伏隔核
不利影响
药理学
止痛药
医学
兴奋剂
内在活性
受体
上瘾
多巴胺
神经药理学
吗啡
下调和上调
功能选择性
神经科学
药品
致幻剂
动物研究
μ-阿片受体
神经递质
呼吸系统
神经传递
麻醉
作者
Jean Gomez,Emilya Ventriglia,Zachary J. Frangos,Agnieszka Sulima,Michael J. Robertson,M. Sacco,Reece C. Budinich,Ilinca M. Giosan,Tongzhen Xie,Óscar Solís,Anna E. Tischer,Jennifer M. Bossert,Kiera E. Caldwell,Hannah Bonbrest,Amelie Essmann,Zelai Garçon-Poca,Shinbe Choi,Michael R. Noya,Feonil G. Limiac,Ali Arce
出处
期刊:Nature
[Nature Portfolio]
日期:2026-04-01
被引量:1
标识
DOI:10.1038/s41586-026-10299-9
摘要
Developing safe and effective pain medications is an ongoing challenge for human health. Agonists for the µ-opioid receptor (MOR) are essential pain medications, but their high intrinsic efficacy also induces adverse side effects, including respiratory depression, constipation, tolerance, dependence, withdrawal and addiction1-7. Strategies to limit adverse effects traditionally include developing MOR agonists that have low intrinsic efficacy or that preferentially activate G-protein signalling over β-arrestin signalling8. Here we identify a novel MOR agonist with supramaximal intrinsic efficacy and a unique pharmacological profile that produced effective analgesia in rodents with minimal adverse effects. N-desethyl-fluornitrazene (DFNZ) was derived from a class of synthetic benzimidazole opioids called nitazenes. DFNZ has impaired brain penetrance, a unique spatiotemporal MOR cellular signalling profile, and diminished efficacy at the MOR-galanin 1 receptor (GAL1) heteromer. DFNZ does not induce respiratory depression, tolerance or MOR downregulation after repeated exposure. Compared with other MOR agonists, DFNZ has limited effects on dopamine neurotransmission in nucleus accumbens and weaker reinforcing effects in the drug self-administration procedure. These results provide novel insights about MOR and nitazene pharmacology, have important implications for pain and addiction treatment, and challenge the prevailing dogma that high-efficacy MOR agonists cannot constitute safe and effective therapeutic agents.
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