环状RNA在药物寻找表型中的调控和功能

IF 2.6 3区 医学 Q3 NEUROSCIENCES Molecular and Cellular Neuroscience Pub Date : 2023-06-01 DOI:10.1016/j.mcn.2023.103841
Stephanie E. Sillivan, Aria Gillespie
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引用次数: 2

摘要

在过去的十年里,药物过量在美国急剧增加,现在是意外死亡的主要原因。为了开发有效的治疗方案来降低药物消耗和过量风险,了解药物暴露引起的神经生物学变化至关重要。长期全身暴露于所有药物类别,包括阿片类药物、精神刺激剂、尼古丁、大麻和酒精,会在中枢神经系统内引发深刻的分子神经适应,这可能会揭示这些物质对脑细胞产生持久影响的关键信息。信使核糖核酸(信使核糖核酸)的转录组分析已经确定了暴露于各种药物导致的大脑中的基因模式。然而,信使核糖核酸只占细胞内核糖核酸的一小部分,药物暴露也会影响其他研究不足的核糖核酸,尤其是环状核糖核酸。环状RNA(circRNAs)是一种天然存在的RNA物种,由mRNA加工过程中的背剪接事件形成,并在神经系统中富集。circRNA是一类多效性RNA,对细胞功能有不同的影响,其假定功能包括调节mRNA转录、蛋白质翻译、微小RNA吸附和RNA结合蛋白的固定。最近的研究表明,circRNA可以调节认知,并在大脑中对药物暴露的反应进行调节,但很少有研究探讨circRNA对药物寻求表型的贡献。在这篇综述中,我们将概述circRNA在细胞中的功能机制,以强调药物诱导的circRNA失调如何影响介导药物寻求行为的分子底物,以及目前报道药物诱导的大脑中circRNA的失调的研究。此外,我们将讨论如何将circRNA生物学原理应用于药物暴露模型中的circRNA研究,并寻求进一步深入了解成瘾的神经生物学。
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Circular RNA regulation and function in drug seeking phenotypes

Drug overdoses have increased dramatically in the United States over the last decade where they are now the leading cause of accidental death. To develop efficient therapeutic options for decreasing drug consumption and overdose risk, it is critical to understand the neurobiological changes induced by drug exposure. Chronic systemic exposure to all drug classes, including opioids, psychostimulants, nicotine, cannabis, and alcohol, induces profound molecular neuroadaptations within the central nervous system that may reveal crucial information about the lasting effects that these substances impart on brain cells. Transcriptome analyses of messenger RNAs (mRNAs) have identified gene patterns in the brain that result from exposure to various classes of drugs. However, mRNAs represent only a small fraction of the RNA within the cell, and drug exposure also impacts other classes of RNA that are largely understudied, especially circular RNAs. Circular RNAs (circRNAs) are a naturally occurring RNA species formed from back-splicing events during mRNA processing and are enriched in the nervous system. circRNAs are a pleiotropic class of RNAs and have a diverse impact on cellular function, with putative functions including regulation of mRNA transcription, protein translation, microRNA sponging, and sequestration of RNA-binding proteins. Recent studies have demonstrated that circRNAs can modulate cognition and are regulated in the brain in response to drug exposure, yet very few studies have explored the contribution of circRNAs to drug seeking phenotypes. In this review, we will provide an overview of the mechanisms of circRNA function in the cell to highlight how drug-induced circRNA dysregulation may impact the molecular substrates that mediate drug seeking behavior and the current studies that have reported drug-induced dysregulation of circRNAs in the brain. Furthermore, we will discuss how principles of circRNA biology can be adapted to study circRNAs in models of drug exposure and seek to provide further insight into the neurobiology of addiction.

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来源期刊
CiteScore
5.60
自引率
0.00%
发文量
65
审稿时长
37 days
期刊介绍: Molecular and Cellular Neuroscience publishes original research of high significance covering all aspects of neurosciences indicated by the broadest interpretation of the journal''s title. In particular, the journal focuses on synaptic maintenance, de- and re-organization, neuron-glia communication, and de-/regenerative neurobiology. In addition, studies using animal models of disease with translational prospects and experimental approaches with backward validation of disease signatures from human patients are welcome.
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