Nintedanib ameliorates osteoarthritis in mice by inhibiting synovial inflammation and fibrosis caused by M1 polarization of synovial macrophages via the MAPK/PI3K‐AKT pathway

Author:

Yan Jiangbo12ORCID,Feng Gangning12,Yang Yong2,Zhao Xin2,Ma Long2,Guo Haohui2,Chen Xiaolei1,Wang Hui1,Chen Zhirong12,Jin Qunhua123ORCID

Affiliation:

1. Clinical College Ningxia Medical University Yinchuan China

2. Orthopedics Ward 3 The General Hospital of Ningxia Medical University, Ningxia Medical University Yinchuan China

3. Institute of Medical Sciences General Hospital of Ningxia Medical University Yinchuan China

Abstract

AbstractSynovial inflammation and fibrosis are important pathological changes associated with osteoarthritis (OA). Herein, we investigated if nintedanib, a drug specific for pulmonary fibrosis, plays a positive role in osteoarthritic synovial inflammation and fibrosis. We assessed the effect of nintedanib on osteoarthritic synovial inflammation and fibrosis in a mouse model of OA created by destabilization of the medial meniscus and a macrophage M1 polarization model created by stimulating RAW264.7 cells with lipopolysaccharide. Histological staining showed that daily gavage administration of nintedanib significantly alleviated articular cartilage degeneration, reduced the OARSI score, upregulated matrix metalloproteinase‐13 and downregulated collagen II expression, and significantly reduced the synovial score and synovial fibrosis in a mouse OA model. In addition, immunofluorescence staining showed that nintedanib significantly decreased the number of M1 macrophages in the synovium of a mouse model of OA. In vitro results showed that nintedanib downregulated the phosphorylation levels of ERK, JNK, p38, PI3K, and AKT while inhibiting the expression of macrophage M1 polarization marker proteins (CD86, CD80, and iNOS). In conclusion, this study suggests that nintedanib is a potential candidate for OA treatment. The mechanisms of action of nintedanib include the inhibition of M1 polarization in OA synovial macrophages via the MAPK/PI3K‐AKT pathway, inhibition of synovial inflammation and fibrosis, and reduction of articular cartilage degeneration.

Funder

Natural Science Foundation of Ningxia Province

National Natural Science Foundation of China

Publisher

Wiley

Subject

Genetics,Molecular Biology,Biochemistry,Biotechnology

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