Cargando…

Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice

Molecular mechanisms transducing physical forces in the bone microenvironment to regulate bone mass are poorly understood. Here, we used mouse genetics, mechanical loading, and pharmacological approaches to test the possibility that polycystin-1 and TAZ have interdependent mechanosensing functions i...

Descripción completa

Detalles Bibliográficos
Autores principales: Xiao, Zhousheng, Cao, Li, Smith, Micholas Dean, Li, Hanxuan, Li, Wei, Smith, Jeremy C., Quarles, Leigh Darryl
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Journal Experts 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10312920/
https://www.ncbi.nlm.nih.gov/pubmed/37398127
http://dx.doi.org/10.21203/rs.3.rs-2957026/v1
_version_ 1785067010061762560
author Xiao, Zhousheng
Cao, Li
Smith, Micholas Dean
Li, Hanxuan
Li, Wei
Smith, Jeremy C.
Quarles, Leigh Darryl
author_facet Xiao, Zhousheng
Cao, Li
Smith, Micholas Dean
Li, Hanxuan
Li, Wei
Smith, Jeremy C.
Quarles, Leigh Darryl
author_sort Xiao, Zhousheng
collection PubMed
description Molecular mechanisms transducing physical forces in the bone microenvironment to regulate bone mass are poorly understood. Here, we used mouse genetics, mechanical loading, and pharmacological approaches to test the possibility that polycystin-1 and TAZ have interdependent mechanosensing functions in osteoblasts. We created and compared the skeletal phenotypes of control Pkd1(flox/+);TAZ(flox/+), single Pkd1(Oc-cKO), single TAZ(Oc-cKO), and double Pkd1/TAZ(Oc-cKO) mice to investigate genetic interactions. Consistent with an interaction between polycystins and TAZ in bone in vivo, double Pkd1/TAZ(Oc-cKO) mice exhibited greater reductions of BMD and periosteal MAR than either single TAZ(Oc-cKO) or Pkd1(Oc-cKO) mice. Micro-CT 3D image analysis indicated that the reduction in bone mass was due to greater loss in both trabecular bone volume and cortical bone thickness in double Pkd1/TAZ(Oc-cKO) mice compared to either single Pkd1(Oc-cKO) or TAZ(Oc-cKO) mice. Double Pkd1/TAZ(Oc-cKO) mice also displayed additive reductions in mechanosensing and osteogenic gene expression profiles in bone compared to single Pkd1(Oc-cKO) or TAZ(Oc-cKO) mice. Moreover, we found that double Pkd1/TAZ(Oc-cKO) mice exhibited impaired responses to tibia mechanical loading in vivo and attenuation of load-induced mechanosensing gene expression compared to control mice. Finally, control mice treated with a small molecule mechanomimetic MS2 had marked increases in femoral BMD and periosteal MAR compared to vehicle control. In contrast, double Pkd1/TAZ(Oc-cKO) mice were resistant to the anabolic effects of MS2 that activates the polycystin signaling complex. These findings suggest that PC1 and TAZ form an anabolic mechanotransduction signaling complex that responds to mechanical loading and serve as a potential novel therapeutic target for treating osteoporosis.
format Online
Article
Text
id pubmed-10312920
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Journal Experts
record_format MEDLINE/PubMed
spelling pubmed-103129202023-07-01 Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice Xiao, Zhousheng Cao, Li Smith, Micholas Dean Li, Hanxuan Li, Wei Smith, Jeremy C. Quarles, Leigh Darryl Res Sq Article Molecular mechanisms transducing physical forces in the bone microenvironment to regulate bone mass are poorly understood. Here, we used mouse genetics, mechanical loading, and pharmacological approaches to test the possibility that polycystin-1 and TAZ have interdependent mechanosensing functions in osteoblasts. We created and compared the skeletal phenotypes of control Pkd1(flox/+);TAZ(flox/+), single Pkd1(Oc-cKO), single TAZ(Oc-cKO), and double Pkd1/TAZ(Oc-cKO) mice to investigate genetic interactions. Consistent with an interaction between polycystins and TAZ in bone in vivo, double Pkd1/TAZ(Oc-cKO) mice exhibited greater reductions of BMD and periosteal MAR than either single TAZ(Oc-cKO) or Pkd1(Oc-cKO) mice. Micro-CT 3D image analysis indicated that the reduction in bone mass was due to greater loss in both trabecular bone volume and cortical bone thickness in double Pkd1/TAZ(Oc-cKO) mice compared to either single Pkd1(Oc-cKO) or TAZ(Oc-cKO) mice. Double Pkd1/TAZ(Oc-cKO) mice also displayed additive reductions in mechanosensing and osteogenic gene expression profiles in bone compared to single Pkd1(Oc-cKO) or TAZ(Oc-cKO) mice. Moreover, we found that double Pkd1/TAZ(Oc-cKO) mice exhibited impaired responses to tibia mechanical loading in vivo and attenuation of load-induced mechanosensing gene expression compared to control mice. Finally, control mice treated with a small molecule mechanomimetic MS2 had marked increases in femoral BMD and periosteal MAR compared to vehicle control. In contrast, double Pkd1/TAZ(Oc-cKO) mice were resistant to the anabolic effects of MS2 that activates the polycystin signaling complex. These findings suggest that PC1 and TAZ form an anabolic mechanotransduction signaling complex that responds to mechanical loading and serve as a potential novel therapeutic target for treating osteoporosis. American Journal Experts 2023-05-29 /pmc/articles/PMC10312920/ /pubmed/37398127 http://dx.doi.org/10.21203/rs.3.rs-2957026/v1 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Xiao, Zhousheng
Cao, Li
Smith, Micholas Dean
Li, Hanxuan
Li, Wei
Smith, Jeremy C.
Quarles, Leigh Darryl
Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title_full Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title_fullStr Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title_full_unstemmed Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title_short Genetic interactions between Polycystin-1 and TAZ in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
title_sort genetic interactions between polycystin-1 and taz in osteoblasts define a novel mechanosensing mechanism regulating bone formation in mice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10312920/
https://www.ncbi.nlm.nih.gov/pubmed/37398127
http://dx.doi.org/10.21203/rs.3.rs-2957026/v1
work_keys_str_mv AT xiaozhousheng geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT caoli geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT smithmicholasdean geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT lihanxuan geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT liwei geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT smithjeremyc geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice
AT quarlesleighdarryl geneticinteractionsbetweenpolycystin1andtazinosteoblastsdefineanovelmechanosensingmechanismregulatingboneformationinmice