Literature DB >> 25987984

A new WNT on the bone: WNT16, cortical bone thickness, porosity and fractures.

Francesca Gori1, Ulf Lerner2, Claes Ohlsson3, Roland Baron4.   

Abstract

The last decade has provided abundant data implicating the WNT pathway in bone development and in the regulation of skeletal homeostasis. Rare human mutations together with gain- and loss-of-function approaches in mice have clearly demonstrated that disrupted regulation of this pathway leads to altered bone mass. In addition to these rare human and mice mutations, large population-based genome-wide association studies (GWASs) have identified single-nucleotide polymorphisms in ∼60 loci strongly associated with variations in bone mineral density (BMD) at different skeletal sites. Among the loci/genes identified by BMD GWAS, components of the WNT signaling pathway are numerous and have been shown to contribute to skeletal development and homeostasis. Within the components of WNT signaling, the gene coding for WNT16, one of the 19 WNT ligands of the human genome, has been found strongly associated with specific bone traits such as cortical bone thickness, cortical porosity and fracture risk. Recently, the first functional characterization of Wnt16 has confirmed the critical role of Wnt16 in the regulation of cortical bone mass and bone strength in mice. These reports have extended our understanding of Wnt16 function in bone homeostasis and have not only confirmed the unique association of Wnt16 with cortical bone and fracture susceptibility, as suggested by GWAS in human populations, but have also provided novel insights into the biology of this WNT ligand and the mechanism(s) by which it regulates cortical but not trabecular bone homeostasis. Most interestingly, Wnt16 appears to be a strong anti-resorptive soluble factor acting on both osteoblasts and osteoclast precursors.

Entities:  

Year:  2015        PMID: 25987984      PMCID: PMC4432781          DOI: 10.1038/bonekey.2015.36

Source DB:  PubMed          Journal:  Bonekey Rep        ISSN: 2047-6396


  50 in total

1.  Genetic analyses in a sample of individuals with high or low BMD shows association with multiple Wnt pathway genes.

Authors:  Anne-Marie Sims; Neil Shephard; Kim Carter; Tracy Doan; Alison Dowling; Emma L Duncan; John Eisman; Graeme Jones; Geoffrey Nicholson; Richard Prince; Ego Seeman; Gethin Thomas; John A Wass; Matthew A Brown
Journal:  J Bone Miner Res       Date:  2008-04       Impact factor: 6.741

Review 2.  Towards an integrated view of Wnt signaling in development.

Authors:  Renée van Amerongen; Roel Nusse
Journal:  Development       Date:  2009-10       Impact factor: 6.868

3.  Noncanonical Wnt signaling maintains hematopoietic stem cells in the niche.

Authors:  Ryohichi Sugimura; Xi C He; Aparna Venkatraman; Fumio Arai; Andrew Box; Craig Semerad; Jeffrey S Haug; Lai Peng; Xiao-Bo Zhong; Toshio Suda; Linheng Li
Journal:  Cell       Date:  2012-07-20       Impact factor: 41.582

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

Authors:  Y Gong; R B Slee; N Fukai; G Rawadi; S Roman-Roman; A M Reginato; H Wang; T Cundy; F H Glorieux; D Lev; M Zacharin; K Oexle; J Marcelino; W Suwairi; S Heeger; G Sabatakos; S Apte; W N Adkins; J Allgrove; M Arslan-Kirchner; J A Batch; P Beighton; G C Black; R G Boles; L M Boon; C Borrone; H G Brunner; G F Carle; B Dallapiccola; A De Paepe; B Floege; M L Halfhide; B Hall; R C Hennekam; T Hirose; A Jans; H Jüppner; C A Kim; K Keppler-Noreuil; A Kohlschuetter; D LaCombe; M Lambert; E Lemyre; T Letteboer; L Peltonen; R S Ramesar; M Romanengo; H Somer; E Steichen-Gersdorf; B Steinmann; B Sullivan; A Superti-Furga; W Swoboda; M J van den Boogaard; W Van Hul; M Vikkula; M Votruba; B Zabel; T Garcia; R Baron; B R Olsen; M L Warman
Journal:  Cell       Date:  2001-11-16       Impact factor: 41.582

Review 5.  Insights into the genetics of osteoporosis from recent genome-wide association studies.

Authors:  Hou-Feng Zheng; Timothy D Spector; J Brent Richards
Journal:  Expert Rev Mol Med       Date:  2011-08-26       Impact factor: 5.600

6.  Inhibition of sclerostin by monoclonal antibody enhances bone healing and improves bone density and strength of nonfractured bones.

Authors:  Michael S Ominsky; Chaoyang Li; Xiaodong Li; Hong L Tan; Edward Lee; Mauricio Barrero; Franklin J Asuncion; Denise Dwyer; Chun-Ya Han; Fay Vlasseros; Rana Samadfam; Jacquelin Jolette; Susan Y Smith; Marina Stolina; David L Lacey; William S Simonet; Chris Paszty; Gang Li; Hua Z Ke
Journal:  J Bone Miner Res       Date:  2011-05       Impact factor: 6.741

Review 7.  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

8.  Wnt16 is involved in intramembranous ossification and suppresses osteoblast differentiation through the Wnt/β-catenin pathway.

