Single-neuron projectome-guided analysis reveals the neural circuit mechanism underlying endogenous opioid antinociception

Author:

Dou Yan-Nong1,Liu Yuan123,Ding Wen-Qun14,Li Qing1,Zhou Hua1,Li Ling14,Zhao Meng-Ting5,Li Zheng-Yi-Qi6,Yuan Jing57,Wang Xiao-Fei1,Zou Wang-Yuan6ORCID,Li Anan57,Sun Yan-Gang1

Affiliation:

1. Institute of Neuroscience, Key Laboratory of Brain Cognition and Brain-Inspired Intelligence Technology, CAS Center for Excellence in Brain Science & Intelligence Technology, Chinese Academy of Sciences , Shanghai 200031 , China

2. Department of Biology, School of Life Science and Technology, ShanghaiTech University , Shanghai 201210 , China

3. Lingang Laboratory , Shanghai 200031 , China

4. University of Chinese Academy of Sciences , Beijing 100049 , China

5. Britton Chance Center for Biomedical Photonics, Wuhan National Laboratory for Optoelectronics, MoE Key Laboratory for Biomedical Photonics, Huazhong University of Science and Technology , Wuhan 430074 , China

6. Department of Anesthesiology, Xiangya Hospital, Central South University , Changsha 410008 , China

7. HUST-Suzhou Institute for Brainsmatics, JITRI , Suzhou 215123 , China

Abstract

ABSTRACT Endogenous opioid antinociception is a self-regulatory mechanism that reduces chronic pain, but its underlying circuit mechanism remains largely unknown. Here, we showed that endogenous opioid antinociception required the activation of mu-opioid receptors (MORs) in GABAergic neurons of the central amygdala nucleus (CEA) in a persistent-hyperalgesia mouse model. Pharmacogenetic suppression of these CEAMOR neurons, which mimics the effect of MOR activation, alleviated the persistent hyperalgesia. Furthermore, single-neuron projection analysis revealed multiple projectome-based subtypes of CEAMOR neurons, each innervating distinct target brain regions. We found that the suppression of axon branches projecting to the parabrachial nucleus (PB) of one subtype of CEAMOR neurons alleviated persistent hyperalgesia, indicating a subtype- and axonal-branch-specific mechanism of action. Further electrophysiological analysis revealed that suppression of a distinct CEA-PB disinhibitory circuit controlled endogenous opioid antinociception. Thus, this study identified the central neural circuit that underlies endogenous opioid antinociception, providing new insight into the endogenous pain modulatory mechanisms.

Funder

National Natural Science Foundation of China

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Oxford University Press (OUP)

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