IGF-1 Signaling is Essential for Differentiation of Mesenchymal Stem Cells for Peak Bone Mass

被引:0
作者
Janet L. Crane
Luo Zhao
Joseph S. Frye
Lingling Xian
Tao Qiu
Xu Cao
机构
[1] Johns Hopkins University School of Medicine,Department of Pediatrics
[2] Johns Hopkins University School of Medicine,Department of Orthopaedic Surgery
[3] Peking Union Medical College Hospital,Department of Orthopedics
[4] Peking Union Medical College and Chinese Academy of Medical Sciences,undefined
[5] University of Missouri School of Medicine,undefined
来源
Bone Research | 2013年 / 1卷
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摘要
Survival of children with chronic medical illnesses is leading to an increase in secondary osteoporosis due to impaired peak bone mass (PBM). Insulin-like growth factor type 1 (IGF-1) levels correlate with the pattern of bone mass accrual and many chronic illnesses are associated with low IGF-1 levels. Reduced serum levels of IGF-1 minimally affect the integrity of the skeleton, whereas recent studies suggest that skeletal IGF-I regulates PBM. To determine the role of IGF-1 in postnatal bone mass accrual regardless of source, we established an inducible type 1 Igf receptor Cre/lox knockout mouse model, in which the type 1 Igf receptor was deleted inducibely in the mesenchymal stem cells (MSCs) from 3–7 weeks of age. The size of the mouse was not affected as knockout and wild type mice had similar body weights and nasoanal and femoral lengths. However, bone volume and trabecular bone thickness were decreased in the secondary spongiosa of female knockout mice relative to wild type controls, indicating that IGF-1 is critical for bone mass. IGF-1 signaling in MSCs in vitro has been implicated to be involved in both migration to the bone surface and differentiation into bone forming osteoblasts. To clarify the exact role of IGF-1 in bone, we found by immunohistochemical analysis that a similar number of Osterix–positive osteoprogenitors were on the bone perimeter, indicating migration of MSCs was not affected. Most importantly, 56% fewer osteocalcin-positive mature osteoblasts were present on the bone perimeter in the secondary spongiosa in knockout mice versus wild type littermates. These in vivo data demonstrate that the primary role of skeletal IGF-1 is for the terminal differentiation of osteoprogenitors, but refute the role of IGF-1 in MSC migration in vivo. Additionally, these findings confirm that impaired IGF-1 signaling in bone MSCs is sufficient to impair bone mass acquisition.
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页码:186 / 194
页数:8
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共 233 条
[1]  
Rizzoli R(2010)Maximizing bone mineral mass gain during growth for the prevention of fractures in the adolescents and the elderly Bone 46 294-305
[2]  
Bianchi ML(2004)Osteoporosis prevention starts in adolescence J Am Acad Nurse Pract 16 274-282
[3]  
Garabedian M(2005)GH and IGF-I as therapeutic agents for osteoporosis J Endocrinol Invest 28 32-36
[4]  
McKay HA(2000)Bone resorption by osteoclasts Science 289 1504-1508
[5]  
Moreno LA(2007)Skeletal remodeling in health and disease Nat Med 13 791-801
[6]  
Schettler AE(2005)How to manage osteoporosis in children Best Pract Res Clin Rheumatol 19 991-1005
[7]  
Gustafson EM(2012)Endogenous bone marrow MSCs are dynamic, fate-restricted participants in bone maintenance and regeneration Cell Stem Cell 10 259-272
[8]  
Agnusdei D(2005)The fate of circulating osteoblasts N Engl J Med 352 2014-2016
[9]  
Gentilella R(2009)Insulin receptor isoforms and insulin receptor/insulin-like growth factor receptor hybrids in physiology and disease Endocr Rev 30 586-623
[10]  
Teitelbaum SL(2007)High serum IGFBP-2 is predictive of increased bone turnover in aging men and women J Bone Miner Res 22 799-807