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Updated: Jun 17, 2025

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Skeletal dysmorphology and mineralization defects in Fgf20 KO mice
Sylvie Dlugosova1, Frantisek Spoutil1, Carlos Eduardo Madureira Trufen1
1Czech Centre for Phenogenomics, Institute of Molecular Genetics of the Czech Academy of Sciences, Vestec, Czechia.
Introduction:
Fibroblast growth factor 20 (Fgf20), a member of the Fgf9 subfamily, was identified as an important regulator of bone differentiation and homeostasis processes. However, the role of Fgf20 in bone physiology has not been approached yet. Here we present a comprehensive bone phenotype analysis of mice with functional ablation of Fgf20.
Methods:
The study conducts an extensive analysis of Fgf20 knockout mice compared to controls, incorporating microCT scanning, volumetric analysis, Fgf9 subfamily expression and stimulation experiment and histological evaluation.
Results:
The bone phenotype could be detected especially in the area of the lumbar and caudal part of the spine and in fingers. Regarding the spine, Fgf20-/- mice exhibited adhesions of the transverse process of the sixth lumbar vertebra to the pelvis as well as malformations in the distal part of their tails. Preaxial polydactyly and polysyndactyly in varying degrees of severity were also detected. High resolution microCT analysis of distal femurs and the fourth lumbar vertebra showed significant differences in structure and mineralization in both cortical and trabecular bone. These findings were histologically validated and may be associated with the expression of Fgf20 in chondrocytes and their progenitors. Moreover, histological sections demonstrated increased bone tissue formation, disruption of Fgf20-/- femur cartilage, and cellular-level alterations, particularly in osteoclasts. We also observed molar dysmorphology, including root taurodontism, and described variations in mineralization and dentin thickness.
Discussion:
Our analysis provides evidence that Fgf20, together with other members of the Fgf9 subfamily, plays a crucial regulatory role in skeletal development and bone homeostasis.
Insights
Fibroblast growth factor 20 (Fgf20) deficiency in mice causes skeletal abnormalities, including spinal malformations, digit defects, and altered bone structure. This highlights Fgf20
Area of Science:
- Skeletal biology and bone physiology.
- Developmental biology and genetic regulation of skeletal development.
Background:
- Fibroblast growth factor 20 (Fgf20) is a member of the Fgf9 subfamily.
- Fgf20 is implicated in bone differentiation and homeostasis.
- The specific role of Fgf20 in bone physiology remains largely unexplored.
Purpose of the Study:
- To conduct a comprehensive bone phenotype analysis of mice lacking functional Fgf20.
- To investigate the role of Fgf20 in skeletal development and bone homeostasis.
Main Methods:
- Analysis of Fgf20 knockout mice compared to wild-type controls.
- High-resolution microCT scanning and volumetric analysis of bone structure.
- Histological evaluation of bone and cartilage tissues.
- Assessment of Fgf9 subfamily expression and stimulation experiments.
Main Results:
- Skeletal abnormalities were observed in the spine and digits of Fgf20 knockout mice.
- Specific findings include vertebral adhesions, tail malformations, polydactyly, and polysyndactyly.
- MicroCT and histological analyses revealed significant differences in bone structure, mineralization, and cellular composition (including osteoclasts).
- Molar dysmorphology, such as taurodontism, and variations in dentin thickness were also noted.
Conclusions:
- Fgf20 plays a critical regulatory role in skeletal development.
- Fgf20 is essential for maintaining bone homeostasis.
- These findings underscore the importance of the Fgf9 subfamily in skeletal development and function.
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