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Burek, J.

Publications and source records attributed to Burek, J..

2 recordsLinked to original sources

Whole-brain analyses identify anterior cingulate μ-opioid signaling as a critical mediator of placebo analgesia in neuropathic pain

Placebo analgesia reflects the capacity of learning and expectation to engage endogenous pain-control systems, yet the neural circuits that support this phenomenon remain poorly understood. Here, we establish a conditioning-based placebo analgesia paradigm in mice following peripheral nerve injury and combine behavioral assessment with whole-brain activity mapping and targeted circuit manipulations to define its neural substrates. Conditioning with morphine produced robust placebo analgesia, expressed as reduced sensory sensitivity in the absence of drug. Brain-wide mapping of c-Fos expression revealed distributed changes across cortical and subcortical regions accompanied by a reorganization of functional connectivity, consistent with coordinated network-level engagement. Network analyses identified shifts in hub structure and selective strengthening and weakening of inter-regional interactions during placebo analgesia. Causal manipulations demonstrated a critical role for the anterior cingulate cortex, with excitatory activation of this region blocking placebo analgesia, whereas inhibitory manipulations had no effect. In contrast, perturbation of other candidate regions, including the basomedial amygdala and paraventricular thalamus, did not alter placebo responses. Finally, selective targeting of -opioid receptor-expressing neurons in the anterior cingulate cortex revealed that this cell population is necessary for the expression of placebo analgesia. Together, these findings reveal a brain-wide reorganization of network interactions underlying placebo analgesia and identify a specific cortical opioid circuit that gates its expression. One-Sentence SummaryUsing a mouse model of nerve injury, this study shows that placebo analgesia arises from coordinated brain-wide network reorganization and is gated by -opioid receptor-expressing neurons in the anterior cingulate cortex.

neuroscience↗

Cholecystokinin input from the anterior cingulate cortex to the lateral periaqueductal gray mediates nocebo pain behavior in mice

The nocebo effect, the evil twin of the better-known placebo effect, in which anticipation of harm worsens pain and other symptoms, is increasingly thought to be responsible for poor clinical outcomes. In humans, nocebo hyperalgesia (i.e., increased pain sensitivity) is blocked by proglumide, a cholecystokinin (CCK) receptor antagonist. Yet, the neural circuitry underlying nocebo hyperalgesia remains unidentified, largely due to a lack of appropriate animal models. Independently, our two laboratories developed unique animal models of CCK-dependent nocebo hyperalgesia in which the expectation of pain was elicited by environmental or social cues. We find that both nocebo paradigms share a neural circuit involving CCK release from neurons projecting from the anterior cingulate cortex to the lateral periaqueductal gray. This previously unrecognized pathway could represent a promising target for therapeutic interventions in pain-related disorders. One-Sentence SummaryPain expectations, whether environmentally conditioned or socially transmitted, are mediated by a shared neural circuit involving cholecystokinin (CCK) projections from the anterior cingulate cortex (ACC) to the lateral periaqueductal gray (PAG).

neuroscience↗