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Visualization and Quantification of Mesenchymal Cell Adipogenic Differentiation Potential with a Lineage Specific Marker
Published on: March 31, 2018
A novel PPARγ2 modulator sLZIP controls the balance between adipogenesis and osteogenesis during mesenchymal stem
Abstract:
Mesenchymal stem cells (MSCs), also known as multipotent stromal cells, are used in clinical trials. However, the use of MSCs for medical treatment of patients poses a potential problem due to the possibility of transdifferentiation into unwanted tissues. Disruption of the balance during MSC differentiation leads to obesity, skeletal fragility, and osteoporosis. Differentiation of MSCs into either adipocytes or osteoblasts is transcriptionally regulated by the two key transcription factors PPARγ2 and Runx2. PPARγ2 is highly expressed during adipocyte differentiation and regulates expression of genes involved in adipogenesis. Runx2 induces osteogenic gene expression and, thereby, increases osteoblast differentiation. Although transcriptional modulation of PPARγ2 has been investigated in adipogenesis, the underlying molecular mechanisms to control the balance between adipogenesis and osteogenesis in MSCs remain unclear. In this study, the role of sLZIP in regulation of PPARγ2 transcriptional activation was investigated along with sLZIP's involvement in differentiation of MSCs into adipocytes and osteoblasts. sLZIP interacts with PPARγ2 and functions as a corepressor of PPARγ2. sLZIP enhances formation of the PPARγ2 corepressor complex through specific interaction with HDAC3, resulting in suppression of PPARγ2 transcriptional activity. We found that sLZIP prevents expression of PPARγ2 target genes and adipocyte differentiation both in vitro and in vivo. sLZIP also upregulates Runx2 transcriptional activity via inhibition of PPARγ2 activity, and promotes osteoblast differentiation. sLZIP transgenic mice exhibited enhanced bone mass and density, compared with wild-type mice. These results indicate that sLZIP has a critical role in the regulation of osteogenesis and bone development. However, sLZIP does not affect chondrogenesis and osteoclastogenesis. We propose that sLZIP is a novel PPARγ2 modulator for control of the balance between adipogenesis and osteogenesis during MSC differentiation, and that sLZIP can be used as a therapeutic target molecule for treatment of obesity, osteodystrophy, and osteoporosis.
Insights
Small leucine-rich protein Y (sLZIP) regulates mesenchymal stem cell differentiation. sLZIP balances adipogenesis and osteogenesis, offering potential therapies for obesity and osteoporosis.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Medicine
Background:
- Mesenchymal stem cells (MSCs) are utilized in clinical trials but face challenges due to potential transdifferentiation into unwanted tissues.
- Imbalances in MSC differentiation contribute to conditions like obesity, skeletal fragility, and osteoporosis.
- The transcriptional regulation of adipogenesis and osteogenesis by PPARγ2 and Runx2 is known, but the precise control mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of sLZIP in regulating PPARγ2 transcriptional activity.
- To elucidate sLZIP's involvement in the differentiation of MSCs into adipocytes and osteoblasts.
- To understand how sLZIP influences the balance between adipogenesis and osteogenesis.
Main Methods:
- Investigated sLZIP's interaction with PPARγ2 and its role as a corepressor.
- Examined sLZIP's effect on PPARγ2 corepressor complex formation with HDAC3.
- Assessed the impact of sLZIP on adipocyte and osteoblast differentiation in vitro and in vivo using sLZIP transgenic mice.
Main Results:
- sLZIP functions as a PPARγ2 corepressor, suppressing PPARγ2 transcriptional activity and inhibiting adipocyte differentiation.
- sLZIP enhances Runx2 transcriptional activity by inhibiting PPARγ2, thereby promoting osteoblast differentiation.
- sLZIP transgenic mice demonstrated increased bone mass and density, indicating a role in osteogenesis and bone development.
Conclusions:
- sLZIP is a novel modulator of PPARγ2, critical for balancing adipogenesis and osteogenesis in MSC differentiation.
- sLZIP plays a key role in regulating osteogenesis and bone development, independent of chondrogenesis and osteoclastogenesis.
- sLZIP represents a potential therapeutic target for managing obesity, osteodystrophy, and osteoporosis.
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