FATP2 regulates osteoclastogenesis by increasing lipid metabolism and ROS production

Author:

Kong Xiangxi12,Tao Siyue12,Ji Zhongyin12,Li Jie3,Li Hui12,Jin Jiayan12,Zhao Yihao14,Liu Junhui12,Zhao Fengdong52,Chen Jian52,Feng Zhenhua52,Chen Binhui3,Shan Zhi52

Affiliation:

1. Department of Orthopaedic Surgery, Zhejiang University School of Medicine, Sir Run Run Shaw Hospital , Hangzhou, 310016, Zhejiang , China

2. Key Laboratory of Musculoskeletal System Degeneration and Regeneration Translational Research of Zhejiang Province , Hangzhou 310016, Zhejiang , China

3. Department of Orthopaedic Surgery, Ningbo Medical Center Li Huili Hospital , Ningbo, 315100, Zhejiang , China

4. Key Laboratory of Musculoskeletal System Degeneration and Regeneration Translational Research of Zhejiang Province , Hangzhou 310016, Zhejiang, China

5. Department of Orthopaedic Surgery, Zhejiang University School of Medicine, Sir Run Run Shaw Hospital , Hangzhou, 310016 , Zhejiang, China

Abstract

Abstract Lipid metabolism plays a crucial role in maintaining bone homeostasis, particularly in osteoclasts (OCs) formation. Here, we found that the expression level of FATP2, a transporter for long-chain and very-long-chain fatty acids, was significantly upregulated during OC differentiation and in the bone marrow of mice fed a high-fat diet (HFD). Notably, the use of FATP2 siRNA or a specific inhibitor (Lipofermata) resulted in significant inhibition of OC differentiation, while only slightly affecting osteoblasts. In pathological models of bone loss induced by LPS or ovariectomy, in vivo treatment with Lipofermata was able to rescue the loss of bone mass by inhibiting OC differentiation. RNA sequencing revealed that Lipofermata reduced fatty acid β-oxidation and inhibited energy metabolism, while regulating ROS metabolism to decrease ROS production, ultimately inhibiting OC differentiation. Treatment with Lipofermata, either in vivo or in vitro, effectively rescued the overactivation of OCs, indicating that FATP2 regulated OC differentiation by modulating fatty acid uptake and energy metabolism. These findings suggested that targeting FATP2 may represent a promising therapeutic approach for pathological osteoporosis.

Funder

Zhejiang Provincial Natural Science Foundation of China

Anhui Provincial Natural Science Foundation

Publisher

Oxford University Press (OUP)

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