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体育锻炼和环境探索影响成年大鼠齿状回中神经元的突触形成:BDNF 的可能作用。

Physical exercise and environment exploration affect synaptogenesis in adult-generated neurons in the rat dentate gyrus: possible role of BDNF.

机构信息

Department of Earth, Life and Environment Sciences, Section of Physiology, University of Urbino "Carlo Bo", Urbino 61029, Italy.

出版信息

Brain Res. 2013 Oct 9;1534:1-12. doi: 10.1016/j.brainres.2013.08.023. Epub 2013 Aug 21.

DOI:10.1016/j.brainres.2013.08.023
PMID:23973748
Abstract

A brief training in a pool maze, with or without cognitive tasks, modifies the synaptogenesis and maturation of newborn neurons in adult rat dentate gyrus. These types of trainings have many aspects, including physical activity and exploration. Therefore, to evaluate whether physical exercise and environment exploration are able to affect synapse formation and the maturation of adult-generated neurons, GFP-retrovirus infusion was performed on rats which, on the fourth day after injection, were housed under running conditions or allowed to explore an enriched environment briefly in the absence of exercise for the following three days. Afterward, at the end of the trainings, electrophysiological and morphological studies were conducted. Considering that neurotrophic factors increase after exercise or environment exploration, hippocampal BDNF levels and TrkB receptor activation were evaluated. In this study, we show that both spontaneous physical activity and enriched environment exploration induced synaptogenesis and T-type voltage-dependent Ca(2+) currents in very immature neurons. Hippocampal BDNF levels and TrkB receptor activation were determined to be increasing following physical activity and exploration. A possible contribution of BDNF signaling in mediating the observed effects was supported by the use of 7-8-dihydroxyflavone, a selective TrkB agonist, and of ANA-12, an inhibitor of TrkB receptors.

摘要

在水池迷宫中进行短暂的训练,无论是否有认知任务,都会改变成年大鼠齿状回中新神经元的突触发生和成熟。这些类型的训练有很多方面,包括体育活动和探索。因此,为了评估体育锻炼和环境探索是否能够影响突触形成和成年产生的神经元的成熟,我们在注射后的第四天对大鼠进行 GFP 逆转录病毒输注,然后将它们置于跑步条件下或在没有运动的情况下短暂探索丰富的环境,持续三天。之后,在训练结束时,进行电生理和形态学研究。考虑到神经营养因子在运动或环境探索后会增加,我们评估了海马 BDNF 水平和 TrkB 受体的激活情况。在这项研究中,我们表明,自发的体育活动和丰富的环境探索都能诱导非常不成熟的神经元的突触发生和 T 型电压依赖性 Ca(2+)电流。海马 BDNF 水平和 TrkB 受体的激活在运动和探索后被确定为增加。BDNF 信号转导在介导观察到的效应中可能起到了一定的作用,这一点得到了使用 7-8-二羟基黄酮(一种选择性 TrkB 激动剂)和 ANA-12(一种 TrkB 受体抑制剂)的支持。

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