Literature DB >> 25733894

Lrp4 in osteoblasts suppresses bone formation and promotes osteoclastogenesis and bone resorption.

Lei Xiong1, Ji-Ung Jung2, Haitao Wu3, Wen-Fang Xia2, Jin-Xiu Pan2, Chengyong Shen1, Lin Mei4, Wen-Cheng Xiong4.   

Abstract

Bone mass is maintained by balanced activity of osteoblasts and osteoclasts. Lrp4 (low-density lipoprotein receptor related protein 4) is a member of the LDL receptor family, whose mutations have been identified in patients with high-bone-mass disorders, such as sclerosteosis and van Buchem diseases. However, it remains unknown whether and how Lrp4 regulates bone-mass homeostasis in vivo. Here we provide evidence that Lrp4-null mutation or specific mutation in osteoblast-lineage cells increased cortical and trabecular bone mass, which was associated with elevated bone formation and impaired bone resorption. This phenotype was not observed in osteoclast-selective Lrp4 knockout mice. Mechanistic studies indicate that loss of Lrp4 function in osteoblast-lineage cells increased serum levels of sclerostin, a key factor for bone-mass homeostasis that interacts with Lrp4, but abolished the inhibition of Wnt/β-catenin signaling and osteoblastic differentiation by sclerostin. Concomitantly, sclerostin induction of RANKL (receptor activator of nuclear kappa B ligand) was impaired, leading to a lower ratio of RANKL over OPG (osteoprotegerin) (a key factor for osteoclastogenesis). Taken together, these results support the view for Lrp4 as a receptor of sclerostin to inhibit Wnt/β-catenin signaling and bone formation and identify Lrp4 as a critical player in bone-mass homeostasis.

Entities:  

Keywords:  LRP4; osteoblasts; osteoclasts; sclerostin; β-catenin

Mesh:

Substances:

Year:  2015        PMID: 25733894      PMCID: PMC4371963          DOI: 10.1073/pnas.1419714112

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  33 in total

1.  Characterization of the interaction of sclerostin with the low density lipoprotein receptor-related protein (LRP) family of Wnt co-receptors.

Authors:  Gill Holdsworth; Patrick Slocombe; Carl Doyle; Bernadette Sweeney; Vaclav Veverka; Kelly Le Riche; Richard J Franklin; Joanne Compson; Daniel Brookings; James Turner; Jeffery Kennedy; Rachael Garlish; Jiye Shi; Laura Newnham; David McMillan; Mariusz Muzylak; Mark D Carr; Alistair J Henry; Thomas Ceska; Martyn K Robinson
Journal:  J Biol Chem       Date:  2012-06-13       Impact factor: 5.157

2.  LRP4 association to bone properties and fracture and interaction with genes in the Wnt- and BMP signaling pathways.

Authors:  Jitender Kumar; Maria Swanberg; Fiona McGuigan; Mattias Callreus; Paul Gerdhem; Kristina Akesson
Journal:  Bone       Date:  2011-05-27       Impact factor: 4.398

3.  Lrp4 and Wise interplay controls the formation and patterning of mammary and other skin appendage placodes by modulating Wnt signaling.

Authors:  Youngwook Ahn; Carrie Sims; Jennifer M Logue; Scott D Weatherbee; Robb Krumlauf
Journal:  Development       Date:  2013-02-01       Impact factor: 6.868

4.  Bone overgrowth-associated mutations in the LRP4 gene impair sclerostin facilitator function.

Authors:  Olivier Leupin; Elke Piters; Christine Halleux; Shouih Hu; Ina Kramer; Frederic Morvan; Tewis Bouwmeester; Markus Schirle; Manuel Bueno-Lozano; Feliciano J Ramos Fuentes; Peter H Itin; Eveline Boudin; Fenna de Freitas; Karen Jennes; Barbara Brannetti; Nadine Charara; Hilmar Ebersbach; Sabine Geisse; Chris X Lu; Andreas Bauer; Wim Van Hul; Michaela Kneissel
Journal:  J Biol Chem       Date:  2011-04-06       Impact factor: 5.157

Review 5.  WNT signaling in bone homeostasis and disease: from human mutations to treatments.

Authors:  Roland Baron; Michaela Kneissel
Journal:  Nat Med       Date:  2013-02-06       Impact factor: 53.440

6.  LRP4 serves as a coreceptor of agrin.

Authors:  Bin Zhang; Shiwen Luo; Qiang Wang; Tatsuo Suzuki; Wen C Xiong; Lin Mei
Journal:  Neuron       Date:  2008-10-23       Impact factor: 17.173

7.  Lrp4 is a receptor for Agrin and forms a complex with MuSK.

Authors:  Natalie Kim; Amy L Stiegler; Thomas O Cameron; Peter T Hallock; Andrea M Gomez; Julie H Huang; Stevan R Hubbard; Michael L Dustin; Steven J Burden
Journal:  Cell       Date:  2008-10-09       Impact factor: 41.582

