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早期丰富环境可诱导成年大鼠海马体中 proBDNF 向 BDNF 的转化率增加。

Early enriched environment induces an increased conversion of proBDNF to BDNF in the adult rat's hippocampus.

机构信息

Department of Anatomy and Neurobiology, XiangYa School of Medicine, Central South University, Tongzipo Road 172, Changsha, Hunan, PR China.

Department of Anatomy and Neurobiology, XiangYa School of Medicine, Central South University, Tongzipo Road 172, Changsha, Hunan, PR China.

出版信息

Behav Brain Res. 2014 May 15;265:76-83. doi: 10.1016/j.bbr.2014.02.022. Epub 2014 Feb 22.

Abstract

An enriched environment has been shown to influence brain plasticity and function by involving the action of brain-derived neurotrophic factor (BDNF). BDNF, which is synthesized as a precursor molecule (proBDNF) that undergoes proteolytic cleavage, plays an important role in synaptic plasticity and contributes to several brain functions such as memory, learning, and behavior. The neurotrophins and proneurotrophins often play opposite roles in the brain, suggesting that proteolytic cleavage of proneurotrophins controls the action of neurotrophins. However, few studies have focused on the expression and cleavage of proBDNF after exposure to an enriched environment. Our study aimed to explore the effects of an early-enriched environment on the conversion of proBDNF to BDNF in the adult rats' hippocampus. We found that there was no difference in the expression of proBDNF in the hippocampus between the SE (standard environment) and EE (enriched environment) rats, but a significantly increased BDNF protein level was found in the EE rats. Thus, a remarkably enhanced ratio of BDNF to proBDNF (BDNF/proBDNF) was observed in the EE rats. In addition, the EE resulted in a remarkably up-regulated matrix metalloproteinase-9 (MMP-9) in the hippocampus, which played a key role in converting proBDNF to BDNF in the extracellular space. Furthermore, the expression of synapse-related proteins (NR1 and NR2A) was analyzed, and the results indicated that EE could significantly increase the expression of NR1 and NR2A in the hippocampus. In addition, the behavioral results showed that EE reduced anxiety-like behavior in the elevated-plus maze test and reduced immobility time in the forced swimming test. Moreover, the EE resulted in an increased preference for sucrose compared to the SE. These results suggested that the EE up-regulated MMP-9 levels within the hippocampus, which might facilitate the conversion of proBDNF to BDNF, thereby contributing to the long lasting alterations of synaptic plasticity and behavior.

摘要

丰富的环境已被证明通过脑源性神经营养因子(BDNF)的作用来影响大脑的可塑性和功能。BDNF 作为前体分子(proBDNF)合成,经历蛋白水解切割,在突触可塑性中发挥重要作用,并有助于记忆、学习和行为等几种大脑功能。神经营养因子和前神经生长因子在大脑中经常起着相反的作用,这表明前神经生长因子的蛋白水解切割控制着神经营养因子的作用。然而,很少有研究关注暴露于丰富环境后 proBDNF 的表达和切割。我们的研究旨在探讨早期丰富环境对成年大鼠海马中 proBDNF 转化为 BDNF 的影响。我们发现 SE(标准环境)和 EE(丰富环境)大鼠海马中的 proBDNF 表达没有差异,但 EE 大鼠的 BDNF 蛋白水平显著增加。因此,EE 大鼠中观察到 BDNF 与 proBDNF 的比值(BDNF/proBDNF)显著增加。此外,EE 导致海马中基质金属蛋白酶-9(MMP-9)显著上调,MMP-9 在细胞外空间中将 proBDNF 转化为 BDNF 中起关键作用。此外,还分析了突触相关蛋白(NR1 和 NR2A)的表达,结果表明 EE 可显著增加海马中 NR1 和 NR2A 的表达。此外,行为结果表明,EE 可减少高架十字迷宫试验中的焦虑样行为,并减少强迫游泳试验中的不动时间。此外,EE 导致与 SE 相比对蔗糖的偏好增加。这些结果表明,EE 上调海马中 MMP-9 水平,这可能有助于 proBDNF 向 BDNF 的转化,从而有助于突触可塑性和行为的长期改变。

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