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Dynamic transcriptome analysis of osteal macrophages identifies a distinct subset with senescence features in experimental osteoporosis
Yoshio Nishida, M. Alaa Terkawi, Gen Matsumae, Shunichi Yokota, Taiki Tokuhiro, Yuki Ogawa, Hotaka Ishizu, Junki Shiota, Tsutomu Endo, Hend Alhasan, Taku Ebata, Keita Kitahara, Tomohiro Shimizu, Daisuke Takahashi, Masahiko Takahata, Ken Kadoya, Norimasa Iwasaki
Yoshio Nishida, M. Alaa Terkawi, Gen Matsumae, Shunichi Yokota, Taiki Tokuhiro, Yuki Ogawa, Hotaka Ishizu, Junki Shiota, Tsutomu Endo, Hend Alhasan, Taku Ebata, Keita Kitahara, Tomohiro Shimizu, Daisuke Takahashi, Masahiko Takahata, Ken Kadoya, Norimasa Iwasaki
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Research Article Aging Immunology

Dynamic transcriptome analysis of osteal macrophages identifies a distinct subset with senescence features in experimental osteoporosis

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Abstract

Given the potential fundamental function of osteal macrophages in bone pathophysiology, we study here their precise function in experimental osteoporosis. Gene profiling of osteal macrophages from ovariectomized mice demonstrated the upregulation of genes that were involved in oxidative stress, cell senescence, and apoptotic process. A single-cell RNA-Seq analysis revealed that osteal macrophages were heterogeneously clustered into 6 subsets that expressed proliferative, inflammatory, antiinflammatory, and efferocytosis gene signatures. Importantly, postmenopausal mice exhibited an increase in subset 3 that showed a typical gene signature of cell senescence and inflammation. These findings suggest that the decreased production of estrogen due to postmenopausal condition altered the osteal macrophage subsets, resulting in a shift toward cell senescence and inflammatory conditions in the bone microenvironment. Furthermore, adoptive macrophage transfer onto calvarial bone was performed, and mice that received oxidatively stressed macrophages exhibited greater osteolytic lesions than control macrophages, suggesting the role of these cells in the development of inflammaging in the bone microenvironment. Consistently, depletion of senescent cells and the oxidatively stressed macrophage subset alleviated the excessive bone loss in postmenopausal mice. Our data provided insight into the pathogenesis of osteoporosis and shed light on a therapeutic approach for the treatment or prevention of postmenopausal osteoporosis.

Authors

Yoshio Nishida, M. Alaa Terkawi, Gen Matsumae, Shunichi Yokota, Taiki Tokuhiro, Yuki Ogawa, Hotaka Ishizu, Junki Shiota, Tsutomu Endo, Hend Alhasan, Taku Ebata, Keita Kitahara, Tomohiro Shimizu, Daisuke Takahashi, Masahiko Takahata, Ken Kadoya, Norimasa Iwasaki

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Figure 4

Role of estrogen in development of macrophage senescence.

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Role of estrogen in development of macrophage senescence.
(A) Volcano pl...
(A) Volcano plot for gene profile of peritoneal macrophage data from OVX mice as compared with that of sham mice. Red plots represent upregulated genes, blue plots represent downregulated genes (P < 0.05), and gray plots represent genes that are not significantly regulated. (B) Gene enrichment analysis of genes that are significantly upregulated in OVX peritoneal macrophages. (C) Heatmap for the expression of genes involved in oxidative stress and cellular senescence. (D) Percentage of β-gal–positive macrophages collected from peritoneal cavity of sham and OVX mice. The left panel shows representative images for the stained cells, and the right panel shows the percentage of positive cells. (E) Western blot analysis of senescence markers in peritoneal macrophages of sham and OVX mice. The right panels show quantification of band density for each marker as assessed by Western blotting. (F) Expression of CD52 and P21 in peritoneal macrophages by immunofluorescence test: green for CD52, red for P21, and blue for nuclei. Scale bar is 50 μm. (G and H) In vitro oxidative stress model (exposure to H2O2) and treatment by E2. (G) Comparison of percentage of β-gal–positive macrophages after exposure to H2O2 and treatment with E2. (H) Western blot analysis for senescence markers in macrophages after exposure to H2O2. The right panels show the quantification of band density for each marker as assessed by Western blotting. Bars are the mean ± SEM. The significant difference was determined by the 1-way ANOVA, followed by Tukey’s multiple-comparison procedure for multiple-group comparison, and 2-tailed Student’s t test for 2-group comparison. * = P < 0.05; ** = P < 0.01; *** = P < 0.001.

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