Authors:  Zheng Jiang; Johannes W Von den Hoff; Ruurd Torensma; Liuyan Meng; Zhuan Bian
Journal:  J Cell Physiol       Date:  2014-03       Impact factor: 6.384

9.  Multistage genome-wide association meta-analyses identified two new loci for bone mineral density.

Authors:  Lei Zhang; Hyung Jin Choi; Karol Estrada; Paul J Leo; Jian Li; Yu-Fang Pei; Yinping Zhang; Yong Lin; Hui Shen; Yao-Zhong Liu; Yongjun Liu; Yingchun Zhao; Ji-Gang Zhang; Qing Tian; Yu-ping Wang; Yingying Han; Shu Ran; Rong Hai; Xue-Zhen Zhu; Shuyan Wu; Han Yan; Xiaogang Liu; Tie-Lin Yang; Yan Guo; Feng Zhang; Yan-fang Guo; Yuan Chen; Xiangding Chen; Lijun Tan; Lishu Zhang; Fei-Yan Deng; Hongyi Deng; Fernando Rivadeneira; Emma L Duncan; Jong Young Lee; Bok Ghee Han; Nam H Cho; Geoffrey C Nicholson; Eugene McCloskey; Richard Eastell; Richard L Prince; John A Eisman; Graeme Jones; Ian R Reid; Philip N Sambrook; Elaine M Dennison; Patrick Danoy; Laura M Yerges-Armstrong; Elizabeth A Streeten; Tian Hu; Shuanglin Xiang; Christopher J Papasian; Matthew A Brown; Chan Soo Shin; André G Uitterlinden; Hong-Wen Deng
Journal:  Hum Mol Genet       Date:  2013-11-17       Impact factor: 6.150

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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  30 in total

1.  A Genomewide Association Study Identifies Two Sex-Specific Loci, at SPTB and IZUMO3, Influencing Pediatric Bone Mineral Density at Multiple Skeletal Sites.

Authors:  Alessandra Chesi; Jonathan A Mitchell; Heidi J Kalkwarf; Jonathan P Bradfield; Joan M Lappe; Diana L Cousminer; Sani M Roy; Shana E McCormack; Vicente Gilsanz; Sharon E Oberfield; Hakon Hakonarson; John A Shepherd; Andrea Kelly; Babette S Zemel; Struan Fa Grant
Journal:  J Bone Miner Res       Date:  2017-03-02       Impact factor: 6.741

Review 2.  Wnt Antagonists in Hematopoietic and Immune Cell Fate: Implications for Osteoporosis Therapies.

Authors:  Betsabel Chicana; Cristine Donham; Alberto J Millan; Jennifer O Manilay
Journal:  Curr Osteoporos Rep       Date:  2019-04       Impact factor: 5.096

Review 3.  Role and mechanism of action of sclerostin in bone.

Authors:  Jesus Delgado-Calle; Amy Y Sato; Teresita Bellido
Journal:  Bone       Date:  2016-10-12       Impact factor: 4.398

4.  The Wnt Signaling Pathway Is Differentially Expressed during the Bovine Herpesvirus 1 Latency-Reactivation Cycle: Evidence That Two Protein Kinases Associated with Neuronal Survival, Akt3 and BMPR2, Are Expressed at Higher Levels during Latency.

Authors:  Aspen Workman; Liqian Zhu; Brittney N Keel; Timothy P L Smith; Clinton Jones
Journal:  J Virol       Date:  2018-03-14       Impact factor: 5.103

Review 5.  Sfrp4 and the Biology of Cortical Bone.

Authors:  Ruiying Chen; Roland Baron; Francesca Gori
Journal:  Curr Osteoporos Rep       Date:  2022-02-19       Impact factor: 5.163

6.  Prioritization of Genes Relevant to Bone Fragility Through the Unbiased Integration of Aging Mouse Bone Transcriptomics and Human GWAS Analyses.

Authors:  Serra Kaya; Charles A Schurman; Neha S Dole; Daniel S Evans; Tamara Alliston
Journal:  J Bone Miner Res       Date:  2022-02-28       Impact factor: 6.390

7.  Identification of IDUA and WNT16 Phosphorylation-Related Non-Synonymous Polymorphisms for Bone Mineral Density in Meta-Analyses of Genome-Wide Association Studies.

Authors:  Tianhua Niu; Ning Liu; Xun Yu; Ming Zhao; Hyung Jin Choi; Paul J Leo; Matthew A Brown; Lei Zhang; Yu-Fang Pei; Hui Shen; Hao He; Xiaoying Fu; Shan Lu; Xiang-Ding Chen; Li-Jun Tan; Tie-Lin Yang; Yan Guo; Nam H Cho; Jie Shen; Yan-Fang Guo; Geoffrey C Nicholson; Richard L Prince; John A Eisman; Graeme Jones; Philip N Sambrook; Qing Tian; Xue-Zhen Zhu; Christopher J Papasian; Emma L Duncan; André G Uitterlinden; Chan Soo Shin; Shuanglin Xiang; Hong-Wen Deng
Journal:  J Bone Miner Res       Date:  2015-09-11       Impact factor: 6.741

Review 8.  The Effects of Sclerostin on the Immune System.

Authors:  Cristine Donham; Jennifer O Manilay
Journal:  Curr Osteoporos Rep       Date:  2020-02       Impact factor: 5.096

9.  Non-synonymous WNT16 polymorphisms alleles are associated with different osteoarthritis phenotypes.

Authors:  Carmen García-Ibarbia; Sara Neila; Carlos Garcés; Maria A Alonso; María T Zarrabeitia; Carmen Valero; Fernando Ortiz; José A Riancho
Journal:  Rheumatol Int       Date:  2017-08-01       Impact factor: 2.631

10.  Sfrp4 repression of the Ror2/Jnk cascade in osteoclasts protects cortical bone from excessive endosteal resorption.

Authors:  Kun Chen; Pei Ying Ng; Ruiying Chen; Dorothy Hu; Shawn Berry; Roland Baron; Francesca Gori
Journal:  Proc Natl Acad Sci U S A       Date:  2019-06-25       Impact factor: 12.779

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