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bioRxiv · 10.1101/2023.07.11.548551

Competition between stochastic neuropeptide signals calibrates the rate of satiation

Abstract

We investigated how transmission of hunger- and satiety-promoting neuropeptides, NPY and MSH, is integrated at the level of intracellular signaling to control feeding. Receptors for these peptides use the second messenger cAMP, but the messengers spatiotemporal dynamics and role in energy balance are controversial. We show that AgRP axon stimulation in the paraventricular hypothalamus evokes probabilistic and spatially restricted NPY release that triggers stochastic cAMP decrements in downstream MC4R-expressing neurons (PVHMC4R). Meanwhile, POMC axon stimulation triggers stochastic, MSH-dependent cAMP increments. NPY and MSH competitively control cAMP, as reflected by hunger-state-dependent differences in the amplitude and persistence of cAMP transients evoked by each peptide. During feeding bouts, elevated MSH release and suppressed NPY release cooperatively sustain elevated cAMP in PVHMC4R neurons, thereby potentiating feeding-related excitatory inputs and promoting satiation across minutes. Our findings highlight how state-dependent integration of opposing, quantal peptidergic events by a common biochemical target calibrates energy intake.

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Zhang, S. X., Kim, A., Madara, J. C., Zhu, P. K., Christenson, L. F., Lutas, A., Kalugin, P. N., Jin, Y., Paul, A., Tian, L., Lowell, B. B., Andermann, M. L.. 2023-07-12. Competition between stochastic neuropeptide signals calibrates the rate of satiation. https://doi.org/10.1101/2023.07.11.548551

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