Active Bones, Joints & Muscles Brain & Nervous System

ENDASCOP: Establishing Neuronal Drivers And the Spinal Circuitry of Osteoarthritis Pain

In plain English

AI plain-English summary

Knee pain from osteoarthritis is driven by specific nerve cells that become hyperexcitable, and shutting them down with a chemical switch can normalise the pain in mice. This matters because osteoarthritis is a common degenerative joint condition that causes chronic pain, yet the spinal cord circuitry that processes this pain is poorly understood. Researchers know little about which sensory neurons carry the pain signal from the knee to the spinal cord, or how that signal is relayed to the brain. Without that knowledge, treatments remain blunt instruments—painkillers or joint replacement—rather than targeted therapies. The team will use a mouse model of knee osteoarthritis to identify three distinct populations of sensory neurons involved in pain, then map the spinal circuits they activate. They will also confirm their findings in human tissue samples. If successful, this work could reveal specific molecular targets for new pain treatments that block the pain signal at its source, without the side effects of current drugs. The research is fundamental science—it will not produce a drug tomorrow—but understanding the neural wiring of joint pain is a necessary step toward designing therapies that treat the cause, not just the symptom.

View original technical description
Osteoarthritis (OA) is a common degenerative condition that frequently affects the knee joint and results in chronic pain. Knee pain is sensed when sensory neurones innervating the joint relay this information into the spinal cord, from where it is propagated to the brain leading to perception. Our understanding of the neuronal substrate driving chronic knee pain is limited, with a distinct lack of knowledge of the spinal circuitry underlying normal or chronic joint pain. Our preliminary data in the destabilisation of the medial meniscus (DMM) model of knee pathology shows that knee-innervating sensory neurones become hyperexcitable as pain behaviour develops, with single-cell RNA-sequencing analysis of these neurones identifying three distinct populations involved in this process. Furthermore, we find that chemogenetic inhibition of knee-innervating sensory neurones normalises joint pain. In this project, we will establish the DMM model in transgenic mouse strains and use viral constructs to both determine the roles of distinct primary afferent populations in OA pain and define the spinal circuitry involved in this condition. Human tissue samples will then be used to replicate our studies in mice, providing a means for understanding how OA pain is generated in patients and opening the door to novel therapeutic treatments.

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Researchers

David Hughes (EPMC Awardee)Ewan Smith (EPMC Awardee)

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Original classification

Discovery Award

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