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Lima, J. D.

Publications and source records attributed to Lima, J. D..

2 recordsLinked to original sources

Fentanyl + Xylazine Co Administration Leads to Sustained Depression of Breathing and Body Temperature Likely Driven by mu Opioid and alpha2a Adrenergic Pathway Interactions

Background and PurposeIts been reported that illicit drug supplies increasingly contain the 2-adrenergic agonist, xylazine, alongside fentanyl, yet the pharmacological basis for the greater lethality of this combination remains unclear. Prior research has shown that -opioid (Oprm1) receptors, on which fentanyl acts, and 2-adrenergic (Adra2a) receptors, on which xylazine acts, are both expressed within brainstem circuits that govern autonomic control, especially the parabrachial (PB) and Kolliker-Fuse (KF) nuclei that regulate respiration. Thus, we propose that co-activation of these inhibitory receptors and their respective pathways could potentiate or additively suppress respiratory and thermoregulatory function. Experimental ApproachFreely behaving C57BL/6J mice received intraperitoneal injections of either saline, fentanyl, xylazine, or fentanyl-xylazine (F+X) solutions. Continuous recordings of respiration using whole-body plethysmography, sleep/wake state using EEG/EMG and body temperature using both infrared thermography, and telemetry were collected for several hours following injection. RNAscope was used to identify Oprm1 and Adra2a expression within PB and KF nuclei. ResultsFentanyl alone produced dose-dependent respiratory depression that was not associated with body temperature changes, whereas the dose we used of xylazine alone had no effect on either respiration or body temperature. In contrast, F+X induced a markedly prolonged (>5 h) reduction in respiratory rate and profound hypothermia lasting 7-8 h, exceeding the effects of either drug alone. Mortality increased to 58.8% following F+X exposure. RNAscope revealed that both Oprm1 and Adra2a receptors are expressed in PB/KF FoxP2-positive neurons, identifying a plausible substrate for convergent inhibitory signaling. ImplicationsThis manuscript provides the first direct experimental evidence that fentanyl and xylazine may interact through convergent -opioid and 2-adrenergic receptor signaling to produce additive and sustained suppression of respiratory and thermoregulatory function. These findings address a critical mechanistic gap in understanding the disproportionate lethality of fentanyl-xylazine mixtures, an emerging public-health crisis. The work further identifies the PB/KF FoxP2 population as a plausible site of dual-receptor convergence and highlights a previously unrecognized pharmacodynamic interaction with immediate implications for overdose reversal strategies. Given the novelty, mechanistic insight, and translational urgency of these results, rapid dissemination will help accelerate scientific and clinical responses to this evolving threat. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=75 SRC="FIGDIR/small/719036v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@5b54aeorg.highwire.dtl.DTLVardef@148b7dorg.highwire.dtl.DTLVardef@d1ebccorg.highwire.dtl.DTLVardef@1cfa9c8_HPS_FORMAT_FIGEXP M_FIG Possible convergent -opioid (Oprm1) and 2-adrenergic (Adra2a) signaling within parabrachial FoxP2-expressing neurons likely produces additive suppression of respiratory and thermoregulatory drive during fentanyl-xylazine co-exposure. Fentanyl and xylazine engage parallel inhibitory GPCR pathways in Parabrachial/ Kolliker Fuse nucleus (PB/KF) neurons that project to the pre-Botzinger complex (preBotC) to depress respiratory rhythm and to the dorsomedial hypothalamus (DMH) to blunt thermogenic output. Co-activation of these pathways results in sustained bradypnea, profound hypothermia, and reduced survival, providing a possible mechanistic basis for the increased lethality of fentanyl-xylazine mixtures. C_FIG

neuroscience↗

Identifying the Brain Circuits that Regulate Pain-Induced Sleep Disturbances

Pain therapies that alleviate both pain and sleep disturbances may be the most effective for pain relief, as both chronic pain and sleep loss render the opioidergic system, targeted by opioids, less sensitive and effective for analgesia. Therefore, we first studied the link between sleep disturbances and the activation of nociceptors in two acute pain models. Activation of nociceptors in both acute inflammatory (AIP) and opto-pain models led to sleep loss, decreased sleep spindle density, and increased sleep fragmentation that lasted 3 to 6 hours. This relationship is facilitated by the transmission of nociceptive signals through the spino-parabrachial pathways, converging at the wake-active PBelCGRP (parabrachial nucleus expressing Calcitonin Gene-Related Peptide) neurons, known to gate aversive stimuli. However, it has never been tested whether the targeted blocking of this wake pathway can alleviate pain-induced sleep disturbances without increasing sleepiness. Therefore, we next used selective ablations or optogenetic silencing and identified the key role played by the glutamatergic PBelCGRP in pain-induced sleep disturbances. Inactivating the PBelCGRP neurons by genetic deletion or optogenetic silencing prevented these sleep disturbances in both pain models. Furthermore, to understand the wake pathways underlying the pain-induced sleep disturbances, we silenced the PBelCGRP terminals at four key sites in the substantia innominata of the basal forebrain (SI-BF), the central nucleus of Amygdala (CeA), the bed nucleus of stria terminalis (BNST), or the lateral hypothalamus (LH). Silencing of the SI-BF and CeA also significantly reversed pain-induced sleep loss, specifically through the action on the CGRP and NMDA receptors. This was also confirmed by site-specific blockade of these receptors pharmacologically. Our results highlight the significant potential for selectively targeting the wake pathway to effectively treat pain and sleep disturbances, which will minimize risks associated with traditional analgesics. One sentence summaryParabrachial CGRP neurons regulate awakenings to pain.

neuroscience↗