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Astrocytes and microglia are versatile glial cells that play vital roles in the central nervous system (CNS), encompassing responsibilities such as regulating neuronal function, contributing to CNS development, maintaining the blood-brain barrier, and participating in other critical processes1,2,3,4. Besides their role in maintaining homeostasis, these glial cells also play a pivotal part in injury and repair mechanisms. Microglia are well-known for their phagocytic, inflammatory, and migratory capabilities following insults or injuries5,6,7. Astrocyte responses in disease are equally diverse, encompassing contributions to inflammation, the formation of glial scars, and the compromise of the blood-brain barrier8,9. Although our understanding of the detrimental and reparative roles of microglia and astrocytes in the CNS has grown, the inherent heterogeneity in both their structure and function necessitates robust tools for studying them in various contexts.
Gaining further insight into the roles of microglia and astrocytes in health and disease requires a combined approach of in vivo and in vitro investigations. In vivo techniques leverage the intricate crosstalk between glial cells and neurons within the CNS, while in vitro methodologies prove valuable when assessing single-cell functions or responses under specific stimuli. Each method offers unique advantages; in vitro studies are essential for understanding the specific roles of these cell types without direct or indirect input from neighboring cells. Additionally, in vitro assays utilizing immortal cell lines present certain benefits, including the ability to proliferate indefinitely, cost-efficiency, and ease of maintenance. However, it's important to note that primary cells more closely mimic normal physiological responses compared to cell lines. This physiological relevance is crucial in functional assays and transcriptomic analyses.
One of the challenges in obtaining primary cells, particularly from the adult mouse spinal cord, lies in the quantity and viability of the samples. The adult spinal cord, being smaller than the brain and containing a significant amount of myelin, poses unique difficulties. While there are several published protocols detailing the isolation of pure, viable glial cells from neonatal animals or the adult mouse brain10,11,12,13, these methodologies may not be suitable for studying diseases and injuries specific to the spinal cord. In this protocol, we offer a comprehensive procedure to efficiently isolate pure, viable microglia and astrocytes from the adult mouse spinal cord, facilitating downstream applications in cell culture and transcriptomic analyses. This protocol has been successfully employed to isolate these cells from adult mice aged 10 weeks to 5 months, demonstrating its utility across various contexts, including studies involving conditional knockout mice, drug responses, developmental research, and age-related models.