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Fibroblast growth factor 7 protects osteoblasts against oxidative damage through targeting mitochondria
Xiaoyu Liu1,2,3, Xuchen Hu1,2,3, Chenguang Niu1,2,3
1Department of Endodontics, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
The pathophysiology of osteoporosis is significantly influenced by the impaired functioning of osteoblasts, which is particularly caused by oxidative stress. Nevertheless, the underlying mechanisms responsible for this phenomenon are still not well understood. The objective of this study was to elucidate the impact of fibroblast growth factor 7 (FGF7) on the behavior of osteoblasts under conditions of oxidative stress. The osteoblast-like MC3T3 cells were pretreated with recombinant FGF7 in the presence of oxidative stress induced by hydrogen peroxide (H2 O2 ). We first provided the evidence that the endogenous FGF7 was significantly increased in osteoblasts in response to the increased H2 O2 levels. Recombined FGF7 demonstrated a remarkable capacity to resist the detrimental effects of H2 O2 -induced oxidative stress, including the increase in cell apoptosis, decrease in osteoblast viability, and impairment in osteogenic differentiation capacity, on osteoblasts. Furthermore, we extensively explored the mechanism underlying these protective effects and discovered a remarkable modulation of reactive oxygen species (ROS) homeostasis in H2 O2 -treated cells following the pronounced expression of FGF7, which significantly differed from the control group. Additionally, we observed that FGF7 exerted partial preservation on both the morphology and function of mitochondria when exposed to oxidative stress conditions. Furthermore, FGF7 exhibited the ability to enhance the activation of the p38/MAPK signaling pathway while concurrently suppressing the JNK/MAPK signaling pathway in response to oxidative stress. These results underscore the promising role and underlying mechanisms of FGF7 in preserving osteoblast homeostasis in the face of oxidative stress.
Insights
Fibroblast growth factor 7 (FGF7) protects osteoblasts from oxidative stress by improving cell viability and differentiation. FGF7 modulates reactive oxygen species and influences key signaling pathways, offering a potential therapeutic strategy for osteoporosis.
Area of Science:
- Biochemistry
- Cell Biology
- Bone Biology
Background:
- Osteoporosis pathophysiology involves impaired osteoblast function due to oxidative stress.
- Mechanisms linking oxidative stress to osteoblast dysfunction are not fully understood.
Purpose of the Study:
- To investigate the impact of fibroblast growth factor 7 (FGF7) on osteoblast behavior under oxidative stress conditions.
- To elucidate the protective mechanisms of FGF7 against hydrogen peroxide (H2O2)-induced damage in osteoblasts.
Main Methods:
- Osteoblast-like MC3T3 cells were pretreated with recombinant FGF7 and exposed to H2O2-induced oxidative stress.
- Assessed cell apoptosis, viability, osteogenic differentiation, reactive oxygen species (ROS) levels, mitochondrial function, and MAPK signaling pathways (p38/MAPK, JNK/MAPK).
Main Results:
- Endogenous FGF7 levels increased in response to H2O2.
- FGF7 treatment significantly reduced H2O2-induced apoptosis and improved osteoblast viability and differentiation.
- FGF7 modulated ROS homeostasis, partially preserved mitochondrial morphology and function, and modulated p38/MAPK and JNK/MAPK signaling.
Conclusions:
- FGF7 demonstrates a protective role against oxidative stress in osteoblasts.
- FGF7 acts by regulating ROS, maintaining mitochondrial integrity, and influencing MAPK signaling pathways.
- FGF7 presents a promising therapeutic candidate for preserving osteoblast homeostasis and potentially treating osteoporosis.
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