/s13064-018-0111-z.

Abstract

Neurons extend and retract dynamically their neurites during development to form complex morphologies and to reach out to their appropriate synaptic partners. Their capacity to undergo structural rearrangements is in part maintained during adult life when it supports the animal's ability to adapt to a changing environment or to form lasting memories. Nonetheless, the signals triggering structural plasticity and the mechanisms that support it are not yet fully understood at the molecular level. Here, we focus on the nervous system of the fruit fly to ask to which extent activity modulates neuronal morphology and connectivity during development. Further, we summarize the evidence indicating that the adult nervous system of flies retains some capacity for structural plasticity at the synaptic or circuit level. For simplicity, we selected examples mostly derived from studies on the visual system and on the mushroom body, two regions of the fly brain with extensively studied neuroanatomy.

摘要

神经元在发育过程中动态地延伸和缩回其神经突,以形成复杂的形态并与适当的突触伙伴接触。在成年期,当它支持动物适应不断变化的环境或形成持久记忆的能力时,它们进行结构重排的能力在一定程度上得以维持。尽管如此,在分子水平上,触发结构可塑性的信号及其支持机制尚未完全被理解。在这里,我们专注于果蝇的神经系统,以探讨活动在多大程度上调节发育过程中的神经元形态和连接。此外,我们总结了表明果蝇成年神经系统在突触或回路水平上保留一定结构可塑性能力的证据。为了简单起见,我们选择了主要来自于对视觉系统和蘑菇体的研究的例子,这是果蝇大脑中两个具有广泛研究神经解剖学的区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37df/6026517/7fb90cde2f45/13064_2018_111_Fig1_HTML.jpg

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