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Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation

BACKGROUND: The imbalance between osteoblasts and osteoclasts may lead to osteoporosis. Osteoblasts and osteoclasts have different energy requirements, with aerobic glycolysis being the prominent metabolic feature of osteoblasts, while osteoclast differentiation and fusion are driven by oxidative ph...

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Autores principales: Zhang, Lu, Jiao, Guangjun, You, Yunhao, Li, Xiang, Liu, Jincheng, Sun, Zhenqian, Li, Qinghui, Dai, Zihan, Ma, Jinlong, Zhou, Hongming, Li, Gang, Meng, Chunyang, Chen, Yunzhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10468565/
https://www.ncbi.nlm.nih.gov/pubmed/37649137
http://dx.doi.org/10.1002/ctm2.1369
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author Zhang, Lu
Jiao, Guangjun
You, Yunhao
Li, Xiang
Liu, Jincheng
Sun, Zhenqian
Li, Qinghui
Dai, Zihan
Ma, Jinlong
Zhou, Hongming
Li, Gang
Meng, Chunyang
Chen, Yunzhen
author_facet Zhang, Lu
Jiao, Guangjun
You, Yunhao
Li, Xiang
Liu, Jincheng
Sun, Zhenqian
Li, Qinghui
Dai, Zihan
Ma, Jinlong
Zhou, Hongming
Li, Gang
Meng, Chunyang
Chen, Yunzhen
author_sort Zhang, Lu
collection PubMed
description BACKGROUND: The imbalance between osteoblasts and osteoclasts may lead to osteoporosis. Osteoblasts and osteoclasts have different energy requirements, with aerobic glycolysis being the prominent metabolic feature of osteoblasts, while osteoclast differentiation and fusion are driven by oxidative phosphorylation. METHODS: By polymerase chain reaction as well as Western blotting, we assayed coactivator‐associated arginine methyltransferase 1 (CARM1) expression in bone tissue, the mouse precranial osteoblast cell line MC3T3‐E1 and the mouse monocyte macrophage leukaemia cell line RAW264.7, and expression of related genes during osteogenic differentiation and osteoclast differentiation. Using gene overexpression (lentivirus) and loss‐of‐function approach (CRISPR/Cas9‐mediated knockout) in vitro, we examined whether CARM1 regulates osteogenic differentiation and osteoblast differentiation by metabolic regulation. Transcriptomic assays and metabolomic assays were used to find the mechanism of action of CARM1. Furthermore, in vitro methylation assays were applied to clarify the arginine methylation site of PPP1CA by CARM1. RESULTS: We discovered that CARM1 reprogrammed glucose metabolism in osteoblasts and osteoclasts from oxidative phosphorylation to aerobic glycolysis, thereby promoting osteogenic differentiation and inhibiting osteoclastic differentiation. In vivo experiments revealed that CARM1 significantly decreased bone loss in osteoporosis model mice. Mechanistically, CARM1 methylated R23 of PPP1CA, affected the dephosphorylation of AKT‐T450 and AMPK‐T172, and increased the activities of phosphofructokinase‐1 and pructose‐2,6‐biphosphatase3, causing an up‐regulation of glycolytic flux. At the same time, as a transcriptional coactivator, CARM1 regulated the expression of pyruvate dehydrogenase kinase 3, which resulted in the inhibition of pyruvate dehydrogenase activity and inhibition of the tricarboxylic acid cycle, leading to a subsequent decrease in the flux of oxidative phosphorylation. CONCLUSIONS: These findings reveal for the first time the mechanism by which CARM1 affects both osteogenesis and osteoclast differentiation through metabolic regulation, which may represent a new feasible treatment strategy for osteoporosis.
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spelling pubmed-104685652023-09-01 Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation Zhang, Lu Jiao, Guangjun You, Yunhao Li, Xiang Liu, Jincheng Sun, Zhenqian Li, Qinghui Dai, Zihan Ma, Jinlong Zhou, Hongming Li, Gang Meng, Chunyang Chen, Yunzhen Clin Transl Med Research Articles BACKGROUND: The imbalance between osteoblasts and osteoclasts may lead to osteoporosis. Osteoblasts and osteoclasts have different energy requirements, with aerobic glycolysis being the prominent metabolic feature of osteoblasts, while osteoclast differentiation and fusion are driven by oxidative phosphorylation. METHODS: By polymerase chain reaction as well as Western blotting, we assayed coactivator‐associated arginine methyltransferase 1 (CARM1) expression in bone tissue, the mouse precranial osteoblast cell line MC3T3‐E1 and the mouse monocyte macrophage leukaemia cell line RAW264.7, and expression of related genes during osteogenic differentiation and osteoclast differentiation. Using gene overexpression (lentivirus) and loss‐of‐function approach (CRISPR/Cas9‐mediated knockout) in vitro, we examined whether CARM1 regulates osteogenic differentiation and osteoblast differentiation by metabolic regulation. Transcriptomic assays and metabolomic assays were used to find the mechanism of action of CARM1. Furthermore, in vitro methylation assays were applied to clarify the arginine methylation site of PPP1CA by CARM1. RESULTS: We discovered that CARM1 reprogrammed glucose metabolism in osteoblasts and osteoclasts from oxidative phosphorylation to aerobic glycolysis, thereby promoting osteogenic differentiation and inhibiting osteoclastic differentiation. In vivo experiments revealed that CARM1 significantly decreased bone loss in osteoporosis model mice. Mechanistically, CARM1 methylated R23 of PPP1CA, affected the dephosphorylation of AKT‐T450 and AMPK‐T172, and increased the activities of phosphofructokinase‐1 and pructose‐2,6‐biphosphatase3, causing an up‐regulation of glycolytic flux. At the same time, as a transcriptional coactivator, CARM1 regulated the expression of pyruvate dehydrogenase kinase 3, which resulted in the inhibition of pyruvate dehydrogenase activity and inhibition of the tricarboxylic acid cycle, leading to a subsequent decrease in the flux of oxidative phosphorylation. CONCLUSIONS: These findings reveal for the first time the mechanism by which CARM1 affects both osteogenesis and osteoclast differentiation through metabolic regulation, which may represent a new feasible treatment strategy for osteoporosis. John Wiley and Sons Inc. 2023-08-30 /pmc/articles/PMC10468565/ /pubmed/37649137 http://dx.doi.org/10.1002/ctm2.1369 Text en © 2023 The Authors. Clinical and Translational Medicine published by John Wiley & Sons Australia, Ltd on behalf of Shanghai Institute of Clinical Bioinformatics. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Zhang, Lu
Jiao, Guangjun
You, Yunhao
Li, Xiang
Liu, Jincheng
Sun, Zhenqian
Li, Qinghui
Dai, Zihan
Ma, Jinlong
Zhou, Hongming
Li, Gang
Meng, Chunyang
Chen, Yunzhen
Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title_full Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title_fullStr Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title_full_unstemmed Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title_short Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
title_sort arginine methylation of ppp1ca by carm1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10468565/
https://www.ncbi.nlm.nih.gov/pubmed/37649137
http://dx.doi.org/10.1002/ctm2.1369
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