Related Experiment Video
Updated: Jan 29, 2026

Studying the Coding Profiles of Somatic Stimulation on Cardiac-locked Neuronal Responses in the Rat Spinal Dorsal Horn
Published on: May 23, 2025
LRP1 deficiency in microglia blocks neuro-inflammation in the spinal dorsal horn and neuropathic pain processing
Coralie Brifault1,2, HyoJun Kwon2, Wendy M Campana2,3
1Department of Pathology, University of California San Diego, La Jolla, California.
Abstract:
Following injury to the peripheral nervous system (PNS), microglia in the spinal dorsal horn (SDH) become activated and contribute to the development of local neuro-inflammation, which may regulate neuropathic pain processing. The molecular mechanisms that control microglial activation and its effects on neuropathic pain remain incompletely understood. We deleted the gene encoding the plasma membrane receptor, LDL Receptor-related Protein-1 (LRP1), conditionally in microglia using two distinct promoter-Cre recombinase systems in mice. LRP1 deletion in microglia blocked development of tactile allodynia, a neuropathic pain-related behavior, after partial sciatic nerve ligation (PNL). LRP1 deletion also substantially attenuated microglial activation and pro-inflammatory cytokine expression in the SDH following PNL. Because LRP1 shedding from microglial plasma membranes generates a highly pro-inflammatory soluble product, we demonstrated that factors which activate spinal cord microglia, including lipopolysaccharide (LPS) and colony-stimulating factor-1, promote LRP1 shedding. Proteinases known to mediate LRP1 shedding, including ADAM10 and ADAM17, were expressed at increased levels in the SDH after PNL. Furthermore, LRP1-deficient microglia in cell culture expressed significantly decreased levels of interleukin-1β and interleukin-6 when treated with LPS. We conclude that in the SDH, microglial LRP1 plays an important role in establishing and/or amplifying local neuro-inflammation and neuropathic pain following PNS injury. The responsible mechanism most likely involves proteolytic release of LRP1 from the plasma membrane to generate a soluble product that functions similarly to pro-inflammatory cytokines in mediating crosstalk between cells in the SDH and in regulating neuropathic pain.
Insights
Deleting the LDL Receptor-related Protein-1 (LRP1) in microglia prevents neuropathic pain after nerve injury. This targeted deletion reduces neuro-inflammation and associated pain behaviors by controlling microglial activation.
Area of Science:
- Neuroscience
- Immunology
- Pain Research
Background:
- Peripheral nervous system (PNS) injury triggers microglial activation in the spinal dorsal horn (SDH), contributing to neuro-inflammation and neuropathic pain.
- The precise molecular mechanisms governing microglial activation and their role in pain processing are not fully understood.
Purpose of the Study:
- To investigate the role of LDL Receptor-related Protein-1 (LRP1) in microglia during the development of neuropathic pain following PNS injury.
- To elucidate the mechanisms by which LRP1 influences microglial activation and neuro-inflammation in the SDH.
Main Methods:
- Conditional deletion of the LRP1 gene in mouse microglia using two distinct Cre-lox systems.
- Assessment of neuropathic pain behavior (tactile allodynia) after partial sciatic nerve ligation (PNL).
- Analysis of microglial activation markers and pro-inflammatory cytokine expression in the SDH.
Main Results:
- LRP1 deletion in microglia abolished tactile allodynia following PNL.
- Microglial LRP1 deficiency significantly reduced microglial activation and pro-inflammatory cytokine expression in the SDH.
- Factors activating microglia, such as LPS, promote LRP1 shedding, which is mediated by ADAM10 and ADAM17.
Conclusions:
- Microglial LRP1 is crucial for establishing and amplifying neuro-inflammation and neuropathic pain after PNS injury.
- Proteolytic shedding of LRP1 from microglia generates a soluble product that contributes to neuro-inflammation and pain signaling in the SDH.
Related Concept Videos
Inflammation
Spinal Cord: Information Processing
Sensory Information Processing
Sensory information processing begins at the sensory receptors located in the skin and other tissues, which detect somatic sensory stimuli such as touch, temperature, or pain. These receptors function as catalysts, initiating...
Pain
Block Diagram Reduction
The first step in this process is the identification and relocation of a branch point. A branch point, where a...
Elements of Block Diagrams
A block diagram typically includes essential elements such as comparators, blocks, and feedback loops. Each of these elements...
Analgesia and Pain Management

