Chronic Fluoxetine Treatment Reverses Depressive-like Behaviors in Mice via Enhancing Neuroplasticity

Xu Qian, Yao Zhang, Hui-jun Tan
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Abstract

Objectives: Depression remains a refractory psychiatric disorder. Fluoxetine is a preferred class of antidepressant medication due to restrain retaking of biogenic monoamines. There was a new mechanism discovery that neuroplasticity was considered to underlie clinical antidepressant effects. However, reports display that fluoxetine’s actions on neuroplasticity still remain controversial. This study investigates fluoxetine’s role in the impact of synaptic function and morphology by different durations of fluoxetine treatment and the possible mechanisms involved. Materials and Methods: The chronic depression mice model was established by using the 7-week-old male C57BL/6 mice. Fluoxetine 10 mg/kg was treated for 7 days and 14 days. The depression-like behaviors were assessed using the tail-suspension test, forced swim test, sucrose preference, and open-field tests. Nissl staining was applied to assess hippocampus formation. Immunofluorescence and Golgi staining were used to investigate synaptic function and morphology. The hippocampal protein expression of SYP was examined using Western blotting. Results: We found that fluoxetine treatment for 2 weeks, as opposed to just 1 week, significantly alleviated symptoms of behavioral despair, anhedonia, and anxiety in the depressive mice. Furthermore, both 7- and 14-day fluoxetine administrations resulted in reduced impairment of hippocampal neurons and a tendency to increase the dendritic spine numbers in the context of depression. Additionally, only the 14-day fluoxetine treatment promoted the expression of SYP in the hippocampus. Conclusion: Chronic administration of fluoxetine significantly reduced depressive and anxiety-like behaviors and hippocampal impairment and enhanced synaptic plasticity in mice.
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慢性氟西汀治疗通过增强神经可塑性逆转小鼠的抑郁样行为
目的:抑郁症仍然是一种难治性精神疾病。氟西汀是一类首选的抗抑郁药物,因为它能抑制生物单胺类物质的再吸收。有一种新的机制发现,神经可塑性被认为是临床抗抑郁效果的基础。然而,报告显示氟西汀对神经可塑性的作用仍存在争议。本研究探讨了氟西汀不同疗程对突触功能和形态的影响以及可能的作用机制。材料与方法:采用7周龄雄性C57BL/6小鼠建立慢性抑郁小鼠模型。氟西汀 10 毫克/千克,分别治疗 7 天和 14 天。抑郁样行为通过尾悬吊试验、强迫游泳试验、蔗糖偏好和开阔地试验进行评估。Nissl染色用于评估海马形成。免疫荧光和高尔基染色用于研究突触功能和形态。用 Western 印迹法检测了海马蛋白 SYP 的表达。结果我们发现,氟西汀治疗 2 周比仅治疗 1 周能显著缓解抑郁小鼠的行为绝望、失张力和焦虑症状。此外,服用氟西汀 7 天和 14 天后,抑郁小鼠的海马神经元受损程度均有所减轻,树突棘数量也有增加的趋势。此外,只有为期 14 天的氟西汀治疗能促进海马中 SYP 的表达。结论长期服用氟西汀可显著减少小鼠的抑郁和焦虑样行为以及海马损伤,并增强突触可塑性。
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