Literature DB >> 28628032

Osteocyte-specific WNT1 regulates osteoblast function during bone homeostasis.

Kyu Sang Joeng1, Yi-Chien Lee1, Joohyun Lim1, Yuqing Chen1, Ming-Ming Jiang1, Elda Munivez1, Catherine Ambrose2, Brendan H Lee1.   

Abstract

Mutations in WNT1 cause osteogenesis imperfecta (OI) and early-onset osteoporosis, identifying it as a key Wnt ligand in human bone homeostasis. However, how and where WNT1 acts in bone are unclear. To address this mechanism, we generated late-osteoblast-specific and osteocyte-specific WNT1 loss- and gain-of-function mouse models. Deletion of Wnt1 in osteocytes resulted in low bone mass with spontaneous fractures similar to that observed in OI patients. Conversely, Wnt1 overexpression from osteocytes stimulated bone formation by increasing osteoblast number and activity, which was due in part to activation of mTORC1 signaling. While antiresorptive therapy is the mainstay of OI treatment, it has limited efficacy in WNT1-related OI. In this study, anti-sclerostin antibody (Scl-Ab) treatment effectively improved bone mass and dramatically decreased fracture rate in swaying mice, a model of global Wnt1 loss. Collectively, our data suggest that WNT1-related OI and osteoporosis are caused in part by decreased mTORC1-dependent osteoblast function resulting from loss of WNT1 signaling in osteocytes. As such, this work identifies an anabolic function of osteocytes as a source of Wnt in bone development and homoeostasis, complementing their known function as targets of Wnt signaling in regulating osteoclastogenesis. Finally, this study suggests that Scl-Ab is an effective genotype-specific treatment option for WNT1-related OI and osteoporosis.

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Year:  2017        PMID: 28628032      PMCID: PMC5490765          DOI: 10.1172/JCI92617

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  61 in total

1.  Canonical Wnt signaling in differentiated osteoblasts controls osteoclast differentiation.

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Journal:  Dev Cell       Date:  2005-05       Impact factor: 12.270

2.  Ihh controls cartilage development by antagonizing Gli3, but requires additional effectors to regulate osteoblast and vascular development.

Authors:  Matthew J Hilton; Xiaolin Tu; Julie Cook; Hongliang Hu; Fanxin Long
Journal:  Development       Date:  2005-09-01       Impact factor: 6.868

3.  Regulation of osteoblastogenesis and bone mass by Wnt10b.

Authors:  Christina N Bennett; Kenneth A Longo; Wendy S Wright; Larry J Suva; Timothy F Lane; Kurt D Hankenson; Ormond A MacDougald
Journal:  Proc Natl Acad Sci U S A       Date:  2005-02-22       Impact factor: 11.205

4.  LDL receptor-related protein 5 (LRP5) affects bone accrual and eye development.

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Journal:  Cell       Date:  2001-11-16       Impact factor: 41.582

5.  Sclerostin binds to LRP5/6 and antagonizes canonical Wnt signaling.

Authors:  Xiaofeng Li; Yazhou Zhang; Heeseog Kang; Wenzhong Liu; Peng Liu; Jianghong Zhang; Stephen E Harris; Dianqing Wu
Journal:  J Biol Chem       Date:  2005-03-18       Impact factor: 5.157

6.  Swaying is a mutant allele of the proto-oncogene Wnt-1.

Authors:  K R Thomas; T S Musci; P E Neumann; M R Capecchi
Journal:  Cell       Date:  1991-11-29       Impact factor: 41.582

7.  Evidence for osteocyte regulation of bone homeostasis through RANKL expression.

Authors:  Tomoki Nakashima; Mikihito Hayashi; Takanobu Fukunaga; Kosaku Kurata; Masatsugu Oh-Hora; Jian Q Feng; Lynda F Bonewald; Tatsuhiko Kodama; Anton Wutz; Erwin F Wagner; Josef M Penninger; Hiroshi Takayanagi
Journal:  Nat Med       Date:  2011-09-11       Impact factor: 53.440

