Conditioned morphine tolerance promotes neurogenesis, dendritic remodelling and pro-plasticity molecules in the adult rat hippocampus

IF 3.1 3区 医学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ghazaleh Ghamkhari Nejad, Francesca Mottarlini, Zohreh Tavassoli, Lucia Caffino, Fabio Fumagalli, Judith R. Homberg, Yaghoub Fathollahi
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Abstract

Structural neuroplasticity of the hippocampus in the form of neurogenesis and dendritic remodelling underlying morphine tolerance is still less known. Therefore, in this study, we aimed to assess whether unconditioned- and conditioned-morphine tolerance can trigger structural neuroplasticity in the dorsal and ventral parts of the adult male rat hippocampus. Evaluation of the levels of neurogenesis markers (Ki67 and DCX) by immunohistochemistry shows that conditioned morphine tolerance is sufficient to increase the baseline topographic level of hippocampal neurogenesis in adult rats. Dendritic spine visualization by Golgi staining shows that the behavioural testing paradigms themselves are sufficient to trigger the hippocampus subregion-specific changes in the dendritic remodelling along the apical dendrites of hippocampal CA1 pyramidal neurons and dentate granule cells in adult rats. Quantitative reverse transcription polymerase chain reaction of Bdnf, Trkb, Rac-1 and RhoA mRNA levels as pro-plasticity molecules, shows that the conditioned morphine tolerance is effective in changing Bdnf and RhoA mRNA levels in the ventral hippocampus of adult rats. In summary, we demonstrate that the acquisition of morphine tolerance promotes adult neurogenesis, dendritic remodelling and pro-plasticity molecules such as Bdnf/Trkb in the rat hippocampus. Indeed, the structural neuroplasticity of the hippocampus may underlie the newly formed aberrant memory and could provide the initial basis for understanding the neurobiological mechanisms of morphine-tolerance plasticity in the hippocampus.

Abstract Image

Abstract Image

条件性吗啡耐受促进成年大鼠海马的神经发生、树突重塑和促进可塑性的分子
以神经发生和树突重塑为形式的海马结构性神经可塑性是吗啡耐受性的基础,但人们对这种可塑性还知之甚少。因此,在本研究中,我们旨在评估非条件性吗啡耐受和条件性吗啡耐受是否能引发成年雄性大鼠海马背侧和腹侧的结构性神经可塑性。通过免疫组化对神经发生标记物(Ki67和DCX)水平的评估表明,条件吗啡耐受足以提高成年大鼠海马神经发生的基线地形水平。通过高尔基染色法观察树突棘显示,行为测试范式本身足以引发成年大鼠海马 CA1 锥体神经元和齿状颗粒细胞顶端树突重塑的海马亚区特异性变化。对促进可塑性分子 Bdnf、Trkb、Rac-1 和 RhoA mRNA 水平的定量反转录聚合酶链反应表明,条件吗啡耐受能有效改变成年大鼠腹侧海马的 Bdnf 和 RhoA mRNA 水平。总之,我们证明吗啡耐受的获得促进了成年大鼠海马的神经发生、树突重塑和促可塑性分子(如 Bdnf/Trkb)。事实上,海马的结构性神经可塑性可能是新形成的异常记忆的基础,并可为了解海马吗啡耐受可塑性的神经生物学机制提供初步依据。
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来源期刊
Addiction Biology
Addiction Biology 生物-生化与分子生物学
CiteScore
8.10
自引率
2.90%
发文量
118
审稿时长
6-12 weeks
期刊介绍: Addiction Biology is focused on neuroscience contributions and it aims to advance our understanding of the action of drugs of abuse and addictive processes. Papers are accepted in both animal experimentation or clinical research. The content is geared towards behavioral, molecular, genetic, biochemical, neuro-biological and pharmacology aspects of these fields. Addiction Biology includes peer-reviewed original research reports and reviews. Addiction Biology is published on behalf of the Society for the Study of Addiction to Alcohol and other Drugs (SSA). Members of the Society for the Study of Addiction receive the Journal as part of their annual membership subscription.
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