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Article Abstract

The parathyroid hormone type 1 receptor (PTH1R), a class B1 G protein-coupled receptor, plays critical roles in bone turnover and Ca homeostasis. Teriparatide (PTH) and Abaloparatide (ABL) are terms as long-acting and short-acting peptide, respectively, regarding their marked duration distinctions of the downstream signaling. However, the mechanistic details remain obscure. Here, we report the cryo-electron microscopy structures of PTH- and ABL-bound PTH1R-Gs complexes, adapting similar overall conformations yet with notable differences in the receptor ECD regions and the peptide C-terminal portions. 3D variability analysis and site-directed mutagenesis studies uncovered that PTH-bound PTH1R-Gs complexes display less motions and are more tolerant of mutations in affecting the receptor signaling than ABL-bound complexes. Furthermore, we combined the structural analysis and signaling assays to delineate the molecular basis of the differential signaling durations induced by these peptides. Our study deepens the mechanistic understanding of ligand-mediated prolonged or transient signaling.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9586930PMC
http://dx.doi.org/10.1038/s41467-022-34009-xDOI Listing

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The parathyroid hormone type 1 receptor (PTH1R), a class B1 G protein-coupled receptor, plays critical roles in bone turnover and Ca homeostasis. Teriparatide (PTH) and Abaloparatide (ABL) are terms as long-acting and short-acting peptide, respectively, regarding their marked duration distinctions of the downstream signaling. However, the mechanistic details remain obscure.

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Endogenous ligand recognition and structural transition of a human PTH receptor.

Mol Cell

September 2022

Department of Biological Sciences, Graduate School of Science, the University of Tokyo, Bunkyo, Tokyo 113-0033, Japan. Electronic address:

Article Synopsis
  • Endogenous parathyroid hormone (PTH) and PTH-related peptide (PTHrP) both activate the parathyroid hormone receptor 1 (PTH1R) through the Gs signaling pathway, but they have unique effects on signaling duration and bone-resorption activities.
  • Structural analysis via cryoelectron microscopy has revealed six forms of the PTH1R-Gs complex, highlighting differences in how PTH and PTHrP interact with the receptor.
  • The study of these structures, along with computational methods, enhances our understanding of the distinct mechanisms behind ligand binding and dissociation, which explains PTH's prolonged effects versus PTHrP's more transient signaling.
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