Serum Amyloid A3 Secreted by Preosteoclasts Inhibits Parathyroid Hormone-stimulated cAMP Signaling in Murine

Shilpa Choudhary1, Alexandra Goetjen2, Thomas Estus2

  • 1New England Musculoskeletal Institute, University of Connecticut Health, Farmington, Connecticut 06030 From the Departments of Medicine and.

Insights

Continuous parathyroid hormone (PTH) blocks its own bone-building effects by inducing an inhibitor, Saa3, from preosteoclasts. This discovery offers a potential new therapeutic target for osteoporosis treatment.

Area of Science:

  • Bone Biology
  • Cell Signaling
  • Osteoporosis Research

Background:

  • Continuous parathyroid hormone (PTH) administration paradoxically inhibits osteogenesis.
  • This inhibition involves interactions between osteoblastic and hematopoietic cells.
  • An unknown inhibitor secreted by hematopoietic cells mediates this effect.

Purpose of the Study:

  • To identify the inhibitor of PTH-stimulated osteoblast differentiation.
  • To elucidate the mechanism by which continuous PTH suppresses bone formation.

Main Methods:

  • Utilized bone marrow macrophages (BMMs) and primary osteoblasts (POBs) from wild-type (WT) and Cox2 knock-out (KO) mice.
  • Employed conditioned medium (CM) transfer, microarray analysis, and gene knockdown (Saa3).
  • Investigated signaling pathways using pertussis toxin (PTX) and formyl peptide receptor 2 (Fpr2) modulators.

Main Results:

  • RANKL-treated WT BMMs, but not KO BMMs, secreted an inhibitor of PTH-induced cAMP production in POBs.
  • Saa3 was identified as the key inhibitor, secreted by preosteoclasts in a Cox2-dependent manner.
  • Saa3 inhibited PTH-stimulated cAMP signaling via Gαi/o activation, mediated by Fpr2.

Conclusions:

  • Continuous PTH induces Cox2 in osteoblastic cells, leading to RANKL-mediated Saa3 secretion from preosteoclasts.
  • Saa3 inhibits PTH-stimulated osteoblast differentiation by interfering with cAMP signaling.
  • Saa3 represents a novel therapeutic target for osteoporosis, explaining PTH's suppressive effects on bone formation.

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