scholarly journals Parathyroid Hormone–related Peptide (PTHrP)-dependent and -independent Effects of Transforming Growth Factor β (TGF-β) on Endochondral Bone Formation

1999 ◽  
Vol 145 (4) ◽  
pp. 783-794 ◽  
Author(s):  
Rosa Serra ◽  
Andrew Karaplis ◽  
Philip Sohn

Previously, we showed that expression of a dominant-negative form of the transforming growth factor β (TGF-β) type II receptor in skeletal tissue resulted in increased hypertrophic differentiation in growth plate and articular chondrocytes, suggesting a role for TGF-β in limiting terminal differentiation in vivo. Parathyroid hormone–related peptide (PTHrP) has also been demonstrated to regulate chondrocyte differentiation in vivo. Mice with targeted deletion of the PTHrP gene demonstrate increased endochondral bone formation, and misexpression of PTHrP in cartilage results in delayed bone formation due to slowed conversion of proliferative chondrocytes into hypertrophic chondrocytes. Since the development of skeletal elements requires the coordination of signals from several sources, this report tests the hypothesis that TGF-β and PTHrP act in a common signal cascade to regulate endochondral bone formation. Mouse embryonic metatarsal bone rudiments grown in organ culture were used to demonstrate that TGF-β inhibits several stages of endochondral bone formation, including chondrocyte proliferation, hypertrophic differentiation, and matrix mineralization. Treatment with TGF-β1 also stimulated the expression of PTHrP mRNA. PTHrP added to cultures inhibited hypertrophic differentiation and matrix mineralization but did not affect cell proliferation. Furthermore, terminal differentiation was not inhibited by TGF-β in metatarsal rudiments from PTHrP-null embryos; however, growth and matrix mineralization were still inhibited. The data support the model that TGF-β acts upstream of PTHrP to regulate the rate of hypertrophic differentiation and suggest that TGF-β has both PTHrP-dependent and PTHrP-independent effects on endochondral bone formation.

2015 ◽  
Vol 13 ◽  
pp. 254-265 ◽  
Author(s):  
Wanxun Yang ◽  
Sanne K. Both ◽  
Gerjo J.V.M. van Osch ◽  
Yining Wang ◽  
John A. Jansen ◽  
...  

2010 ◽  
Vol 28 (10) ◽  
pp. 1323-1329 ◽  
Author(s):  
Glyn D. Palmer ◽  
Alejandro H. Piton ◽  
Lwin Mon Thant ◽  
Serafim M. Oliveira ◽  
Marina D'Angelo ◽  
...  

Bone ◽  
2011 ◽  
Vol 48 ◽  
pp. S110
Author(s):  
G.G. Galli ◽  
K.H. de Lichtenberg ◽  
M. Wuelling ◽  
R. Calogero ◽  
A.H. Lund

PLoS ONE ◽  
2013 ◽  
Vol 8 (9) ◽  
pp. e74094 ◽  
Author(s):  
Julie R. Graham ◽  
Angela Chamberland ◽  
Qingcong Lin ◽  
X. Jian Li ◽  
David Dai ◽  
...  

2003 ◽  
Vol 163 (1) ◽  
pp. 157-163 ◽  
Author(s):  
Gabri van der Pluijm ◽  
Martine Deckers ◽  
Bianca Sijmons ◽  
Henny de Groot ◽  
John Bird ◽  
...  

Cartilage ◽  
2021 ◽  
pp. 194760352110572
Author(s):  
Elisabeth Ferreira ◽  
Landon B. Gatrell ◽  
Luke Childress ◽  
Hong Wu ◽  
Ryan M. Porter

Objective To support the preclinical evaluation of therapeutics that target chondrogenesis, our goal was to generate a rat strain that can noninvasively report endogenous chondrogenic activity. Design A transgene was constructed in which the dual expression of bioluminescent (firefly luciferase) and fluorescent (mCherry) reporters is controlled by regulatory sequences from rat Col2a1. Candidate lines were established on a Lewis background and characterized by serial bioluminescence imaging as well as ex vivo measurement of molecular reporter levels in several tissues. The sensitivity and specificity of the reporter strain were assessed in models of orthotopic and ectopic chondrogenesis. Results Substantial bioluminescence signal was detected from cartilaginous regions, including the appendicular synovial joints, spine, sternum, nose, and pinnae. Bioluminescent radiance was intense at 1 month of age, rapidly declined with continued development, yet remained detectable in 2-year-old animals. Explant imaging and immunohistochemistry confirmed that both molecular reporters were localized to cartilage. Implantation of wild-type bone marrow stromal cells into osteochondral defects made in both young adult and aged reporter rats led to a time-dependent elevation of intra-articular reporter activity concurrent with cartilaginous tissue repair. To stimulate ectopic, endochondral bone formation, bone morphogenetic protein 2 was overexpressed in the gastrocnemius muscle, which led to bioluminescent signal that closely preceded heterotopic ossification. Conclusions This strain can help develop strategies to stimulate cartilage repair and endochondral bone formation or to inhibit chondrogenesis associated with heterotopic ossification.


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