小鼠腹侧被盖区使用芬太尼的转录特征。

IF 3.1 3区 医学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Addiction Biology Pub Date : 2024-05-12 DOI:10.1111/adb.13403
Megan E. Fox, Annalisa Montemarano, Alexandria E. Ostman, Mahashweta Basu, Brian Herb, Seth A. Ament, Logan D. Fox
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引用次数: 0

摘要

芬太尼等合成类阿片造成了绝大多数与阿片类药物相关的过量死亡,但人们对芬太尼的使用仍普遍缺乏研究。与其他具有滥用潜力的物质一样,阿片类药物会对大脑奖赏回路(包括腹侧被盖区(VTA)的神经元)造成持久的分子适应。VTA包含许多细胞类型,它们在阿片类药物的使用和复发中发挥着不同的作用;然而,人们还不知道芬太尼经历如何改变特定亚型的转录景观。在这里,我们进行了单核 RNA 测序,以研究芬太尼经验小鼠的转录程序。雌雄 C57/BL6 小鼠自行静脉注射芬太尼(1.5 μg/kg/infusion )或生理盐水 10 天。禁欲24小时后,分离VTA细胞核并准备在10×平台上进行测序。我们确定了不同细胞类型的基因表达模式。在多巴胺神经元中,我们发现参与生长激素信号转导的基因表达丰富。在多巴胺-谷氨酸-GABA 组合神经元和一些 GABA 神经元中,我们发现了参与 Pi3k-Akt 信号转导的富集基因。在谷氨酸神经元中,我们发现了参与胆碱能信号传导的基因富集。我们确定了每个神经元群中差异表达基因的转录调节因子,包括下调的转录抑制因子 Bcl6 和上调的转录因子 Tcf4。我们还将小鼠 VTA 中发现的芬太尼诱导的基因表达变化与已发表的大鼠大量 VTA 数据集进行了比较,发现与 GABA 能信号传导和细胞外基质相互作用相关的基因存在重叠。总之,我们提供了芬太尼自我给药如何改变小鼠 VTA 转录景观的全面图景,为未来的机理研究奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Transcriptional signatures of fentanyl use in the mouse ventral tegmental area

Synthetic opioids such as fentanyl contribute to the vast majority of opioid-related overdose deaths, but fentanyl use remains broadly understudied. Like other substances with misuse potential, opioids cause lasting molecular adaptations to brain reward circuits, including neurons in the ventral tegmental area (VTA). The VTA contains numerous cell types that play diverse roles in opioid use and relapse; however, it is unknown how fentanyl experience alters the transcriptional landscape in specific subtypes. Here, we performed single nuclei RNA sequencing to study transcriptional programs in fentanyl-experienced mice. Male and female C57/BL6 mice self-administered intravenous fentanyl (1.5 μg/kg/infusion) or saline for 10 days. After 24 h abstinence, VTA nuclei were isolated and prepared for sequencing on the 10× platform. We identified different patterns of gene expression across cell types. In dopamine neurons, we found enrichment of genes involved in growth hormone signalling. In dopamine-glutamate-GABA combinatorial neurons, and some GABA neurons, we found enrichment of genes involved in Pi3k-Akt signalling. In glutamate neurons, we found enrichment of genes involved in cholinergic signalling. We identified transcriptional regulators for the differentially expressed genes in each neuron cluster, including downregulated transcriptional repressor Bcl6, and upregulated transcription factor Tcf4. We also compared the fentanyl-induced gene expression changes identified in mouse VTA with a published rat dataset in bulk VTA, and found overlap in genes related to GABAergic signalling and extracellular matrix interaction. Together, we provide a comprehensive picture of how fentanyl self-administration alters the transcriptional landscape of the mouse VTA that serves as the foundation for future mechanistic studies.

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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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