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Dynamic microglial alterations underlie stress-induced depressive-like behavior and suppressed neurogenesis

小胶质细胞 神经发生 米诺环素 海马结构 丙咪嗪 慢性应激 海马体 神经胶质 内分泌学 神经科学 内科学 炎症 医学 生物 中枢神经系统 病理 替代医学 抗生素 微生物学
作者
Tirzah Kreisel,Matthew G. Frank,Tamar Licht,R. Reshef,O Ben-Menachem-Zidon,Michael V. Baratta,Steven F. Maier,Raz Yirmiya
出处
期刊:Molecular Psychiatry [Springer Nature]
卷期号:19 (6): 699-709 被引量:666
标识
DOI:10.1038/mp.2013.155
摘要

The limited success in understanding the pathophysiology of major depression may result from excessive focus on the dysfunctioning of neurons, as compared with other types of brain cells. Therefore, we examined the role of dynamic alterations in microglia activation status in the development of chronic unpredictable stress (CUS)-induced depressive-like condition in rodents. We report that following an initial period (2-3 days) of stress-induced microglial proliferation and activation, some microglia underwent apoptosis, leading to reductions in their numbers within the hippocampus, but not in other brain regions, following 5 weeks of CUS exposure. At that time, microglia displayed reduced expression of activation markers as well as dystrophic morphology. Blockade of the initial stress-induced microglial activation by minocycline or by transgenic interleukin-1 receptor antagonist overexpression rescued the subsequent microglial apoptosis and decline, as well as the CUS-induced depressive-like behavior and suppressed neurogenesis. Similarly, the antidepressant drug imipramine blocked the initial stress-induced microglial activation as well as the CUS-induced microglial decline and depressive-like behavior. Treatment of CUS-exposed mice with either endotoxin, macrophage colony-stimulating factor or granulocyte-macrophage colony-stimulating factor, all of which stimulated hippocampal microglial proliferation, partially or completely reversed the depressive-like behavior and dramatically increased hippocampal neurogenesis, whereas treatment with imipramine or minocycline had minimal or no anti-depressive effects, respectively, in these mice. These findings provide direct causal evidence that disturbances in microglial functioning has an etiological role in chronic stress-induced depression, suggesting that microglia stimulators could serve as fast-acting anti-depressants in some forms of depressive and stress-related conditions.
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