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Updated: May 2, 2026

Laser Capture Microdissection of Mouse Embryonic Cartilage and Bone for Gene Expression Analysis
Published on: December 18, 2019
Follistatin in chondrocytes: the link between TRPV4 channelopathies and skeletal malformations
Holly A Leddy1, Amy L McNulty1, Suk Hee Lee2
1Department of Orthopaedic Surgery.
Abstract:
Point mutations in the calcium-permeable TRPV4 ion channel have been identified as the cause of autosomal-dominant human motor neuropathies, arthropathies, and skeletal malformations of varying severity. The objective of this study was to determine the mechanism by which TRPV4 channelopathy mutations cause skeletal dysplasia. The human TRPV4(V620I) channelopathy mutation was transfected into primary porcine chondrocytes and caused significant (2.6-fold) up-regulation of follistatin (FST) expression levels. Pore altering mutations that prevent calcium influx through the channel prevented significant FST up-regulation (1.1-fold). We generated a mouse model of the TRPV4(V620I) mutation, and found significant skeletal deformities (e.g., shortening of tibiae and digits, similar to the human disease brachyolmia) and increases in Fst/TRPV4 mRNA levels (2.8-fold). FST was significantly up-regulated in primary chondrocytes transfected with 3 different dysplasia-causing TRPV4 mutations (2- to 2.3-fold), but was not affected by an arthropathy mutation (1.1-fold). Furthermore, FST-loaded microbeads decreased bone ossification in developing chick femora (6%) and tibiae (11%). FST gene and protein levels were also increased 4-fold in human chondrocytes from an individual natively expressing the TRPV4(T89I) mutation. Taken together, these data strongly support that up-regulation of FST in chondrocytes by skeletal dysplasia-inducing TRPV4 mutations contributes to disease pathogenesis.
Insights
Point mutations in the TRPV4 ion channel cause skeletal dysplasia by increasing follistatin (FST) in chondrocytes. This study reveals FST up-regulation as a key mechanism in TRPV4-related bone malformations.
Area of Science:
- Genetics
- Molecular Biology
- Skeletal Biology
Background:
- Point mutations in the TRPV4 ion channel are linked to various human skeletal disorders.
- The precise molecular mechanisms underlying TRPV4-associated skeletal dysplasia remain incompletely understood.
Purpose of the Study:
- To elucidate the mechanism by which TRPV4 channelopathy mutations lead to skeletal dysplasia.
- To investigate the role of follistatin (FST) in TRPV4-related skeletal pathogenesis.
Main Methods:
- Transfection of human TRPV4 mutations into primary porcine and human chondrocytes.
- Generation of a mouse model for TRPV4(V620I) mutation.
- Analysis of FST expression levels via mRNA and protein.
- In vivo assessment of FST effects on bone ossification in chick embryos.
Main Results:
- TRPV4(V620I) mutation significantly up-regulated FST expression in chondrocytes (2.6-fold).
- Skeletal deformities and increased Fst/TRPV4 mRNA were observed in the mouse model.
- Dysplasia-causing TRPV4 mutations increased FST, while an arthropathy mutation did not.
- FST-loaded microbeads reduced bone ossification in chick embryos.
Conclusions:
- Up-regulation of FST in chondrocytes is a significant consequence of skeletal dysplasia-inducing TRPV4 mutations.
- Increased FST contributes to the pathogenesis of TRPV4-related skeletal dysplasia.
- Targeting FST may offer therapeutic potential for TRPV4 channelopathies.
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