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Regulation of gene expression by PI3K in mouse growth plate chondrocytes
Veronica Ulici1, Claudine G James, Katie D Hoenselaar
1CIHR Group in Skeletal Development and Remodeling, Department of Physiology and Pharmacology, University of Western Ontario, London, Ontario, Canada.
Background:
Endochondral ossification, the process through which long bones are formed, involves chondrocyte proliferation and hypertrophic differentiation in the cartilage growth plate. In a previous publication we showed that pharmacological inhibition of the PI3K signaling pathway results in reduced endochondral bone growth, and in particular, shortening of the hypertrophic zone in a tibia organ culture system. In this current study we aimed to investigate targets of the PI3K signaling pathway in hypertrophic chondrocytes.
Methodology/Principal Findings:
Through the intersection of two different microarray analyses methods (classical single gene analysis and GSEA) and two different chondrocyte differentiation systems (primary chondrocytes treated with a pharmacological inhibitor of PI3K and microdissected growth plates), we were able to identify a high number of genes grouped in GSEA functional categories regulated by the PI3K signaling pathway. Genes such as Phlda2 and F13a1 were down-regulated upon PI3K inhibition and showed increased expression in the hypertrophic zone compared to the proliferative/resting zone of the growth plate. In contrast, other genes including Nr4a1 and Adamts5 were up-regulated upon PI3K inhibition and showed reduced expression in the hypertrophic zone. Regulation of these genes by PI3K signaling was confirmed by quantitative RT-PCR. We focused on F13a1 as an interesting target because of its known role in chondrocyte hypertrophy and osteoarthritis. Mouse E15.5 tibiae cultured with LY294002 (PI3K inhibitor) for 6 days showed decreased expression of factor XIIIa in the hypertrophic zone compared to control cultures.
Conclusions/Significance:
Discovering targets of signaling pathways in hypertrophic chondrocytes could lead to targeted therapy in osteoarthritis and a better understanding of the cartilage environment for tissue engineering.
Insights
The PI3K signaling pathway regulates genes in hypertrophic chondrocytes, impacting endochondral ossification. Identifying these targets, like F13a1, offers potential for osteoarthritis therapies and tissue engineering.
Area of Science:
- Molecular biology
- Skeletal biology
- Cell signaling
Background:
- Endochondral ossification is crucial for long bone formation, involving chondrocyte proliferation and differentiation.
- The PI3K signaling pathway plays a role in endochondral bone growth, with inhibition leading to reduced growth and a shortened hypertrophic zone.
- Investigating PI3K pathway targets in hypertrophic chondrocytes is essential for understanding growth plate development.
Purpose of the Study:
- To identify specific genes and functional categories regulated by the PI3K signaling pathway in hypertrophic chondrocytes.
- To explore the role of identified targets in chondrocyte hypertrophy and potential relevance to osteoarthritis.
Main Methods:
- Utilized two microarray analysis methods (single gene analysis and GSEA) across two chondrocyte differentiation systems.
- Employed primary chondrocytes with PI3K inhibition and microdissected growth plates for gene expression analysis.
- Confirmed PI3K-mediated gene regulation using quantitative RT-PCR and analyzed Factor XIIIa expression in cultured mouse tibiae.
Main Results:
- Identified numerous genes and GSEA functional categories regulated by PI3K signaling in chondrocytes.
- Observed differential regulation of genes like Phlda2, F13a1, Nr4a1, and Adamts5 upon PI3K inhibition.
- Demonstrated decreased expression of Factor XIIIa in the hypertrophic zone of PI3K inhibitor-treated tibia organ cultures, highlighting F13a1 as a key target.
Conclusions:
- Discovery of PI3K signaling targets in hypertrophic chondrocytes provides insights into endochondral ossification.
- Identified genes, such as F13a1, are potential therapeutic targets for osteoarthritis.
- Understanding these pathways enhances cartilage tissue engineering strategies.
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