Division of Radiation Health, University of Arkansas for Medical Sciences; Department of Pharmaceutical Sciences, University of Arkansas for Medical Sciences; Neurobiology & Developmental Sciences, University of Arkansas for Medical Sciences;
Division of Radiation Health, University of Arkansas for Medical Sciences; Department of Pharmaceutical Sciences, University of Arkansas for Medical Sciences; Neurobiology & Developmental Sciences, University of Arkansas for Medical Sciences.
J Vis Exp. 2021 Oct 21(176). doi: 10.3791/63007.
This neural dissociation protocol (an adaptation of the protocol accompanying a commercial adult brain dissociation kit) optimizes tissue processing in preparation for detailed downstream analysis such as flow cytometry or single-cell sequencing. Neural dissociation can be conducted via mechanical dissociation (such as using filters, chopping techniques, or pipette trituration), enzymatic digestion, or a combination thereof. The delicate nature of neuronal cells can complicate efforts to obtain the highly viable, true single-cell suspension with minimal cellular debris that is required for single-cell analysis. The data demonstrate that this combination of automated mechanical dissociation and enzymatic digestion consistently yields a highly viable (>90%) single-cell suspension, overcoming the aforementioned difficulties. While a few of the steps require manual dexterity, these steps lessen sample handling and potential cell loss. This manuscript details each step of the process to equip other laboratories to successfully dissociate small quantities of neural tissue in preparation for downstream analysis.
本神经分离方案(对商业成人脑解离试剂盒配套方案的改编)优化了组织处理过程,为后续分析(如流式细胞术或单细胞测序)做好准备。神经分离可以通过机械解离(如使用过滤器、切割技术或移液器匀浆)、酶消化或两者的组合来进行。神经元细胞的精细性质可能会使获得高度存活、真正的单细胞悬液变得复杂,单细胞悬液中需要最小的细胞碎片,这是单细胞分析所必需的。数据表明,自动化机械解离和酶消化的这种组合始终能产生高度存活(>90%)的单细胞悬液,克服了上述困难。虽然有几个步骤需要手动灵巧性,但这些步骤减少了样品处理和潜在的细胞损失。本手稿详细描述了该过程的每一步,使其他实验室能够成功地分离小量的神经组织,为下游分析做准备。