Enpp1 mutations promote upregulation of hedgehog signaling in heterotopic ossification with aging

Author:

He ZhongyuanORCID,Zhu Zhengya,Tang Tao,Wang Fuan,Guo Peng,Li Jianfeng,Tung Nguyen Tran Canh,Liang Qian,Liu Shaoyu,Gao ManMan,Liu Xizhe,Zhou Zhiyu

Abstract

Abstract Introduction Heterotopic ossification of the tendon and ligament (HOTL) is a chronic progressive disease that is usually accompanied by thickening and ossification of ligaments and high osteogenic activity of the surrounding ligament tissue. However, the molecular mechanism of maintaining the cellular phenotype of HOTL remains unclear. Materials and methods We first constructed a model of HOTL, Enpp1flox/flox/EIIa-Cre mice, a novel genetic mouse system. Imaging, histological, and cell-level analyses were performed to investigate the progressive ossification of the posterior longitudinal ligament, Achilles tendons, and degeneration joints caused by Enpp1 deficiency. Results The results indicate that Enpp1 deficiency led to markedly progressive heterotopic ossification (HO), especially spine, and Achilles tendons, and was associated with progressive degeneration of the knees. The bone mass was decreased in the long bone. Furthermore, fibroblasts from Enpp1flox/flox/EIIa-Cre mice had greater osteogenic differentiation potential following induction by osteogenesis, accompanied by enhanced hedgehog (Hh) signaling. In addition, fibroblast cells show senescence, and aggravation of the senescence phenotype by further osteogenic induction. Conclusion Our study indicated that with increasing age, mutations in Enpp1 promote ectopic ossification of spinal ligaments and endochondral ossification in tendons and further aggravate knee degeneration by upregulating hedgehog signaling.

Funder

AOCMF Translational approaches for bone constructs CPP, Sun Yat-sen University Clinical Research 5010 Program

National Natural Science Foundation of China

Natural Science Foundation of Guangzhou City

Medical Science and Technology Research Foundation of Guangdong Province

foundation of Shenzhen Committee for foundation of Shenzhen Committee for Science and Technology InnovationScience and Technology Innovation

Sanming Project of Medicine in Shenzhen

Academic Affairs Office of Sun Yat-sen University

Publisher

Springer Science and Business Media LLC

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