8.  Severe Cenani-Lenz syndrome caused by loss of LRP4 function.

Authors:  Ariana Kariminejad; Barbara Stollfuß; Yun Li; Nina Bögershausen; Karin Boss; Raoul C M Hennekam; Bernd Wollnik
Journal:  Am J Med Genet A       Date:  2013-05-01       Impact factor: 2.802

9.  Distinct roles of muscle and motoneuron LRP4 in neuromuscular junction formation.

Authors:  Haitao Wu; Yisheng Lu; Chengyong Shen; Neil Patel; Lin Gan; Wen C Xiong; Lin Mei
Journal:  Neuron       Date:  2012-07-12       Impact factor: 17.173

10.  Lrp4 is a retrograde signal for presynaptic differentiation at neuromuscular synapses.

Authors:  Norihiro Yumoto; Natalie Kim; Steven J Burden
Journal:  Nature       Date:  2012-08-01       Impact factor: 49.962

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  34 in total

Review 1.  The genetics of bone mass and susceptibility to bone diseases.

Authors:  David Karasik; Fernando Rivadeneira; Mark L Johnson
Journal:  Nat Rev Rheumatol       Date:  2016-04-07       Impact factor: 20.543

Review 2.  The regulation of osteoclast differentiation by Wnt signals.

Authors:  Yasuhiro Kobayashi; Shunsuke Uehara; Masanori Koide; Naoyuki Takahashi
Journal:  Bonekey Rep       Date:  2015-07-01

Review 3.  Regulatory mechanisms of sclerostin expression during bone remodeling.

Authors:  Masanori Koide; Yasuhiro Kobayashi
Journal:  J Bone Miner Metab       Date:  2018-10-24       Impact factor: 2.626

4.  Lack of Myosin X Enhances Osteoclastogenesis and Increases Cell Surface Unc5b in Osteoclast-Lineage Cells.

Authors:  Bo Wang; Jin-Xiu Pan; Huali Yu; Lei Xiong; Kai Zhao; Shan Xiong; Jun-Peng Guo; Sen Lin; Dong Sun; Lu Zhao; Haohan Guo; Lin Mei; Wen-Cheng Xiong
Journal:  J Bone Miner Res       Date:  2019-02-19       Impact factor: 6.741

5.  Lrp4 expression by adipocytes and osteoblasts differentially impacts sclerostin's endocrine effects on body composition and glucose metabolism.

Authors:  Soohyun P Kim; Hao Da; Zhu Li; Priyanka Kushwaha; Conor Beil; Lin Mei; Wen-Cheng Xiong; Michael J Wolfgang; Thomas L Clemens; Ryan C Riddle
Journal:  J Biol Chem       Date:  2019-03-06       Impact factor: 5.157

6.  Multiple modes of Lrp4 function in modulation of Wnt/β-catenin signaling during tooth development.

Authors:  Youngwook Ahn; Carrie Sims; Megan J Murray; Paige K Kuhlmann; Jesús Fuentes-Antrás; Scott D Weatherbee; Robb Krumlauf
Journal:  Development       Date:  2017-07-10       Impact factor: 6.868

Review 7.  Regulation of bone metabolism by Wnt signals.

Authors:  Yasuhiro Kobayashi; Shunsuke Uehara; Nobuyuki Udagawa; Naoyuki Takahashi
Journal:  J Biochem       Date:  2015-12-28       Impact factor: 3.387

8.  Mutations in the fourth β-propeller domain of LRP4 are associated with isolated syndactyly with fusion of the third and fourth fingers.

Authors:  Rivka Sukenik Halevy; Huan-Chieh Chien; Bo Heinz; Michael J Bamshad; Deborah A Nickerson; Martin Kircher; Nadav Ahituv
Journal:  Hum Mutat       Date:  2018-03-22       Impact factor: 4.878

9.  Sclerostin/Receptor Related Protein 4 and Ginkgo Biloba Extract Alleviates β-Glycerophosphate-Induced Vascular Smooth Muscle Cell Calcification By Inhibiting Wnt/β-Catenin Pathway.

Authors:  Jian Wang; Xiaobo Qiu; Tianhua Xu; Zitong Sheng; Li Yao
Journal:  Blood Purif       Date:  2019-01-30       Impact factor: 2.614

10.  Astrocytic Lrp4 (Low-Density Lipoprotein Receptor-Related Protein 4) Contributes to Ischemia-Induced Brain Injury by Regulating ATP Release and Adenosine-A2AR (Adenosine A2A Receptor) Signaling.

Authors:  Xin-Chun Ye; Jin-Xia Hu; Lei Li; Qiang Li; Fu-Lei Tang; Sen Lin; Dong Sun; Xiang-Dong Sun; Gui-Yun Cui; Lin Mei; Wen-Cheng Xiong
Journal:  Stroke       Date:  2017-12-06       Impact factor: 7.914

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