A novel cation-sensing mechanism in osteoblasts is a molecular target for strontium

Min Pi1, L Darryl Quarles

  • 1Box 3036, 00570 Blue Zone, Duke Hospital South, Duke University Medical Center, Durham, NC 27710, USA.

Abstract

Insights

Strontium

Area of Science:

  • Bone biology and molecular pharmacology.
  • Osteoporosis therapeutics.
  • Cation-sensing mechanisms.

Background:

  • Strontium exhibits anabolic effects on bone and is a potential osteoporosis treatment.
  • The precise molecular target of strontium in osteoblasts remains unidentified.
  • The calcium-sensing receptor (CASR) is a potential candidate for mediating strontium's effects.

Purpose of the Study:

  • To determine if the calcium-sensing receptor (CASR) mediates strontium's anabolic effects on bone.
  • To investigate novel cation-sensing mechanisms in osteoblasts.

Main Methods:

  • Utilized a serum response element (SRE)-luciferase reporter assay in HEK-293 cells to assess CASR activation by strontium.
  • Examined strontium-induced responses in MC3T3-E1 osteoblasts and osteoblasts from CASR null mice.
  • Investigated the role of G-protein signaling pathways in strontium response.

Main Results:

  • Strontium activated SRE-luciferase activity in HEK-293 cells expressing full-length CASR, but not in cells with a truncated CASR variant.
  • Osteoblasts lacking CASR, including those from CASR null mice, responded to strontium.
  • Strontium's response in osteoblasts involved a G-protein-mediated pathway distinct from CASR.

Conclusions:

  • Strontium's anabolic effects on bone are mediated by a novel G-protein-coupled receptor, not solely by CASR.
  • This novel receptor exhibits distinct cation specificity compared to CASR.
  • Findings suggest a new therapeutic target for osteoporosis treatment.

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