Opioid receptor architecture for the modulation of brainstem functions
Hug, N. F.; Mercer Lindsay, N.; McCallum, W. M.; Bryan, J.; Huang, K.; Ochandarena, N.; Tassou, A.; Scherrer, G.
Show abstract
Opioids produce profound and diverse effects on a range of behaviors, many driven by brainstem activity; however, the presence of opioid and opioid-like receptors at this level has been poorly studied outside of nociceptive structures and components of respiratory circuitry. While previous studies identified expression of {micro}, {delta}, {kappa}, and nociceptin opioid and opioid-like receptors in the brainstem, patterns have not been fully delineated, and neither has receptor coexpression nor the behavioral implications of their expression in most structures. We aimed to elucidate expression patterns for all four receptors across somatosensory-motor, auditory, and respiratory brainstem circuits; identify recurring themes to provide insight into the mechanisms by which exogenous opioids affect broader brainstem circuits; and characterize the function of endogenous opioids in subcortical processing and behavior modulation. Using a fluorescent reporter mouse line for each receptor, we created a comprehensive atlas of brainstem receptor distribution and identified novel expression patterns in modality-specific circuits. Each receptor showed unique expression patterns across the brainstem with minimal correlation between receptors. Orofacial somatosensory-motor circuits expressed all four receptors, though generally in distinct regions, suggesting differential opiate modulation of afferent and efferent trigeminal signaling. Within the auditory circuits, receptors segregated along the vertical and horizontal processing pathways with minimal colocalization. Finally, the respiratory circuit strongly expressed the {micro} opioid receptor in multiple crucial structures with minimal presence of the other three receptors. We further assessed the functional significance of these expression patterns, using the respiratory circuitry as an example, by characterizing respiratory responses to selective opioid agonists, finding that each agonist caused unique alterations in breathing pattern and/or breath shape. Together, these results establish a comprehensive atlas of opioid and opioid-like receptor expression throughout the brainstem, laying the essential groundwork for further evaluation of opioid neuromodulation across the broad spectrum of behaviors.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Molecular organization of autonomic, respiratory, and spinally-projecting neurons in the mouse ventrolateral medulla 96%
- Rostral ventromedial medulla (RVM) projects to the lateral hypothalamic area (LHA) to drive aversion and anxiety 96%
- Heterosynaptic interactions between dorsal and ventral hippocampus in individual medium spiny neurons of the nucleus accumbens ventromedial shell 95%
Similar papers in this journal
- Prepronociceptin expressing neurons in the extended amygdala encode and promote rapid arousal responses to motivationally salient stimuli 95%
- Mu-opioid receptor activation potentiates excitatory transmission at the habenulo-peduncular synapse 95%
- Presynaptic inhibition of cutaneous afferents prevents self-generated itch 95%
Similar papers in this journal
- Emx1-Cre is expressed in peripheral autonomic ganglia that regulate central cardiorespiratory functions 95%
- Neuronal subtypes and connectivity of the adult mouse paralaminar amygdala 95%
- Excitatory synaptic transmission is differentially modulated by opioid receptors along the claustro-cingulate pathway 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.