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Cartilage -specific knockout of Sirt1 significantly reduces bone quality and catch-up growth efficiency
Biana Shtaif1, Meytal Bar-Maisels2, Yankel Gabet3
1Sackler School of Medicine, Tel Aviv University, Tel Aviv, Israel; Felsenstein Medical Research Center, Petach Tikva, Israel.
Background:
Spontaneous catch-up (CU) growth occurs when a growth-restricting factor is resolved. However, its efficiency is sometimes inadequate and growth deficits remain permanent. The therapeutic toolbox for short stature is currently very limited, thus, finding new regulatory pathways is important for the development of novel means of treatment. Our previous studies using a nutrition-induced CU growth model showed that the level of sirtuin-1 (Sirt1) was significantly increased in food-restricted animals and decreased during CU growth.
Aim:
This study sought to investigate the role of Sirt1 in modulating the response of the epiphyseal growth plate (EGP) to nutritional manipulation.
Method:
Collagen type II-specific Sirt1 knockout (CKO) mice were tested for response to our CU growth model consisting of a period of food restriction followed by re-feeding.
Results:
The transgenic CKO mice weighed more than the control (CTL) mice, their EGP was higher and less organized, specifically at the resting and proliferative zones, leading to shorter bones. Ablation of Sirt1 in the chondrocytes was found to have a dramatic effect on bone mineralization on micro-CT analysis. The CKO mice were less responsive to the nutritional manipulation, and their CU growth was less efficient. They remained shorter than the CTL mice who corrected the food restriction-induced growth deficit during the re-feeding period.
Conclusions:
Sirt1 appears to be important for normal regulation of the EGP. In its absence, the EGP is less organized and CU growth is less efficient. These results suggest that SIRT1 may serve as a novel therapeutic target for short stature.
Insights
Sirtuin-1 (Sirt1) is crucial for regulating the epiphyseal growth plate and enabling catch-up growth after nutritional restriction. Its absence impairs growth plate organization and reduces catch-up growth efficiency, suggesting Sirt1 as a therapeutic target for short stature.
Area of Science:
- Endocrinology
- Skeletal Biology
- Molecular Biology
Background:
- Spontaneous catch-up (CU) growth is vital for recovering from growth restriction, but its effectiveness varies, often leading to permanent growth deficits.
- The limited therapeutic options for short stature necessitate the identification of novel regulatory pathways.
- Previous research indicated that sirtuin-1 (Sirt1) levels increase during food restriction and decrease during CU growth in a nutrition-induced model.
Purpose of the Study:
- To investigate the role of Sirt1 in the epiphyseal growth plate (EGP) response to nutritional manipulation.
- To determine if Sirt1 deficiency impacts catch-up growth efficiency.
Main Methods:
- Utilized a nutrition-induced catch-up growth model in mice.
- Generated collagen type II-specific Sirt1 knockout (CKO) mice.
- Assessed EGP organization, bone mineralization (micro-CT), and growth response to food restriction and re-feeding.
Main Results:
- Sirt1 knockout (CKO) mice exhibited higher, less organized EGPs, particularly in resting and proliferative zones, resulting in shorter bones.
- Ablation of Sirt1 significantly affected bone mineralization.
- CKO mice showed reduced responsiveness to nutritional manipulation and less efficient catch-up growth, remaining shorter than controls.
Conclusions:
- Sirt1 plays a critical role in the normal regulation of the epiphyseal growth plate.
- Sirt1 deficiency leads to disorganized EGPs and impaired catch-up growth.
- SIRT1 inhibition may represent a novel therapeutic strategy for treating short stature.
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