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Angiopoietin-like 8 governs osteoblast-adipocyte lineage commitment during skeletal aging
Yaming Guo, Zeqing Zhang, Junyu He, Peiqiong Luo, Zhihan Wang, Yurong Zhu, Xiaoyu Meng, Limeng Pan, Ranran Kan, Yuxi Xiang, Beibei Mao, Yi He, Siyi Wang, Yan Yang, Fengjing Guo, Hongbo You, Feng Li, Danpei Li, Yong Chen, Xuefeng Yu
Yaming Guo, Zeqing Zhang, Junyu He, Peiqiong Luo, Zhihan Wang, Yurong Zhu, Xiaoyu Meng, Limeng Pan, Ranran Kan, Yuxi Xiang, Beibei Mao, Yi He, Siyi Wang, Yan Yang, Fengjing Guo, Hongbo You, Feng Li, Danpei Li, Yong Chen, Xuefeng Yu
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Research Article Aging Endocrinology

Angiopoietin-like 8 governs osteoblast-adipocyte lineage commitment during skeletal aging

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Abstract

A distinguishing feature of older mesenchymal stem cells (MSCs) from bone marrow (BM) is the transition in their differentiation capabilities from osteoblasts to adipocytes. However, the mechanisms underlying these cellular events during the aging process remain unclear. We identified angiopoietin-like protein 8 (ANGPTL8), an adipokine implicated in lipid metabolism, that influenced the fate of MSCs in BM during skeletal aging. Our studies revealed that ANGPTL8 steered MSCs toward adipogenic differentiation, overshadowing osteoblastogenesis. Mice with overexpressed ANGPTL8 exhibited reduced bone mass and increased BM adiposity, while those with transgenic depletion of ANGPTL8 showed lowered bone loss and less accumulation of BM fat. ANGPTL8 influenced the BM niche of MSCs by inhibiting the Wnt/β-catenin signaling pathway. Partial inhibition of PPARγ rescued some aspects of the phenotype in MSCs with ANGPTL8 overexpression. Furthermore, treatment with an Angptl8 antisense oligonucleotide improved the phenotype of aging mice. Our research suggests that ANGPTL8 is a crucial regulator of senesence-related changes in the BM niche and the cell-fate switch of MSCs.

Authors

Yaming Guo, Zeqing Zhang, Junyu He, Peiqiong Luo, Zhihan Wang, Yurong Zhu, Xiaoyu Meng, Limeng Pan, Ranran Kan, Yuxi Xiang, Beibei Mao, Yi He, Siyi Wang, Yan Yang, Fengjing Guo, Hongbo You, Feng Li, Danpei Li, Yong Chen, Xuefeng Yu

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Figure 2

ANGPTL8 modulates cell-fate choice of MSCs between adipocytes and osteoblasts.

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ANGPTL8 modulates cell-fate choice of MSCs between adipocytes and osteob...
(A) Cell differentiation was assessed 14 days after adipogenic induction by Oil Red O staining in BMMSCs transfected with LV-GFP or LV-ANGPTL8. Scale bar: 50 μm. (B) Quantification of Oil Red O staining in A. n = 3. (C) Cell differentiation was assessed 14 days after osteogenic induction by alizarin red staining in BMMSCs transfected with lentiviral LV-GFP or LV-ANGPTL8. Scale bar: 200 μm. (D) Quantification of calcium mineralization based on alizarin red staining in C. n = 3. (E) qRT-PCR analysis of the mRNA expression of Angptl8, Pparg, Fabp4, Fasn, Ldlr, Runx2, Sp7, p16, and p21 in ANGPTL8-overexpressing BMMSCs. (F) Western blot analysis of ANGPTL8, PPARγ, Fabp4, Fasn, Ldlr, Runx2, Sp7, p16, and p21 in BMMSCs after transfection with LV-GFP or LV-ANGPTL8. (G) Representative images showing immunofluorescent staining of PPARγ in BMMSCs treated with ANGPTL8. Scale bar: 50 μm. (H) The adipogenic potential of BMMSCs after transfected with siANGPTL8 was assessed 14 days after induction of differentiation by Oil Red O staining. Scale bar: 50 μm. (I) Quantification of Oil Eed O staining in H. n = 3. (J) The osteogenic potential of BMMSCs after transfection with siANGPTL8 was assessed 14 days after induction of differentiation by alizarin red staining. Scale bar: 200 μm. (K) Quantification of calcium mineralization based on alizarin red staining in J. n = 3. (L) qRT-PCR analysis of the mRNA expression of Angptl8, Pparg, Fabp4, Fasn, Ldlr, Runx2, Sp7, p16, and p21 in BMMSCs after transfection with siANGPTL8. (M) Western blot analysis of ANGPTL8, PPARγ, Fabp4, Fasn, Ldlr, Runx2, Sp7, p16, and p21 in BMMSCs after transfection with siANGPTL8. (N) ANGPTL8, PPARγ, Fabp4, Fasn, Ldlr, Runx2, Sp7, p16, and p21 expression relative to β-actin was assessed by densitometric analysis from BMMSCs transfected with siANGPTL8. n = 3. Data are mean ± SEM. *P < 0.05; **P < 0.01; ***P < 0.001 by 2-tailed Student’s t test.

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