Aging spinal cord microglia become phenotypically heterogeneous and preferentially target motor neurons and their synapses

被引:1
|
作者
Castro, Ryan W. [1 ]
Lopes, Mikayla C. [2 ]
De Biase, Lindsay M. [3 ]
Valdez, Gregorio [4 ,5 ]
机构
[1] Brown Univ, Neurosci Grad Program, Providence, RI 02903 USA
[2] Brown Univ, Mol Biol Cell Biol & Biochem Grad Program, Providence, RI 02903 USA
[3] UCLA, David Geffen Sch Med, Dept Physiol, Los Angeles, CA USA
[4] Brown Univ, Dept Mol Biol Cell Biol & Biochem, 70 Ship St, Providence, RI 02903 USA
[5] Brown Univ, Robert J & Nancy D Carney Inst Brain Sci, Ctr Translat Neurosci, Providence, RI 02903 USA
关键词
aging; microglia; motor neuron; spinal cord; synapse; DYSTROPHIC MICROGLIA; ACTIVATION; DISEASE; BRAIN; CELLS; MAINTENANCE; MODEL;
D O I
10.1002/glia.24470
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Microglia have been found to acquire unique region-dependent deleterious features with age and diseases that contribute to neuronal dysfunction and degeneration in the brain. However, it remains unknown whether microglia exhibit similar phenotypic heterogeneity in the spinal cord. Here, we performed a regional analysis of spinal cord microglia in 3-, 16-, 23-, and 30-month-old mice. Using light and electron microscopy, we discovered that spinal cord microglia acquire an increasingly activated phenotype during the course of aging regardless of regional location. However, aging causes microglia in the ventral but not dorsal horn to lose their spatial organization. Aged ventral horn microglia also aggregate around the somata of motor neurons and increase their contacts with motor synapses, which have been shown to be lost with age. These findings suggest that microglia may affect the ability of motor neurons to receive and relay motor commands during aging. To generate additional insights about aging spinal cord microglia, we performed RNA-sequencing on FACS-isolated microglia from 3-, 18-, 22-, and 29-month-old mice. We found that spinal cord microglia acquire a similar transcriptional identity as those in the brain during aging that includes altered expression of genes with roles in microglia-neuron interactions and inflammation. By 29 months of age, spinal cord microglia exhibit additional and unique transcriptional changes known and predicted to cause senescence and to alter lysosomal and ribosomal regulation. Altogether, this work provides the foundation to target microglia to ameliorate aged-related changes in the spinal cord, and particularly on the motor circuit. Spinal cord (SC) microglia display age-related regional heterogeneity.Aged SC microglia cluster around motor neurons and contact theirexcitatory synaptic inputs.Aged SC microglia upregulate genes related to neuronal interactions andinflammation.image
引用
收藏
页码:206 / 221
页数:16
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