PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 19, 2026Nature Neuroscience4 citationsOpen Access

Organization of neuropeptide systems in the human brain

ECEric G. CeballosAFAsa FarahaniZLZhen-Qi Liu

Key Points

  • This research aims to map and describe the organization of neuropeptide receptors in the human brain.
  • Mapped neuropeptide receptors across the human brain using gene transcription as a proxy.
  • Created a topographical atlas of 38 neuropeptide receptors from 14 neuropeptide families.
  • Analyzed cortical and subcortical expression along with mesoscale connectivity.
  • Applied meta-analytical decoding to assess behavioral functions of neuropeptides.
  • Investigated evolutionary aspects of neuropeptides in early mammals.
  • Identified a clear anatomical cortical–subcortical gradient in neuropeptide receptor expression.
  • Found preferential colocalization of neuropeptide receptors with metabotropic neurotransmitters.
  • Demonstrated a spectrum of behavioral functions influenced by neuropeptide systems, from sensory to reward-related processes.
  • Showed evidence of positive selection for neuropeptides in early mammals, linked to cognitive evolution.

Abstract

Abstract Neuropeptides are functionally diverse signaling molecules in the brain, regulating a wide range of basal bodily and cognitive processes. Despite their importance, the distribution and function of neuropeptides in the human brain remains underexplored. Here we comprehensively map the organization of human whole-brain neuropeptide receptors across multiple levels of description, including molecular and cellular embedding, mesoscale connectivity and macroscale cognitive specialization. Using gene transcription as a proxy, we reconstruct a topographical cortical and subcortical atlas of 38 neuropeptide receptors across 14 different neuropeptide families. We find that most neuropeptide receptors are highly expressed either in the cortex or subcortex, delineating an anatomical cortical–subcortical gradient. Mapping neuropeptide receptors onto hypothalamic nuclei, we demonstrate that neuropeptide receptor gene expression recapitulates fundamental anatomical divisions in the hypothalamus. Neuropeptides preferentially colocalize with metabotropic neurotransmitters, suggesting a system-wide correspondence between slow-acting molecular signaling mechanisms. To investigate the behavioral consequences of distributed neuropeptide systems, we apply meta-analytical decoding to neuropeptide maps and show a spectrum of functions, from sensory-cognitive to reward and bodily functions. Finally, using evolutionary analysis we find extended positive selection for neuropeptides in early mammals, suggesting that refinement of neuropeptides coincides with the emergence of neocortex and higher cognitive function. Collectively, these results show that neuropeptide receptors are highly organized across the human brain and closely intertwined with multiple features of brain structure and function.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Ceballos et al. (2026) studied this question.

synapsesocial.com/papers/69bb926a496e729e6297faabhttps://doi.org/10.1038/s41593-026-02236-w
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Imaging of cerebral α4β2* nicotinic acetylcholine receptors with (−)-[18F]Flubatine PET: Implementation of bolus plus constant infusion and sensitivity to acetylcholine in human brain2016 · 106 citations
  2. 2First-in-Human Assessment of 11C-LSN3172176, an M1 Muscarinic Acetylcholine Receptor PET Radiotracer2020 · 105 citations
  3. 3The Human Cell Atlas from a cell census to a unified foundation model2024 · 152 citations
  4. 4The Sleep Disorder Canine Narcolepsy Is Caused by a Mutation in the Hypocretin (Orexin) Receptor 2 Gene1999 · 2,632 citations
  5. 5Extending the Human Connectome Project across ages: Imaging protocols for the Lifespan Development and Aging projects2018 · 651 citations