Competitive blocking of LRP4-sclerostin binding interface strongly promotes bone anabolic functions

Svetlana Katchkovsky1, Biplab Chatterjee1, Chen-Viki Abramovitch-Dahan1

  • 1Department of Physiology and Cell Biology, Faculty of Health Sciences, Ben-Gurion University of the Negev, 8410501, Beer-Sheva, Israel.

Insights

Sclerostin (Scl) uses LRP4 as an anchor to bind LRP6, inhibiting Wnt signaling and bone formation. Blocking Scl-LRP4 interaction promotes bone growth, offering a new therapeutic strategy for bone diseases.

Area of Science:

  • Bone biology
  • Molecular signaling
  • Endocrinology

Background:

  • Wnt signaling is crucial for bone formation, regulated by inhibitors like sclerostin (Scl).
  • Scl antagonizes Wnt by binding LRP5/6, but its interaction with co-receptor LRP4 is not fully understood.
  • LRP4's role in Scl-mediated Wnt inhibition requires clarification.

Purpose of the Study:

  • To elucidate the mechanism of Scl inhibition of Wnt signaling via LRP4.
  • To investigate the binding affinities of Scl to LRP4 and LRP6.
  • To evaluate the therapeutic potential of targeting the Scl-LRP4 interaction for bone anabolism.

Main Methods:

  • Yeast display system to analyze Scl binding affinities.
  • In vitro studies using osteoblasts to assess Wnt pathway inhibition.
  • In vivo studies in mice using a Scl mutant fused to an Fc domain (SclN93AFc) to evaluate bone formation.

Main Results:

  • Scl exhibits higher affinity for LRP4 than LRP6.
  • LRP4 presence enhances Scl binding to LRP6.
  • A Scl mutant (SclN93A) binding LRP4 but not LRP6 antagonizes Scl inhibition.
  • SclN93AFc treatment significantly increased bone formation and density in mice.
  • Scl-LRP4 interaction is essential for Scl-mediated Wnt pathway inhibition.

Conclusions:

  • LRP4 acts as an essential anchor facilitating Scl binding to LRP6, thereby inhibiting Wnt signaling.
  • Targeting Scl-LRP4 interactions presents a promising anabolic bone therapy strategy.
  • Understanding Scl-LRP4-LRP6 interactions is key to developing novel osteoporosis treatments.

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