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Membrane Permeability Drives the Extreme Potency of Fentanyl

化学 效力 生物物理学 渗透 体内 (+)-纳洛酮 膜透性 细胞内 芬太尼 细胞膜 药理学 膜电位 磁导率 作用机理 动力学 运输机 类阿片 药品 胞浆 膜转运 吗啡 体外 脂质双层 生物膜 色谱法 止痛药
作者
Joseph Clayton,George J. Farmer,Jacqueline Glenn,Shailesh N. Mistry,J. Robert Lane,Lei Shi,Lidiya Stavitskaya,Meritxell Canals,Jana K. Shen
出处
期刊:JACS Au [American Chemical Society]
卷期号:6 (3): 1767-1779
标识
DOI:10.1021/jacsau.5c01666
摘要

High Resolution Image Download MS PowerPoint Slide Fentanyl is a leading cause of drug overdose deaths in the United States, yet the mechanism driving its extreme in vivo potency is poorly defined. Here we developed novel computational and experimental approaches to examine whether the membrane contributes to the in vivo potency of fentanyl. Using weighted-ensemble continuous constant pH molecular dynamics (WE-CpHMD) simulations, we estimated the permeability of ionized fentanyl to be approximately 10 –7 cm/s, about 100-fold higher than that of ionized morphine and several more orders of magnitude higher than those of ionized naloxone and isotonitazene. Simulations revealed that all opioids deprotonate when diffusing below the lipid headgroup region, with isotonitazene and naloxone deprotonating closer to the hydrophobic core. Mean first passage time calculation revealed fentanyl’s rapid kinetics for bidirectional membrane transport, suggesting that it partitions into and permeates the membrane while also redistributing back into solution from both the membrane core and intracellular compartment. Consistently, cell washout experiments making use of a BRET senor demonstrated that fentanyl, but not morphine, is retained by cells and can repartition into solution to reactivate the mu-opioid receptor. The IAM-HPLC measurement confirmed fentanyl’s superior phospholipophilicity. These findings support the hypothesis that membrane permeation is a major driver of fentanyl’s extreme analgesic potency, rapid onset, and short duration of action, revealing a fundamental mechanism underlying opioid toxicity, with implication for developing more effective countermeasures. WE-CpHMD provides a valuable tool for mechanistic elucidation of membrane permeation of ionizable molecules, which remains poorly understood.
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