Neonatal olfactory bulbectomy induces anxiety-related behavior and modifies dopaminergic receptor expression in post-pubertal rats.

IF 1.6 4区 医学 Q4 NEUROSCIENCES Synapse Pub Date : 2023-07-01 DOI:10.1002/syn.22272
Gonzalo Flores, María de Jesús Gómez-Villalobos, Tommaso Iannitti, Julio César Morales-Medina
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Abstract

Olfaction is a complex physiological process producing effects in the central nervous system (CNS) and implicated in emotional processes. Indeed, the olfactory bulbs (OB) send projections to various CNS regions including the nucleus accumbens (NAcc) and caudate-putamen (CPu). Both the NAcc and CPu receive important dopaminergic input. Emerging evidence suggests that dopamine (DA) is related to anxiety-related behaviors. Therefore, we aimed to investigate the consequences of neonatal olfactory bulbectomy (nOBX) to anxiety-related behavior as assayed in the elevated plus maze (EPM) as well as the expression of dopaminergic receptors (D1-like, D2-like, and D3) in the NAcc and CPu at pre- and post-pubertal ages in the rat. The results show that nOBX increased the number of entries in the open arm of the EPM post-pubertally, suggesting an anxiolytic-related effect. nOBX increased the D2-like binding in the NAcc shell and D3 binding in the NAcc core pre-pubertally. At post-pubertal ages, the D3 binding was reduced at the olfactory tubercle and islands of Calleja in nOBX rats. Alterations in the DA receptor expression may be one mechanism responsible for the observed behavioral modifications in nOBX rats.

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新生儿嗅球切除术诱导青春期后大鼠焦虑相关行为并改变多巴胺能受体表达。
嗅觉是一个复杂的生理过程,在中枢神经系统(CNS)中产生作用,并与情绪过程有关。事实上,嗅球(OB)向中枢神经系统的各个区域发送投射,包括伏隔核(NAcc)和尾壳核(CPu)。NAcc和CPu都接受重要的多巴胺能输入。新出现的证据表明多巴胺(DA)与焦虑相关的行为有关。因此,我们旨在研究新生儿嗅球切除术(nOBX)对焦虑相关行为的影响,通过升高的正迷宫(EPM)以及青春期前和青春期后大鼠NAcc和CPu中多巴胺能受体(d1样,d2样和D3样)的表达进行分析。结果表明,nOBX增加了青春期后EPM张开臂的入口数,提示其具有抗焦虑作用。nOBX增加了青春期前NAcc外壳的d2样结合和NAcc核心的D3结合。在青春期后,nOBX大鼠嗅结节和胼胝体岛的D3结合减少。DA受体表达的改变可能是nOBX大鼠观察到的行为改变的一个机制。
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来源期刊
Synapse
Synapse 医学-神经科学
CiteScore
3.80
自引率
0.00%
发文量
38
审稿时长
4-8 weeks
期刊介绍: SYNAPSE publishes articles concerned with all aspects of synaptic structure and function. This includes neurotransmitters, neuropeptides, neuromodulators, receptors, gap junctions, metabolism, plasticity, circuitry, mathematical modeling, ion channels, patch recording, single unit recording, development, behavior, pathology, toxicology, etc.
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