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Rapid Acting Antidepressants in Chronic Stress Models: Molecular and Cellular Mechanisms:

机译:慢性应激模型中的速效抗抑郁药:分子和细胞机制:

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Stress-associated disorders, including depression and anxiety, impact nearly 20% of individuals in the United States. The social, health, and economic burden imposed by stress-associated disorders requires in depth research efforts to identify suitable treatment strategies. Traditional medications (e.g., selective serotonin reuptake inhibitors, monoamine oxidase inhibitors) have significant limitations, notably a time lag for therapeutic response that is compounded by low rates of efficacy. Excitement over ketamine, a rapid acting antidepressant effective in treatment resistant patients, is tempered by transient dissociative and psychotomimetic effects, as well as abuse potential. Rodent stress models are commonly used to produce behavioral abnormalities that resemble those observed in stress-associated disorders. Stress models also produce molecular and cellular morphological changes in stress sensitive brain regions, including the prefrontal cortex and hippocampus that resemble alterations observed in depression. Rapid acting antidepressants such as ketamine can rescue stress-associated morphological and behavioral changes in rodent models. Here, we review the literature supporting a role for rapid acting antidepressants in opposing the effects of stress, and summarize research efforts seeking to elucidate the molecular, cellular, and circuit level targets of these agents.
机译:与压力相关的疾病,包括抑郁症和焦虑症,影响了美国近20%的人。与压力有关的疾病给社会,健康和经济造成的负担需要深入的研究工作来确定合适的治疗策略。传统药物(例如选择性5-羟色胺再摄取抑制剂,单胺氧化酶抑制剂)具有明显的局限性,特别是治疗反应的时滞与低效率结合在一起。氯胺酮(一种对治疗抵抗力强的患者有效的速效抗抑郁药)的兴奋性因短暂的解离和拟精神病作用以及潜在的滥用而受到抑制。啮齿动物应激模型通常用于产生类似于在应激相关疾病中观察到的行为异常。压力模型还会在压力敏感的大脑区域(包括前额叶皮层和海马体)产生分子和细胞形态变化,类似于抑郁症中观察到的变化。速效抗抑郁药如氯胺酮可以挽救啮齿动物模型中与压力相关的形态和行为变化。在这里,我们回顾了支持速效抗抑郁药在对抗压力影响中发挥作用的文献,并总结了旨在阐明这些药物的分子,细胞和电路水平靶点的研究成果。

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