Nupr1 deficiency downregulates HtrA1, enhances SMAD1 signaling, and suppresses age‐related bone loss in male mice

Author:

Murayama Masatoshi1,Hirata Hirohito1,Shiraki Makoto1,Iovanna Juan L.2,Yamaza Takayoshi3,Kukita Toshio3,Komori Toshihisa4,Moriishi Takeshi5,Ueno Masaya1,Morimoto Tadatsugu1,Mawatari Masaaki1,Kukita Akiko6ORCID

Affiliation:

1. Department of Orthopaedic Surgery, Faculty of Medicine Saga University Saga Japan

2. Centre de Recherche en Cancérologie de Marseille, INSERM U 1068, CNRS UMR 7258, Aix‐Marseille Université and Institut Paoli‐Calmettes Parc Scientifique et Technologique de Luminy Marseille France

3. Department of Molecular Cell Biology & Oral Anatomy Kyushu University Graduate School of Dental Science Fukuoka Japan

4. Department of Molecular Bone Biology Nagasaki University Graduate School of Biomedical Science Nagasaki Japan

5. Department of Cell Biology Nagasaki University Graduate School of Biomedical Science Nagasaki Japan

6. Research Center of Arthroplasty, Faculty of Medicine Saga University Saga Japan

Abstract

AbstractNuclear protein 1 (NUPR1) is a stress‐induced protein activated by various stresses, such as inflammation and oxidative stress. We previously reported that Nupr1 deficiency increased bone volume by enhancing bone formation in 11‐week‐old mice. Analysis of differentially expressed genes between wild‐type (WT) and Nupr1‐knockout (Nupr1‐KO) osteocytes revealed that high temperature requirement A 1 (HTRA1), a serine protease implicated in osteogenesis and transforming growth factor‐β signaling was markedly downregulated in Nupr1‐KO osteocytes. Nupr1 deficiency also markedly reduced HtrA1 expression, but enhanced SMAD1 signaling in in vitro‐cultured primary osteoblasts. In contrast, Nupr1 overexpression enhanced HtrA1 expression in osteoblasts, suggesting that Nupr1 regulates HtrA1 expression, thereby suppressing osteoblastogenesis. Since HtrA1 is also involved in cellular senescence and age‐related diseases, we analyzed aging‐related bone loss in Nupr1‐KO mice. Significant spine trabecular bone loss was noted in WT male and female mice during 6−19 months of age, whereas aging‐related trabecular bone loss was attenuated, especially in Nupr1‐KO male mice. Moreover, cellular senescence‐related markers were upregulated in the osteocytes of 6−19‐month‐old WT male mice but markedly downregulated in the osteocytes of 19‐month‐old Nupr1‐KO male mice. Oxidative stress‐induced cellular senescence stimulated Nupr1 and HtrA1 expression in in vitro‐cultured primary osteoblasts, and Nupr1 overexpression enhanced p16ink4a expression in osteoblasts. Finally, NUPR1 expression in osteocytes isolated from the bones of patients with osteoarthritis was correlated with age. Collectively, these results indicate that Nupr1 regulates HtrA1‐mediated osteoblast differentiation and senescence. Our findings unveil a novel Nupr1/HtrA1 axis, which may play pivotal roles in bone formation and age‐related bone loss.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Cell Biology,Clinical Biochemistry,Physiology

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