D1多巴胺受体Flpo基因敲入小鼠的产生与验证

IF 2.7 4区 医学 Q2 BIOCHEMICAL RESEARCH METHODS Journal of Neuroscience Methods Pub Date : 2024-12-17 DOI:10.1016/j.jneumeth.2024.110345
Alexis M. Oppman , William J. Paradee , Nandakumar S. Narayanan , Young-cho Kim
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引用次数: 0

摘要

背景:多巴胺是多种脑功能的强大神经调节剂,包括运动、动机、奖励和认知。d1型多巴胺受体(D1DRs)是大脑中最普遍表达的多巴胺受体。表达D1DRs的神经元是异质的,涉及多个亚群。虽然这些神经元可以用bac转基因啮齿动物进行研究,但这些模型有一些局限性,特别是当考虑到它们与条件或交叉遗传工具的整合时。新方法:我们开发了一种新的Drd1- p2a -Flpo (Drd1-Flpo)小鼠系,其中Flpo基因在Drd1基因之后被CRISPR-Cas9敲入。我们通过免疫组织化学和原位杂交证实了D1DR+神经元特异性的Flp表达和功能,验证了Drd1-Flpo系。与现有方法的比较:Drd1-Flpo系是利用交叉遗传工具研究D1DR+神经元亚群的有用资源。结论:我们证实了Drd1-Flpo驱动的全脑GFP表达,这表明该小鼠系可能对许多脑区域的全面解剖和功能研究有用。通过为研究D1DR+神经元及其亚群在脑部疾病中的不同作用提供新的工具,Drd1-Flpo模型将推进多巴胺能信号的研究。
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Generation and validation of a D1 dopamine receptor Flpo knock-in mouse

Background

Dopamine is a powerful neuromodulator of diverse brain functions, including movement, motivation, reward, and cognition. D1-type dopamine receptors (D1DRs) are the most prevalently expressed dopamine receptors in the brain. Neurons expressing D1DRs are heterogeneous and involve several subpopulations. Although these neurons can be studied with BAC-transgenic rodents, these models have some limitations especially when considering their integration with conditional or intersectional genetic tools.

New Method

We developed a novel Drd1-P2A-Flpo (Drd1-Flpo) mouse line in which the Flpo gene was knocked in immediately after the Drd1 gene using CRISPR-Cas9. We validated the Drd1-Flpo line by confirming Flp expression and functionality specific to D1DR+ neurons with immunohistochemistry and in situ hybridization.

Comparison with Existing Methods

The Drd1-Flpo line is a useful resource for studying subpopulations of D1DR+ neurons with intersectional genetic tools.

Conclusions

We demonstrated brain-wide GFP expression driven by Drd1-Flpo, suggesting that this mouse line may be useful for comprehensive anatomical and functional studies in many brain regions. The Drd1-Flpo model will advance the study of dopaminergic signaling by providing a new tool for investigating the diverse roles of D1DR+ neurons and their subpopulations in brain disease.
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来源期刊
Journal of Neuroscience Methods
Journal of Neuroscience Methods 医学-神经科学
CiteScore
7.10
自引率
3.30%
发文量
226
审稿时长
52 days
期刊介绍: The Journal of Neuroscience Methods publishes papers that describe new methods that are specifically for neuroscience research conducted in invertebrates, vertebrates or in man. Major methodological improvements or important refinements of established neuroscience methods are also considered for publication. The Journal''s Scope includes all aspects of contemporary neuroscience research, including anatomical, behavioural, biochemical, cellular, computational, molecular, invasive and non-invasive imaging, optogenetic, and physiological research investigations.
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