8.  Lrp5 functions in bone to regulate bone mass.

Authors:  Yajun Cui; Paul J Niziolek; Bryan T MacDonald; Cassandra R Zylstra; Natalia Alenina; Daniel R Robinson; Zhendong Zhong; Susann Matthes; Christina M Jacobsen; Ronald A Conlon; Robert Brommage; Qingyun Liu; Faika Mseeh; David R Powell; Qi M Yang; Brian Zambrowicz; Han Gerrits; Jan A Gossen; Xi He; Michael Bader; Bart O Williams; Matthew L Warman; Alexander G Robling
Journal:  Nat Med       Date:  2011-05-22       Impact factor: 53.440

9.  Canonical Wnt signaling inhibits osteoclastogenesis independent of osteoprotegerin.

Authors:  Joachim Albers; Johannes Keller; Anke Baranowsky; Frank Timo Beil; Philip Catala-Lehnen; Jochen Schulze; Michael Amling; Thorsten Schinke
Journal:  J Cell Biol       Date:  2013-02-11       Impact factor: 10.539

10.  WNT7B promotes bone formation in part through mTORC1.

Authors:  Jianquan Chen; Xiaolin Tu; Emel Esen; Kyu Sang Joeng; Congxin Lin; Jeffrey M Arbeit; Markus A Rüegg; Michael N Hall; Liang Ma; Fanxin Long
Journal:  PLoS Genet       Date:  2014-01-30       Impact factor: 5.917

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  70 in total

Review 1.  Bone biology: insights from osteogenesis imperfecta and related rare fragility syndromes.

Authors:  Roberta Besio; Chi-Wing Chow; Francesca Tonelli; Joan C Marini; Antonella Forlino
Journal:  FEBS J       Date:  2019-07-05       Impact factor: 5.542

2.  Inducible expression of Wnt7b promotes bone formation in aged mice and enhances fracture healing.

Authors:  Deye Song; Guangxu He; Fangfang Song; Zhepeng Wang; Xiaochen Liu; Lele Liao; Jiangdong Ni; Matthew J Silva; Fanxin Long
Journal:  Bone Res       Date:  2020-02-03       Impact factor: 13.567

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.  β-aminoisobutyric Acid, l-BAIBA, Is a Muscle-Derived Osteocyte Survival Factor.

Authors:  Yukiko Kitase; Julian A Vallejo; William Gutheil; Harika Vemula; Katharina Jähn; Jianxun Yi; Jingsong Zhou; Marco Brotto; Lynda F Bonewald
Journal:  Cell Rep       Date:  2018-02-06       Impact factor: 9.423

5.  The brains of the bones: how osteocytes use WNT1 to control bone formation.

Authors:  Frank Rauch
Journal:  J Clin Invest       Date:  2017-06-19       Impact factor: 14.808

Review 6.  The Osteocyte: New Insights.

Authors:  Alexander G Robling; Lynda F Bonewald
Journal:  Annu Rev Physiol       Date:  2020-02-10       Impact factor: 19.318

Review 7.  Osteogenesis imperfecta: an update on clinical features and therapies.

Authors:  Ronit Marom; Brien M Rabenhorst; Roy Morello
Journal:  Eur J Endocrinol       Date:  2020-10       Impact factor: 6.664

8.  Old Mice Have Less Transcriptional Activation But Similar Periosteal Cell Proliferation Compared to Young-Adult Mice in Response to in vivo Mechanical Loading.

Authors:  Christopher J Chermside-Scabbo; Taylor L Harris; Michael D Brodt; Ingrid Braenne; Bo Zhang; Charles R Farber; Matthew J Silva
Journal:  J Bone Miner Res       Date:  2020-06-01       Impact factor: 6.741

Review 9.  Moving to the Rhythm with Clock (Circadian) Genes, Autophagy, mTOR, and SIRT1 in Degenerative Disease and Cancer.

Authors:  Kenneth Maiese
Journal:  Curr Neurovasc Res       Date:  2017       Impact factor: 1.990

10.  Complex heterozygous WNT1 mutation in severe recessive osteogenesis imperfecta of a Chinese patient.

Authors:  Yanqin Lu; Yunzhang Dai; Yanzhou Wang; Naixiang Zhai; Jian Zhang; Junlong Liu; Xiaoli Yin; Tianyou Li; Xiuzhi Ren; Jinxiang Han
Journal:  Intractable Rare Dis Res       Date:  2018-02
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