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Nippert, A. R.

Publications and source records attributed to Nippert, A. R..

2 recordsLinked to original sources

Ethological profiling of pain and analgesia in a mouse model of complex regional pain syndrome.

Complex regional pain syndrome (CRPS) is a form of chronic post-injury pain affecting the extremities. The mouse tibial fracture- cast model was developed to enable preclinical study of CRPS mechanisms and guide condition-specific drug development. Given the inherent limitations of reflex pain measures in mice, we sought to characterize pain-like behaviors in this model more holistically. We evaluated spontaneous and evoked pain and naturalistic behaviors after tibial fracture-cast injury in male mice in neutral and aversive environments using LabGym. Here, we report a unique ethological signature of pain in injured mice characterized by reflexive allodynia, thermal hyperalgesia, frequent grooming and reduced rearing in neutral and aversive environments, and decreased paw withdrawal and increased paw licking in an aversive environment. As proof-of-concept, we also leveraged this holistic behavioral evaluation for drug screening by characterizing the peripheral versus central effects of targeting alpha-2 receptors (2-AR) in the tibial fracture-cast model. We evaluated the impact of systemic delivery of dexmedetomidine (DEX), a selective 2-AR agonist, with or without antagonists, on holistic behavioral metrics in injured male mice. We found that DEX reduced mechanical allodynia primarily via central 2-ARs. DEX also decreased motion metrics, grooming and rearing in an open field, and distinctly affected the quality and quantity of grooming in an aversive environment, and this effect was not suppressed by systemic 2-AR antagonists. Ultimately, this study holistically captures pain-related behaviors and provides a detailed characterization of the relative contributions of peripheral and central 2-ARs to alpha2-mediated analgesia in male mice after tibial fracture-cast injury.

neuroscience↗

Newly repopulated spinal cord microglia exhibit a unique transcriptome and coincide with sex-independent pain resolution

Microglia contribute to the initiation of pain, however, a translationally viable approach addressing how or when to modulate these cells remains elusive. We used a targeted, inducible, genetic microglial depletion strategy at both acute and acute-to-chronic transition phases in the clinically-relevant tibial fracture/casting pain model to determine the contribution of microglia to the initiation and maintenance of pain. We observed complete resolution of pain after transient microglial depletion at the acute-to-chronic phase, which coincided with the timeframe of full repopulation of microglia. These repopulated microglia were morphologically distinct from control microglia, signifying they may exhibit a unique transcriptome. RNA sequencing of repopulated spinal cord microglia identified genes of interest using weighted gene co-expression network analysis (WGCNA). We intersected these genes with a newly-generated single nuclei microglial dataset from human spinal cord dorsal horn and identified human-relevant genes that may ultimately promote pain resolution after injury. This work presents a novel approach to gene discovery in pain and provides comprehensive datasets for the development of future microglial-targeted therapeutics.

neuroscience↗