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Identifying Receptors for Neuropeptides and Peptide Hormones: Challenges and Recent Progress

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ACS CHEMICAL BIOLOGY
卷 16, 期 2, 页码 251-263

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AMER CHEMICAL SOC
DOI: 10.1021/acschembio.0c00950

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  1. Nebraska Center for Integrated Biomolecular Communication (NIH National Institute of General Medical Sciences) [P20 GM113126]
  2. Robert Allington Chemistry Department Fund (University of Nebraska.Lincoln)

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Identifying receptors for bioactive peptides is complex due to the dynamic biosynthetic pathways, interactions with multiple receptor protein families, and complex ligand-receptor interactions. Recent methodological advances have focused on transcript expression, high throughput screening, and direct ligand-receptor interaction using chemical probes to identify signaling partners for bioactive peptides.
Intercellular signaling events mediated by neuropeptides and peptide hormones represent important targets for both basic science and drug discovery. For many bioactive peptides, the protein receptors that transmit information across the receiving cell membrane are not known, severely limiting these signaling pathways as potential therapeutic targets. Identifying the receptor(s) for a given peptide of interest is complicated by several factors. Most notably, cell-cell signaling peptides are generated through dynamic biosynthetic pathways, can act on many different families of receptor proteins, and can participate in complex ligand-receptor interactions that extend beyond a simple one-to-one archetype. Here, we discuss recent methodological advances to identify signaling partners for bioactive peptides. Recent efforts have centered on methods to identify candidate receptors via transcript expression, methods to match peptide- receptor pairs through high throughput screening, and methods to capture direct ligand-receptor interactions using chemical probes. Future applications of the receptor identification approaches discussed here, as well as technical advancements to address their limitations, promise to lead to a greater understanding of how cells communicate to deliver complex physiologies. Importantly, such advancements will likely provide novel targets for the treatment of human diseases within the central nervous and endocrine systems.

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