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Isolation of Mesenchymal Stem Cells from Human Alveolar Periosteum and Effects of Vitamin D on Osteogenic Activity of Periosteum-derived Cells
Published on: May 4, 2018
1α,25-Dihydroxyvitamin D3 ameliorates diabetes-induced bone loss by attenuating FoxO1-mediated autophagy
Yixuan Jiang1, Wenqiong Luo1, Bin Wang1
1State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, China; Department of Oral Implantology, West China Hospital of Stomatology, Sichuan University, Chengdu, China.
Abstract:
Autophagy is vital for maintaining cellular homeostasis through removing impaired organelles. It has recently been found to play pivotal roles in diabetes mellitus (DM), which is associated with increased bone fracture risk and loss of bone density. However, the mechanism whereby autophagy modulates DM-induced bone loss is not fully elucidated. Previous work has shown that 1α,25-Dihydroxyvitamin D3 (1,25D) exerts positive effects on autophagy, thus affecting bone metabolism. Here, we investigated whether autophagy was involved in the regulation of diabetic bone metabolism. Using Micro-CT, Elisa, histology, and histomorphometry analysis, we demonstrated that 1,25D rescues glucose metabolism dysfunction and ameliorates bone loss in diabetic mice. In vitro, 1,25D alleviated primary osteoblast dysfunction and intracellular oxidative stress through reducing prolonged high-glucose-mediated excessive autophagy in primary osteoblasts, reflected by decreased protein level of Beclin1 and LC3. Of note, the autophagy activator rapamycin (RAP) ablated the positive effects of 1,25D in diabetic environment, leading to a marked increase in autolysosomes and autophagosomes, examined by mRFP-GFP-LC3 fluorescence double labeling. The excessive autophagy induced by high glucose was deleterious to proliferation and differentiation of primary osteoblasts. Additionally, biochemical studies identified that PI3K/Akt signaling could be activated by 1,25D, resulting in the inhibition of FoxO1. We confirmed that FoxO1 deficiency alleviated high-glucose-induced autophagy and improved biological functions of primary osteoblasts. Together, our results suggest that the PI3K/Akt/FoxO1 signaling pathway is involved in the osteoprotective effect of 1,25D by attenuating autophagy in diabetes, providing a novel insight for the prevention and treatment of diabetes-caused bone loss.
Insights
Vitamin D (1,25D) protects against diabetes-related bone loss by reducing excessive autophagy in osteoblasts via the PI3K/Akt/FoxO1 pathway. This finding offers new therapeutic strategies for diabetic bone complications.
Area of Science:
- Cell Biology
- Endocrinology
- Bone Metabolism
Background:
- Diabetes mellitus (DM) increases fracture risk and reduces bone density.
- Autophagy, crucial for cellular homeostasis, plays a role in DM-induced bone loss.
- 1α,25-Dihydroxyvitamin D3 (1,25D) influences autophagy and bone metabolism, but its role in diabetic bone loss is unclear.
Purpose of the Study:
- To investigate the role of autophagy in diabetic bone metabolism.
- To determine if 1,25D ameliorates diabetic bone loss by modulating autophagy.
- To elucidate the signaling pathway involved in 1,25D's osteoprotective effects.
Main Methods:
- In vivo studies using diabetic mouse models.
- In vitro experiments with primary osteoblasts.
- Micro-CT, Elisa, histology, and histomorphometry analyses.
- mRFP-GFP-LC3 fluorescence double labeling to assess autophagy.
- Western blotting to analyze PI3K/Akt/FoxO1 signaling.
Main Results:
- 1,25D treatment improved glucose metabolism and bone density in diabetic mice.
- 1,25D reduced high-glucose-induced excessive autophagy and oxidative stress in osteoblasts.
- Autophagy inhibition by 1,25D was linked to the PI3K/Akt/FoxO1 pathway.
- Rapamycin (autophagy activator) negated 1,25D's protective effects.
Conclusions:
- Excessive autophagy induced by high glucose is detrimental to osteoblast function and bone health.
- 1,25D exerts osteoprotective effects in diabetes by attenuating autophagy through the PI3K/Akt/FoxO1 pathway.
- Targeting this pathway offers a potential therapeutic approach for diabetic bone disease.
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