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PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation

Recent genome-wide association and transcriptome-wide association studies have identified an association between the PALMD locus, encoding palmdelphin, a protein involved in myoblast differentiation, and calcific aortic valve disease (CAVD). Nevertheless, the function and underlying mechanisms of PA...

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Autores principales: Wang, Siying, Yu, Hongjiao, Gao, Jun, Chen, Jiaxin, He, Pengcheng, Zhong, Hui, Tan, Xiao, Staines, Katherine A., Macrae, Vicky E., Fu, Xiaodong, Jiang, Lei, Zhu, Dongxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065630/
https://www.ncbi.nlm.nih.gov/pubmed/35367413
http://dx.doi.org/10.1016/j.jbc.2022.101887
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author Wang, Siying
Yu, Hongjiao
Gao, Jun
Chen, Jiaxin
He, Pengcheng
Zhong, Hui
Tan, Xiao
Staines, Katherine A.
Macrae, Vicky E.
Fu, Xiaodong
Jiang, Lei
Zhu, Dongxing
author_facet Wang, Siying
Yu, Hongjiao
Gao, Jun
Chen, Jiaxin
He, Pengcheng
Zhong, Hui
Tan, Xiao
Staines, Katherine A.
Macrae, Vicky E.
Fu, Xiaodong
Jiang, Lei
Zhu, Dongxing
author_sort Wang, Siying
collection PubMed
description Recent genome-wide association and transcriptome-wide association studies have identified an association between the PALMD locus, encoding palmdelphin, a protein involved in myoblast differentiation, and calcific aortic valve disease (CAVD). Nevertheless, the function and underlying mechanisms of PALMD in CAVD remain unclear. We herein investigated whether and how PALMD affects the pathogenesis of CAVD using clinical samples from CAVD patients and a human valve interstitial cell (hVIC) in vitro calcification model. We showed that PALMD was upregulated in calcified regions of human aortic valves and calcified hVICs. Furthermore, silencing of PALMD reduced hVIC in vitro calcification, osteogenic differentiation, and apoptosis, whereas overexpression of PALMD had the opposite effect. RNA-Seq of PALMD-depleted hVICs revealed that silencing of PALMD reduced glycolysis and nuclear factor-κB (NF-κB)–mediated inflammation in hVICs and attenuated tumor necrosis factor α–induced monocyte adhesion to hVICs. Having established the role of PALMD in hVIC glycolysis, we examined whether glycolysis itself could regulate hVIC osteogenic differentiation and inflammation. Intriguingly, the inhibition of PFKFB3-mediated glycolysis significantly attenuated osteogenic differentiation and inflammation of hVICs. However, silencing of PFKFB3 inhibited PALMD-induced hVIC inflammation, but not osteogenic differentiation. Finally, we showed that the overexpression of PALMD enhanced hVIC osteogenic differentiation and inflammation, as opposed to glycolysis, through the activation of NF-κB. The present study demonstrates that the genome-wide association– and transcriptome-wide association–identified CAVD risk gene PALMD may promote CAVD development through regulation of glycolysis and NF-κB–mediated inflammation. We propose that targeting PALMD-mediated glycolysis may represent a novel therapeutic strategy for treating CAVD.
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spelling pubmed-90656302022-05-04 PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation Wang, Siying Yu, Hongjiao Gao, Jun Chen, Jiaxin He, Pengcheng Zhong, Hui Tan, Xiao Staines, Katherine A. Macrae, Vicky E. Fu, Xiaodong Jiang, Lei Zhu, Dongxing J Biol Chem Research Article Recent genome-wide association and transcriptome-wide association studies have identified an association between the PALMD locus, encoding palmdelphin, a protein involved in myoblast differentiation, and calcific aortic valve disease (CAVD). Nevertheless, the function and underlying mechanisms of PALMD in CAVD remain unclear. We herein investigated whether and how PALMD affects the pathogenesis of CAVD using clinical samples from CAVD patients and a human valve interstitial cell (hVIC) in vitro calcification model. We showed that PALMD was upregulated in calcified regions of human aortic valves and calcified hVICs. Furthermore, silencing of PALMD reduced hVIC in vitro calcification, osteogenic differentiation, and apoptosis, whereas overexpression of PALMD had the opposite effect. RNA-Seq of PALMD-depleted hVICs revealed that silencing of PALMD reduced glycolysis and nuclear factor-κB (NF-κB)–mediated inflammation in hVICs and attenuated tumor necrosis factor α–induced monocyte adhesion to hVICs. Having established the role of PALMD in hVIC glycolysis, we examined whether glycolysis itself could regulate hVIC osteogenic differentiation and inflammation. Intriguingly, the inhibition of PFKFB3-mediated glycolysis significantly attenuated osteogenic differentiation and inflammation of hVICs. However, silencing of PFKFB3 inhibited PALMD-induced hVIC inflammation, but not osteogenic differentiation. Finally, we showed that the overexpression of PALMD enhanced hVIC osteogenic differentiation and inflammation, as opposed to glycolysis, through the activation of NF-κB. The present study demonstrates that the genome-wide association– and transcriptome-wide association–identified CAVD risk gene PALMD may promote CAVD development through regulation of glycolysis and NF-κB–mediated inflammation. We propose that targeting PALMD-mediated glycolysis may represent a novel therapeutic strategy for treating CAVD. American Society for Biochemistry and Molecular Biology 2022-04-01 /pmc/articles/PMC9065630/ /pubmed/35367413 http://dx.doi.org/10.1016/j.jbc.2022.101887 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Wang, Siying
Yu, Hongjiao
Gao, Jun
Chen, Jiaxin
He, Pengcheng
Zhong, Hui
Tan, Xiao
Staines, Katherine A.
Macrae, Vicky E.
Fu, Xiaodong
Jiang, Lei
Zhu, Dongxing
PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title_full PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title_fullStr PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title_full_unstemmed PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title_short PALMD regulates aortic valve calcification via altered glycolysis and NF-κB–mediated inflammation
title_sort palmd regulates aortic valve calcification via altered glycolysis and nf-κb–mediated inflammation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065630/
https://www.ncbi.nlm.nih.gov/pubmed/35367413
http://dx.doi.org/10.1016/j.jbc.2022.101887
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