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果蝇 microRNA-34 通过下调蜕皮激素受体的表达来损害蘑菇体γ神经元的轴突修剪。

Drosophila microRNA-34 Impairs Axon Pruning of Mushroom Body γ Neurons by Downregulating the Expression of Ecdysone Receptor.

机构信息

Institute of Cellular and Organismic Biology, Academia Sinica, Taipei, Taiwan.

Institute of Molecular and Genomic Medicine, National Health Research Institutes, Miaoli County, Taiwan.

出版信息

Sci Rep. 2016 Dec 23;6:39141. doi: 10.1038/srep39141.

Abstract

MicroRNA-34 (miR-34) is crucial for preventing chronic large-scale neurite degeneration in the aged brain of Drosophila melanogaster. Here we investigated the role of miR-34 in two other types of large-scale axon degeneration in Drosophila: axotomy-induced axon degeneration in olfactory sensory neurons (OSNs) and developmentally related axon pruning in mushroom body (MB) neurons. Ectopically overexpressed miR-34 did not inhibit axon degeneration in OSNs following axotomy, whereas ectopically overexpressed miR-34 in differentiated MB neurons impaired γ axon pruning. Intriguingly, the miR-34-induced γ axon pruning defect resulted from downregulating the expression of ecdysone receptor B1 (EcR-B1) in differentiated MB γ neurons. Notably, the separate overexpression of EcR-B1 or a transforming growth factor- β receptor Baboon, whose activation can upregulate the EcR-B1 expression, in MB neurons rescued the miR-34-induced γ axon pruning phenotype. Future investigations of miR-34 targets that regulate the expression of EcR-B1 in MB γ neurons are warranted to elucidate pathways that regulate axon pruning, and to provide insight into mechanisms that control large-scale axon degeneration in the nervous system.

摘要

miR-34(miR-34)对于防止黑腹果蝇年老大脑中的慢性大规模神经突退化至关重要。在这里,我们研究了 miR-34 在果蝇中另外两种大规模轴突退化中的作用:嗅觉感觉神经元(OSN)的轴突切断诱导的轴突退化和蘑菇体(MB)神经元的发育相关轴突修剪。异位过表达 miR-34 并没有抑制 OSN 轴突切断后的轴突退化,而在分化的 MB 神经元中异位过表达 miR-34 会损害γ轴突修剪。有趣的是,miR-34 诱导的γ轴突修剪缺陷是由于下调了分化的 MB γ神经元中蜕皮激素受体 B1(EcR-B1)的表达。值得注意的是,MB 神经元中 EcR-B1 或转化生长因子-β受体 Baboon 的单独过表达,其激活可以上调 EcR-B1 的表达,可挽救 miR-34 诱导的γ轴突修剪表型。未来对调节 MB γ神经元中 EcR-B1 表达的 miR-34 靶标的研究将阐明调节轴突修剪的途径,并深入了解控制神经系统中大规模轴突退化的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1f2/5180235/f598f7868a2a/srep39141-f1.jpg

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