Inhibitory regulation of osteoclast bone resorption by signal regulatory protein alpha

Ellen M van Beek1, Teun J de Vries, Lars Mulder

  • 1Phagocyte Laboratory, Sanquin Research and Landsteiner Laboratory, Academic Medical Center, Plesmanlaan 125, 1066 CX Amsterdam, The Netherlands.

Insights

Signal regulatory protein alpha (SIRPalpha) inhibits osteoclast activity, crucial for bone health. This discovery identifies SIRPalpha as a key regulator in preventing bone diseases like osteoporosis.

Area of Science:

  • Immunology
  • Bone Biology
  • Cell Signaling

Background:

  • Osteoclasts are vital for bone remodeling, but their dysfunction causes bone diseases.
  • The inhibitory role of cytosolic protein tyrosine phosphatase SHP-1 in osteoclasts is known.
  • Inhibitory receptors recruiting SHP-1 in osteoclasts were previously unidentified.

Purpose of the Study:

  • To identify the inhibitory receptor responsible for recruiting SHP-1 in osteoclasts.
  • To investigate the role of this receptor in regulating osteoclast function and bone mass.

Main Methods:

  • Utilized knockout mice lacking the SIRPalpha cytoplasmic tail.
  • Assessed osteoclast bone resorption and actin ring formation in vitro.
  • Analyzed cortical bone mass in SIRPalpha-mutant mice.

Main Results:

  • Identified signal regulatory protein alpha (SIRPalpha) as an SHP-1-recruiting inhibitory receptor.
  • Osteoclasts lacking SIRPalpha showed enhanced bone resorption and actin ring formation.
  • SIRPalpha-mutant mice exhibited reduced cortical bone mass.

Conclusions:

  • SIRPalpha acts as a negative regulator of mature osteoclast function, not differentiation.
  • This identifies SIRPalpha as a critical component in balancing osteoclast activity.
  • Findings support a model of osteoclast regulation by opposing activating and inhibitory immunoreceptors.

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