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Biology subjects

Schutzer, W. E.

Publications and source records attributed to Schutzer, W. E..

2 recordsLinked to original sources

Slow Dissociation of Nitazenes from the μ-Opioid Receptor Underlies the Challenge of Overdose Reversal

Nitazenes are driving a wave of overdose deaths in the United States and Europe and often require additional doses of naloxone to reverse. To understand the molecular basis, we conducted a joint experimental and simulation study of three common nitazenes, eto-, etodes-, and protonitazene. Radioligand experiments demonstrated that all three nitazenes display higher receptor affinity and longer dissociation half-lives than fentanyl. Notably, protonitazene dissociates slower than carfentanil and its displacement requires fourfold higher antagonist concentrations. The observed trend in nitazene half-lives is recapitulated by molecular dynamics simulations, which suggest that kinetics is controlled by specific interactions with two receptor subpockets. A newly published cryo-EM structure of fluetonitazene-OR complex confirms the predicted interactions, including a{pi} -hole bond between the nitro group and Tyr1.39, a residue recently shown to modulate OR signaling bias. Our findings suggest slow receptor dissociation as a key factor challenging overdose reversal. The mechanistic insights have implications for understanding opioid toxicity and designing more effective countermeasures.

pharmacology and toxicology↗

Combining the alpha-2 adrenergic agonist clonidine with naloxone rescues fentanyl-induced physiologic dysfunction and increases survival

Fentanyl leads to tens of thousands of overdose deaths every year despite widespread availability of naloxone. Like other opioids, fentanyl causes respiratory depression. Unlike morphine, high dose fentanyl rapidly produces airway obstruction, muscle rigidity, and cardiovascular failure. Using a rat model of opioid overdose, we compared the physiological effects of fentanyl and morphine and studied the efficacy of a novel rescue strategy. In contrast to morphine, we report that fentanyl more frequently causes respiratory failure secondary to vocal cord closure and leads to more severe cardiovascular disruption, including the blockade of baroreflex-like rebound in blood pressure. We also show that administration of intramuscular naloxone immediately after intravenous infusion of fentanyl did not improve survival. However, combining intramuscular naloxone with the alpha-2 adrenergic agonist clonidine rescued vocal cord function and stabilized cardiovascular and respiratory physiology from fentanyl-induced effects. Our findings demonstrate that fentanyl is associated with a unique and more severe toxidrome compared to morphine. Also, supplementing naloxone with drugs targeting the adrenergic system improves survival primarily by reopening the upper airway, implicating airway obstruction as a significant component of fentanyl-induced respiratory depression. Therefore, reversal of vocal cord closure appears to be the necessary precursor to the restoration of not only respiration, but also vascular autoregulation, a significant determinant of survival from fentanyl overdose.

pharmacology and toxicology↗