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The defining characteristic of vertebrates is the vertebral column or spine, in which the notochord has been replaced by a sequence of segmented bones called vertebrae, divided by intervertebral discs. This succession of osseous material shapes the spinal canal, a cavity that encloses and protects the spinal cord1. In the genus Rodentia, the spine is usually formed by seven cervical vertebrae, thirteen thoracic vertebrae, six lumbar vertebrae, and a variable number of caudal vertebrae2,3. The length of the spinal cord is similar to that of the spine, and the terminal filum is a non-nervous structure that anchors the spinal cord to the sacrum. Additionally, nerve fibers exit through the intervertebral foramen1.
The development and proper function of the central nervous system in mammals critically depend on the activity of the nervous system's resident macrophages, called microglia4. Although microglia were initially described as brain resident phagocytes, recent research has attributed many dynamic functions to these cells5,6. Microglia's size ranges from 7 to 10 µm in homeostasis; they are considered among the most versatile cells in the body and can adapt morphologically and functionally to their constantly changing environment7. These cells exhibit high heterogeneity during both the embryonic and adult stages8,9, while in the adult stage, they also display complex functional heterogeneity based on their spatiotemporal context10. The heterogeneity and multiple functions of microglia allow for differential gene expression and behavior in the spinal cord and brain. It has been shown that CD11b, CD45, CD86, and CCR9 expression is higher in the spinal cord compared to the brain8,9.
Multiple protocols exist for cerebral microglia isolation11,12; however, only a few exist for spinal cord microglia13,14. Optimizing a method for purifying microglia from the spinal cord facilitates the development of multiple studies focused on discovering microglia physiology. This protocol aims to describe a simple and highly reproducible extraction of the mouse spinal cord and the purification of microglia (Figure 1).