Henley Beverley M, Cohen Bruce N, Kim Charlene H, Gold Heather D, Srinivasan Rahul, McKinney Sheri, Deshpande Purnima, Lester Henry A
Division of Biology and Biological Engineering, California Institute of Technology (Caltech);
Division of Biology and Biological Engineering, California Institute of Technology (Caltech).
J Vis Exp. 2017 Feb 10(120):54981. doi: 10.3791/54981.
In Parkinson's Disease (PD) there is widespread neuronal loss throughout the brain with pronounced degeneration of dopaminergic neurons in the SNc, leading to bradykinesia, rigidity, and tremor. The identification of living dopaminergic neurons in primary Ventral Mesencephalic (VM) cultures using a fluorescent marker provides an alternative way to study the selective vulnerability of these neurons without relying on the immunostaining of fixed cells. Here, we isolate, dissociate, and culture mouse VM neurons for 3 weeks. We then identify dopaminergic neurons in the cultures using eGFP fluorescence (driven by a Tyrosine Hydroxylase (TH) promoter). Individual neurons are harvested into microcentrifuge tubes using glass micropipettes. Next, we lyse the harvested cells, and conduct cDNA synthesis and transposon-mediated "tagmentation" to produce single cell RNA-Seq libraries. After passing a quality-control check, single-cell libraries are sequenced and subsequent analysis is carried out to measure gene expression. We report transcriptome results for individual dopaminergic and GABAergic neurons isolated from midbrain cultures. We report that 100% of the live TH-eGFP cells that were harvested and sequenced were dopaminergic neurons. These techniques will have widespread applications in neuroscience and molecular biology.
在帕金森病(PD)中,大脑中存在广泛的神经元丢失,黑质致密部(SNc)的多巴胺能神经元出现明显退化,导致运动迟缓、僵硬和震颤。使用荧光标记物在原代中脑腹侧(VM)培养物中鉴定活的多巴胺能神经元,为研究这些神经元的选择性易损性提供了一种替代方法,而无需依赖固定细胞的免疫染色。在这里,我们分离、解离并培养小鼠VM神经元3周。然后,我们使用eGFP荧光(由酪氨酸羟化酶(TH)启动子驱动)在培养物中鉴定多巴胺能神经元。使用玻璃微量移液器将单个神经元收集到微量离心管中。接下来,我们裂解收集的细胞,并进行cDNA合成和转座子介导的“标签化”以产生单细胞RNA-Seq文库。通过质量控制检查后,对单细胞文库进行测序,并进行后续分析以测量基因表达。我们报告了从中脑培养物中分离出的单个多巴胺能神经元和GABA能神经元的转录组结果。我们报告说,收获并测序的活的TH-eGFP细胞中有100%是多巴胺能神经元。这些技术将在神经科学和分子生物学中得到广泛应用。