延髓头端腹内侧区
抑制性突触后电位
神经科学
弥漫性有害抑制控制
光遗传学
伤害
脊髓
痛觉超敏
有害刺激
伤害感受器
痛觉过敏
髓质
延髓
人口
核心
三叉神经脊核
生物
医学
化学
感觉系统
运动前神经元活动
脊髓丘脑束
慢性疼痛
神经病理性疼痛
延髓头端腹外侧区
中缝大核
平衡
桥
解剖
作者
Robert P. Ganley,Marília Sousa,Guangchen Ji,Matteo Ranucci,Camilla Beccarini,Kira Werder,Francesca Pietrafesa,Simon d’Aquin,Tugce Akyüz,Michèle Hubli,Petra Schweinhardt,Volker Neugebauer,Mark A. Hoon,Hendrik Wildner,Hanns Ulrich Zeilhofer
标识
DOI:10.1038/s41467-026-71289-z
摘要
Acute painful stimuli applied to one body site reduce pain at other sites. The circuit basis of this "pain-inhibits-pain" phenomenon, also known as diffuse noxious inhibitory control (DNIC) in animals or conditioned pain modulation (CPM) in humans, is largely unknown. Using anatomical and optogenetic circuit tracing, we identified a population of descending inhibitory neurons of the rostral ventromedial medulla (RVM) that densely and bilaterally innervate the spinal cord along its rostrocaudal axis. Activating these neurons reduced heat and cold sensitivity widely in healthy mice and caused similarly wide-spread antihyperalgesia in chronic pain models, while their silencing evoked mechanical allodynia and spontaneous pain-like behaviors. Noxious stimuli activated subsets of these neurons in the lateral paragigantocellularis nucleus (LPGi), which inhibited nociception upon chemogenetic reactivation. Spinally projecting inhibitory RVM neurons are hence ideally positioned to function as circuit elements of DNIC and CPM, while their dysfunction may contribute to wide-spread chronic pain syndromes.
科研通智能强力驱动
Strongly Powered by AbleSci AI