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Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis

Matrilins (MATN1, MATN2, MATN3 and MATN4) are adaptor proteins of the cartilage extracellular matrix (ECM), which bridge the collagen II and proteoglycan networks. In humans, dominant-negative mutations in MATN3 lead to various forms of mild chondrodysplasias. However, single or double matrilin knoc...

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Autores principales: Li, Ping, Fleischhauer, Lutz, Nicolae, Claudia, Prein, Carina, Farkas, Zsuzsanna, Saller, Maximilian Michael, Prall, Wolf Christian, Wagener, Raimund, Heilig, Juliane, Niehoff, Anja, Clausen-Schaumann, Hauke, Alberton, Paolo, Aszodi, Attila
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013758/
https://www.ncbi.nlm.nih.gov/pubmed/31963938
http://dx.doi.org/10.3390/ijms21020666
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author Li, Ping
Fleischhauer, Lutz
Nicolae, Claudia
Prein, Carina
Farkas, Zsuzsanna
Saller, Maximilian Michael
Prall, Wolf Christian
Wagener, Raimund
Heilig, Juliane
Niehoff, Anja
Clausen-Schaumann, Hauke
Alberton, Paolo
Aszodi, Attila
author_facet Li, Ping
Fleischhauer, Lutz
Nicolae, Claudia
Prein, Carina
Farkas, Zsuzsanna
Saller, Maximilian Michael
Prall, Wolf Christian
Wagener, Raimund
Heilig, Juliane
Niehoff, Anja
Clausen-Schaumann, Hauke
Alberton, Paolo
Aszodi, Attila
author_sort Li, Ping
collection PubMed
description Matrilins (MATN1, MATN2, MATN3 and MATN4) are adaptor proteins of the cartilage extracellular matrix (ECM), which bridge the collagen II and proteoglycan networks. In humans, dominant-negative mutations in MATN3 lead to various forms of mild chondrodysplasias. However, single or double matrilin knockout mice generated previously in our laboratory do not show an overt skeletal phenotype, suggesting compensation among the matrilin family members. The aim of our study was to establish a mouse line, which lacks all four matrilins and analyze the consequence of matrilin deficiency on endochondral bone formation and cartilage function. Matn1-4(−/−) mice were viable and fertile, and showed a lumbosacral transition phenotype characterized by the sacralization of the sixth lumbar vertebra. The development of the appendicular skeleton, the structure of the growth plate, chondrocyte differentiation, proliferation, and survival were normal in mutant mice. Biochemical analysis of knee cartilage demonstrated moderate alterations in the extractability of the binding partners of matrilins in Matn1-4(−/−) mice. Atomic force microscopy (AFM) revealed comparable compressive stiffness but higher collagen fiber diameters in the growth plate cartilage of quadruple mutant compared to wild-type mice. Importantly, Matn1-4(−/−) mice developed more severe spontaneous osteoarthritis at the age of 18 months, which was accompanied by changes in the biomechanical properties of the articular cartilage. Interestingly, Matn4(−/−) mice also developed age-associated osteoarthritis suggesting a crucial role of MATN4 in maintaining the stability of the articular cartilage. Collectively, our data provide evidence that matrilins are important to protect articular cartilage from deterioration and are involved in the specification of the vertebral column.
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spelling pubmed-70137582020-03-09 Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis Li, Ping Fleischhauer, Lutz Nicolae, Claudia Prein, Carina Farkas, Zsuzsanna Saller, Maximilian Michael Prall, Wolf Christian Wagener, Raimund Heilig, Juliane Niehoff, Anja Clausen-Schaumann, Hauke Alberton, Paolo Aszodi, Attila Int J Mol Sci Article Matrilins (MATN1, MATN2, MATN3 and MATN4) are adaptor proteins of the cartilage extracellular matrix (ECM), which bridge the collagen II and proteoglycan networks. In humans, dominant-negative mutations in MATN3 lead to various forms of mild chondrodysplasias. However, single or double matrilin knockout mice generated previously in our laboratory do not show an overt skeletal phenotype, suggesting compensation among the matrilin family members. The aim of our study was to establish a mouse line, which lacks all four matrilins and analyze the consequence of matrilin deficiency on endochondral bone formation and cartilage function. Matn1-4(−/−) mice were viable and fertile, and showed a lumbosacral transition phenotype characterized by the sacralization of the sixth lumbar vertebra. The development of the appendicular skeleton, the structure of the growth plate, chondrocyte differentiation, proliferation, and survival were normal in mutant mice. Biochemical analysis of knee cartilage demonstrated moderate alterations in the extractability of the binding partners of matrilins in Matn1-4(−/−) mice. Atomic force microscopy (AFM) revealed comparable compressive stiffness but higher collagen fiber diameters in the growth plate cartilage of quadruple mutant compared to wild-type mice. Importantly, Matn1-4(−/−) mice developed more severe spontaneous osteoarthritis at the age of 18 months, which was accompanied by changes in the biomechanical properties of the articular cartilage. Interestingly, Matn4(−/−) mice also developed age-associated osteoarthritis suggesting a crucial role of MATN4 in maintaining the stability of the articular cartilage. Collectively, our data provide evidence that matrilins are important to protect articular cartilage from deterioration and are involved in the specification of the vertebral column. MDPI 2020-01-19 /pmc/articles/PMC7013758/ /pubmed/31963938 http://dx.doi.org/10.3390/ijms21020666 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Ping
Fleischhauer, Lutz
Nicolae, Claudia
Prein, Carina
Farkas, Zsuzsanna
Saller, Maximilian Michael
Prall, Wolf Christian
Wagener, Raimund
Heilig, Juliane
Niehoff, Anja
Clausen-Schaumann, Hauke
Alberton, Paolo
Aszodi, Attila
Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title_full Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title_fullStr Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title_full_unstemmed Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title_short Mice Lacking the Matrilin Family of Extracellular Matrix Proteins Develop Mild Skeletal Abnormalities and Are Susceptible to Age-Associated Osteoarthritis
title_sort mice lacking the matrilin family of extracellular matrix proteins develop mild skeletal abnormalities and are susceptible to age-associated osteoarthritis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013758/
https://www.ncbi.nlm.nih.gov/pubmed/31963938
http://dx.doi.org/10.3390/ijms21020666
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