Bone resorption inhibitor alendronate normalizes the reduced bone thickness of TRPV5(-/-) mice

Tom Nijenhuis1, Bram C J van der Eerden, Joost G J Hoenderop

  • 1Department of Physiology, Nijmegen Centre for Molecular Life Sciences, Radboud University, Nijmegen, The Netherlands.

Insights

Alendronate treatment normalized bone thickness in TRPV5 knockout mice by upregulating TRPV5 expression in bone. This suggests TRPV5 plays a role in osteoclast function, despite impaired bone resorption in these mice.

Area of Science:

  • Biochemistry
  • Bone Biology
  • Calcium Homeostasis

Background:

  • TRPV5 is a calcium channel crucial for calcium absorption in the kidney and osteoclast function.
  • TRPV5 knockout mice exhibit hypercalciuria and altered osteoclast characteristics, but their bone phenotype remains complex.
  • Bisphosphonates, like alendronate, are known to inhibit bone resorption.

Purpose of the Study:

  • To investigate the effects of alendronate on calcium transporters in bone, kidney, and duodenum.
  • To evaluate the impact of alendronate on the bone phenotype of TRPV5 knockout mice.
  • To elucidate the role of TRPV5 in osteoclast-mediated bone resorption.

Main Methods:

  • Treatment of wildtype and TRPV5 knockout mice with alendronate or vehicle for 10 weeks.
  • Biochemical analysis of blood and urine samples.
  • Quantitative PCR (QPCR) analysis of calcium transporter expression in tissues and cultured osteoclasts.
  • Micro-computed tomography (muCT) scanning of femurs.
  • Resorption pit assays using bone marrow cultures.

Main Results:

  • Alendronate enhanced bone thickness in wildtype mice and normalized bone morphometry in TRPV5 knockout mice.
  • Alendronate specifically upregulated TRPV5 expression in bone, without affecting kidney or intestinal calcium transporters.
  • TRPV5 knockout mice showed reduced osteoclast resorption pits in vitro, but alendronate normalized bone thickness in vivo, suggesting compensatory mechanisms.

Conclusions:

  • Alendronate upregulates TRPV5 in bone, indicating a role for TRPV5 in osteoclast function.
  • Despite impaired in vitro resorption, TRPV5 knockout mice can compensate for bone resorption defects, potentially via hypervitaminosis D or other mechanisms.
  • TRPV5 plays a significant role in regulating bone mass and osteoclast activity.