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Functional and anatomical analyses of active spinal circuits in a mouse model of chronic pain

神经科学 伤害 脊髓 痛觉过敏 痛觉超敏 刺激(心理学) 医学 慢性疼痛 人口 伤害感受器 心理学 受体 内科学 环境卫生 心理治疗师
作者
Katarzyna M. Targowska‐Duda,Darian Peters,Jason L. Marcus,Gilles Zribi,Lawrence Toll,Akihiko Ozawa
出处
期刊:Pain [Lippincott Williams & Wilkins]
卷期号:165 (3): 685-697 被引量:1
标识
DOI:10.1097/j.pain.0000000000003068
摘要

Abstract Decades of efforts in elucidating pain mechanisms, including pharmacological, neuroanatomical, and physiological studies have provided insights into how nociceptive information transmits from the periphery to the brain and the locations receiving nociceptive signals. However, little is known about which specific stimulus-dependent activated neurons, amongst heterogeneous neural environments, discriminatively evoke the cognate pain behavior. We here shed light on the population of neurons in the spinal cord activated by a painful stimulus to identify chronic pain-dependent activated neuronal subsets using Fos2A-iCreER (TRAP2) mice. We have found a large number of neurons activated by a normally nonpainful stimulus in the spinal cord of spinal nerve–ligated mice, compared with sham. Neuronal activation was observed in laminae I and II outer under heat hyperalgesia. A large number of neurons in laminae II inner were activated in both mechanical allodynia and heat hyperalgesia conditions, while mechanical allodynia tends to be the only stimulus that activates cells at lamina II inner dorsal region. Neuroanatomical analyses using spinal cell markers identified a large number of spinal inhibitory neurons that are recruited by both mechanical allodynia and heat hyperalgesia. Of interest, spinal neurons expressing calretinin, calbindin, and parvalbumin were activated differently with distinct pain modalities (ie, mechanical allodynia vs heat hyperalgesia). Chemogenetic inhibition of those activated neurons significantly and specifically reduced the response to the pain stimulus associated with the stimulus modality originally given to the animals. These findings support the idea that spinal neuronal ensembles underlying nociceptive transmission undergo dynamic changes to regulate selective pain responses.

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