Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.

Family with sequence similarity 20,-member C (FAM20C) is highly expressed in the mineralized tissues of mammals. Genetic studies showed that the loss-of-function mutations in FAM20C were associated with human lethal osteosclerotic bone dysplasia (Raine Syndrome), implying an inhibitory role of this...

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Main Authors: Xiaofang Wang, Suzhen Wang, Changcheng Li, Tian Gao, Ying Liu, Afsaneh Rangiani, Yao Sun, Jianjun Hao, Anne George, Yongbo Lu, Jay Groppe, Baozhi Yuan, Jian Q Feng, Chunlin Qin
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC3355082?pdf=render
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spelling doaj-95f8a2ea91c843929f480849383bfdeb2020-11-24T21:42:02ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042012-01-0185e100270810.1371/journal.pgen.1002708Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.Xiaofang WangSuzhen WangChangcheng LiTian GaoYing LiuAfsaneh RangianiYao SunJianjun HaoAnne GeorgeYongbo LuJay GroppeBaozhi YuanJian Q FengChunlin QinFamily with sequence similarity 20,-member C (FAM20C) is highly expressed in the mineralized tissues of mammals. Genetic studies showed that the loss-of-function mutations in FAM20C were associated with human lethal osteosclerotic bone dysplasia (Raine Syndrome), implying an inhibitory role of this molecule in bone formation. However, in vitro gain- and loss-of-function studies suggested that FAM20C promotes the differentiation and mineralization of mouse mesenchymal cells and odontoblasts. Recently, we generated Fam20c conditional knockout (cKO) mice in which Fam20c was globally inactivated (by crossbreeding with Sox2-Cre mice) or inactivated specifically in the mineralized tissues (by crossbreeding with 3.6 kb Col 1a1-Cre mice). Fam20c transgenic mice were also generated and crossbred with Fam20c cKO mice to introduce the transgene in the knockout background. In vitro gain- and loss-of-function were examined by adding recombinant FAM20C to MC3T3-E1 cells and by lentiviral shRNA-mediated knockdown of FAM20C in human and mouse osteogenic cell lines. Surprisingly, both the global and mineralized tissue-specific cKO mice developed hypophosphatemic rickets (but not osteosclerosis), along with a significant downregulation of osteoblast differentiation markers and a dramatic elevation of fibroblast growth factor 23 (FGF23) in the serum and bone. The mice expressing the Fam20c transgene in the wild-type background showed no abnormalities, while the expression of the Fam20c transgene fully rescued the skeletal defects in the cKO mice. Recombinant FAM20C promoted the differentiation and mineralization of MC3T3-E1 cells. Knockdown of FAM20C led to a remarkable downregulation of DMP1, along with a significant upregulation of FGF23 in both human and mouse osteogenic cell lines. These results indicate that FAM20C is a bone formation "promoter" but not an "inhibitor" in mouse osteogenesis. We conclude that FAM20C may regulate osteogenesis through its direct role in facilitating osteoblast differentiation and its systemic regulation of phosphate homeostasis via the mediation of FGF23.http://europepmc.org/articles/PMC3355082?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Xiaofang Wang
Suzhen Wang
Changcheng Li
Tian Gao
Ying Liu
Afsaneh Rangiani
Yao Sun
Jianjun Hao
Anne George
Yongbo Lu
Jay Groppe
Baozhi Yuan
Jian Q Feng
Chunlin Qin
spellingShingle Xiaofang Wang
Suzhen Wang
Changcheng Li
Tian Gao
Ying Liu
Afsaneh Rangiani
Yao Sun
Jianjun Hao
Anne George
Yongbo Lu
Jay Groppe
Baozhi Yuan
Jian Q Feng
Chunlin Qin
Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
PLoS Genetics
author_facet Xiaofang Wang
Suzhen Wang
Changcheng Li
Tian Gao
Ying Liu
Afsaneh Rangiani
Yao Sun
Jianjun Hao
Anne George
Yongbo Lu
Jay Groppe
Baozhi Yuan
Jian Q Feng
Chunlin Qin
author_sort Xiaofang Wang
title Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
title_short Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
title_full Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
title_fullStr Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
title_full_unstemmed Inactivation of a novel FGF23 regulator, FAM20C, leads to hypophosphatemic rickets in mice.
title_sort inactivation of a novel fgf23 regulator, fam20c, leads to hypophosphatemic rickets in mice.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2012-01-01
description Family with sequence similarity 20,-member C (FAM20C) is highly expressed in the mineralized tissues of mammals. Genetic studies showed that the loss-of-function mutations in FAM20C were associated with human lethal osteosclerotic bone dysplasia (Raine Syndrome), implying an inhibitory role of this molecule in bone formation. However, in vitro gain- and loss-of-function studies suggested that FAM20C promotes the differentiation and mineralization of mouse mesenchymal cells and odontoblasts. Recently, we generated Fam20c conditional knockout (cKO) mice in which Fam20c was globally inactivated (by crossbreeding with Sox2-Cre mice) or inactivated specifically in the mineralized tissues (by crossbreeding with 3.6 kb Col 1a1-Cre mice). Fam20c transgenic mice were also generated and crossbred with Fam20c cKO mice to introduce the transgene in the knockout background. In vitro gain- and loss-of-function were examined by adding recombinant FAM20C to MC3T3-E1 cells and by lentiviral shRNA-mediated knockdown of FAM20C in human and mouse osteogenic cell lines. Surprisingly, both the global and mineralized tissue-specific cKO mice developed hypophosphatemic rickets (but not osteosclerosis), along with a significant downregulation of osteoblast differentiation markers and a dramatic elevation of fibroblast growth factor 23 (FGF23) in the serum and bone. The mice expressing the Fam20c transgene in the wild-type background showed no abnormalities, while the expression of the Fam20c transgene fully rescued the skeletal defects in the cKO mice. Recombinant FAM20C promoted the differentiation and mineralization of MC3T3-E1 cells. Knockdown of FAM20C led to a remarkable downregulation of DMP1, along with a significant upregulation of FGF23 in both human and mouse osteogenic cell lines. These results indicate that FAM20C is a bone formation "promoter" but not an "inhibitor" in mouse osteogenesis. We conclude that FAM20C may regulate osteogenesis through its direct role in facilitating osteoblast differentiation and its systemic regulation of phosphate homeostasis via the mediation of FGF23.
url http://europepmc.org/articles/PMC3355082?pdf=render
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