Inhibition of SIRT1 in the nucleus accumbens attenuates heroin addiction-related behavior by decreasing D1 neuronal autophagy

伏隔核 免疫印迹 有条件地点偏好 自噬 基因剔除小鼠 野生型 药理学 化学 分子生物学 生物 内分泌学 内科学 细胞凋亡 多巴胺 医学 基因 生物化学 受体 突变体
作者
Yanyan Huang,Meijun Liu,Zhiyao Zheng,Ruiping Lu,Chunlu Li,Min Su,Yixin Li,Baijuan Xia
出处
期刊:Neuroreport [Lippincott Williams & Wilkins]
卷期号:35 (7): 486-498 被引量:1
标识
DOI:10.1097/wnr.0000000000002033
摘要

This study aimed to investigate the effects of SIRT1 modulation on heroin addiction-like behavior and its possible biological mechanisms. Wild-type C57BL/6J and Sirt1 loxp/loxp D1-Cre mice were used in this experiment, and Sirt1 loxp/loxp D1-Cre(−) mice were used as a control for conditional knockout mice. Mice were divided into saline control and heroin-dependent groups. Behavioral methods were used to record the withdrawal response, conditioned place preference (CPP) changes, and open field test results. Transmission electron microscopy (TEM) was used to observe the structure of autophagosomes in nucleus accumbens (NAc) neurons. The expression of SIRT1 and autophagy-related proteins and genes, such as LC3Ⅱ, ATG5 , and ATG7 , was detected in the NAc of each mouse group via western blot, real-time quantitative PCR (qPCR) analyzes, and immunofluorescence. The results of this experiment showed that compared with the saline group, mice in the wild-type heroin-dependent group showed marked withdrawal symptoms, with more autophagosomes observed in NAc via TEM. Compared with wild-type and Sirt1 loxp/loxp D1-Cre(−) heroin-dependent groups, CPP formation was found to be reduced in the conditional knockout mouse group, with a significant decrease in spontaneous activity. Western blot, qPCR, and immunofluorescence results indicated that the expression of LC3Ⅱ, ATG-5, and ATG-7 was significantly reduced in the NAc of the Sirt1 loxp/loxp D1-Cre(+) group. It was still, however, higher than that in the saline control group. These results suggest that inhibition of Sirt1 expression may prevent heroin-induced addiction-related behaviors via reducing D1 neuronal autophagy.
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