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鸟苷酸通过刺激 mTORC1 驱动的信号通路,增强了氯胺酮的快速但不持久的抗抑郁样和促进突触发生作用。

Guanosine boosts the fast, but not sustained, antidepressant-like and pro-synaptogenic effects of ketamine by stimulating mTORC1-driven signaling pathway.

机构信息

Neuroscience Graduate Program, Center of Biological Sciences, Universidade Federal de Santa Catarina, Florianópolis, 88040-900 SC, Brazil.

Laboratory of Evaluation of Bioactive Substances, Department of Natural Sciences, Universidade Regional de Blumenau, 89030-903 Blumenau, SC, Brazil.

出版信息

Eur Neuropsychopharmacol. 2022 Apr;57:15-29. doi: 10.1016/j.euroneuro.2021.12.010. Epub 2022 Jan 8.

DOI:10.1016/j.euroneuro.2021.12.010
PMID:35008015
Abstract

The mTORC1-dependent dendritic spines formation represents a key mechanism for fast and long-lasting antidepressant responses, but it remains to be determined whether this mechanism may account for the ability of guanosine in potentiating ketamine's actions. Here, we investigated the ability of ketamine plus guanosine to elicit fast and sustained antidepressant-like and pro-synaptogenic effects in mice and the role of mTORC1 signaling in these responses. The combined administration of subthreshold doses of ketamine (0.1 mg/kg, i.p.) and guanosine (0.01 mg/kg, p.o.) caused a fast (1 h - 24 h), but not long-lasting (7 days) reduction in the immobility time in the tail suspension test. This behavioral effect was paralleled by a rapid (started in 1 h) and transient (back to baseline in 24 h) increase on BDNF, p-Akt (Ser), p-GSK-3β (Ser), p-mTORC1 (Ser), p-p70S6K (Thr) immunocontent in the hippocampus, but not in the prefrontal cortex. Conversely, ketamine plus guanosine increased PSD-95 and GluA1 immunocontent in the prefrontal cortex, but not the hippocampus after 1 h, whereas increased levels of these proteins in both brain structures were observed after 24 h, but these effects did not persist after 7 days. The combined administration of ketamine plus guanosine raised the dendritic spines density in the ventral hippocampal DG and prefrontal cortex after 24 h Rapamycin (0.2 nmol/site, i.c.v.) abrogated the antidepressant-like effect and pro-synaptogenic responses triggered by ketamine plus guanosine. These results indicate that guanosine may boost the antidepressant-like effect of ketamine for up to 24 h by a mTORC1-dependent mechanism.

摘要

mTORC1 依赖性树突棘形成代表了快速和持久抗抑郁反应的关键机制,但尚不清楚该机制是否可以解释鸟苷增强氯胺酮作用的能力。在这里,我们研究了氯胺酮加鸟苷在小鼠中引发快速和持续抗抑郁样和促进突触形成作用的能力,以及 mTORC1 信号通路在这些反应中的作用。亚阈值剂量氯胺酮(0.1mg/kg,ip)和鸟苷(0.01mg/kg,po)联合给药导致悬尾试验中不动时间快速(1h-24h)但非持久(7 天)减少。这种行为效应伴随着 BDNF、p-Akt(Ser)、p-GSK-3β(Ser)、p-mTORC1(Ser)、p-p70S6K(Thr)在海马中的免疫含量的快速(1h 开始)和短暂(24h 恢复到基线)增加,但在前额叶皮质中没有。相反,氯胺酮加鸟苷在 1h 时增加了前额叶皮质中的 PSD-95 和 GluA1 免疫含量,但在海马中没有,而在 24h 时观察到这两种蛋白质在这两个脑区的水平增加,但这些效应在 7 天后没有持续。氯胺酮加鸟苷联合给药后,24h 时腹侧海马 DG 和前额叶皮质中的树突棘密度增加,而 Rapamycin(0.2nmol/site,icv)阻断了氯胺酮加鸟苷引发的抗抑郁样作用和促进突触形成反应。这些结果表明,鸟苷可能通过 mTORC1 依赖性机制增强氯胺酮的抗抑郁样作用长达 24h。

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