MALAT1 regulates hypertrophy of cardiomyocytes by modulating the miR-181a/HMGB2 pathway.
Journal
European journal of histochemistry : EJH
ISSN: 2038-8306
Titre abrégé: Eur J Histochem
Pays: Italy
ID NLM: 9207930
Informations de publication
Date de publication:
21 Jun 2022
21 Jun 2022
Historique:
received:
20
04
2022
accepted:
25
05
2022
entrez:
21
6
2022
pubmed:
22
6
2022
medline:
23
6
2022
Statut:
epublish
Résumé
Noncoding RNAs are important for regulation of cardiac hypertrophy. The function of MALAT1 (a long noncoding mRNA), miR-181a, and HMGB2; their contribution to cardiac hypertrophy; and the regulatory relationship between them during this process remain unknown. In the present study, we treated primary cardiomyocytes with angiotensin II (Ang II) to mimic cardiac hypertrophy. MALAT1 expression was significantly downregulated in Ang II-treated cardiomyocytes compared with control cardiomyocytes. Ang II-induced cardiac hypertrophy was suppressed by overexpression of MALAT1 and promoted by genetic knockdown of MALAT1. A dual-luciferase reporter assay demonstrated that MALAT1 acted as a sponge for miR-181a and inhibited its expression during cardiac hypertrophy. Cardiac hypertrophy was suppressed by overexpression of a miR-181a inhibitor and enhanced by overexpression of a miR-181a mimic. HMGB2 was downregulated during cardiac hypertrophy and was identified as a target of miR-181a by bioinformatics analysis and a dual-luciferase reporter assay. miR-181a overexpression decreased the mRNA and protein levels of HMGB2. Rescue experiments indicated that MALAT1 overexpression reversed the effect of miR-181a on HMGB2 expression. In summary, the results of the present study show that MALAT1 acts as a sponge for miR-181a and thereby regulates expression of HMGB2 and development of cardiac hypertrophy. The novel MALAT1/miR-181a/HMGB2 axis might play a crucial role in cardiac hypertrophy and serve as a new therapeutic target.
Identifiants
pubmed: 35726535
doi: 10.4081/ejh.2022.3426
pmc: PMC9251611
doi:
Substances chimiques
HMGB2 Protein
0
MALAT1 long non-coding RNA, human
0
MIrn181 microRNA, human
0
MicroRNAs
0
RNA, Long Noncoding
0
RNA, Messenger
0
Transcription Factors
0
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Références
Open Biol. 2019 Sep 27;9(9):190095
pubmed: 31480991
Exp Ther Med. 2020 Feb;19(2):990-998
pubmed: 32010261
Nat Rev Cardiol. 2015 Aug;12(8):488-97
pubmed: 25962978
JACC Basic Transl Sci. 2019 Dec 23;4(8):976-993
pubmed: 31909304
J Cardiol. 2022 Feb;79(2):233-239
pubmed: 34551866
Circ J. 2019 Jan 25;83(2):368-378
pubmed: 30487376
Mol Cell Biochem. 2016 Jun;417(1-2):191-203
pubmed: 27221738
Biomolecules. 2020 Sep 23;10(10):
pubmed: 32977454
J Cell Mol Med. 2019 Mar;23(3):1671-1677
pubmed: 30648807
Hypertens Res. 2020 May;43(5):372-379
pubmed: 31853043
Eur Rev Med Pharmacol Sci. 2017 Dec;21(23):5462-5470
pubmed: 29243791
Future Med Chem. 2014 Feb;6(2):205-22
pubmed: 24467244
J Biol Chem. 2002 Mar 1;277(9):7157-64
pubmed: 11748232
Heart Fail Rev. 2020 Nov;25(6):1037-1045
pubmed: 31664590
Eur J Histochem. 2021 Sep 27;65(3):
pubmed: 34587717
Atherosclerosis. 2019 Feb;281:180-188
pubmed: 30316538
Eur J Histochem. 2016 Jun 28;60(2):2643
pubmed: 27349320
Cell Cycle. 2019 Oct;18(19):2509-2523
pubmed: 31397203
Cancer Res. 2009 May 15;69(10):4093-6
pubmed: 19435891
Nat Rev Cardiol. 2021 Oct;18(10):735
pubmed: 33479518
Circ Res. 2014 Apr 25;114(9):1389-97
pubmed: 24602777
Int J Mol Med. 2021 Dec;48(6):
pubmed: 34651657
Mol Cell Endocrinol. 2021 Nov 1;537:111445
pubmed: 34464683
Mol Ther Nucleic Acids. 2018 Sep 7;12:254-266
pubmed: 30195764
PLoS One. 2016 Feb 26;11(2):e0150236
pubmed: 26919721
J Cell Mol Med. 2018 Feb;22(2):892-903
pubmed: 29154475
J Cell Mol Med. 2021 Oct;25(19):9241-9254
pubmed: 34448533
J Am Heart Assoc. 2020 Jul 7;9(13):e015640
pubmed: 32538237
Biochem Biophys Res Commun. 2016 Feb 26;471(1):135-41
pubmed: 26845358
J Cell Mol Med. 2016 Mar;20(3):459-70
pubmed: 26647902
Oxid Med Cell Longev. 2021 Apr 15;2021:7848027
pubmed: 33936386
J Am Coll Cardiol. 2021 Apr 6;77(13):1660-1669
pubmed: 33637354
J Cell Sci. 2016 Nov 15;129(22):4305-4316
pubmed: 27672022
Sci Total Environ. 2021 Apr 20;766:142191
pubmed: 33097254
Heart Fail Rev. 2021 Nov;26(6):1505-1514
pubmed: 32297065
Pharmacol Res. 2019 Dec;150:104516
pubmed: 31698066
J Cardiovasc Transl Res. 2018 Dec;11(6):439-449
pubmed: 30171598
Exp Anim. 2020 Jan 29;69(1):34-44
pubmed: 31353329
Nat Rev Mol Cell Biol. 2019 Jan;20(1):21-37
pubmed: 30108335
Development. 2001 Apr;128(8):1265-73
pubmed: 11262228
Free Radic Biol Med. 2021 Apr;166:297-312
pubmed: 33675957
Biomed Pharmacother. 2022 Jan;145:112423
pubmed: 34800783
Mol Cell Proteomics. 2012 Jun;11(6):M111.014258
pubmed: 22270000
Oxid Med Cell Longev. 2018 Apr 18;2018:2109216
pubmed: 29849870
J Biol Chem. 2016 Jul 22;291(30):15428-46
pubmed: 27226577
Eur J Heart Fail. 2020 Aug;22(8):1366-1377
pubmed: 32304626
Ther Adv Med Oncol. 2020 Nov 10;12:1758835920970850
pubmed: 33224279
Blood. 2010 Jan 21;115(3):687-95
pubmed: 19965638
PPAR Res. 2014;2014:541394
pubmed: 24523730
Adv Exp Med Biol. 2020;1229:231-245
pubmed: 32285415
Nat Genet. 1999 Jul;22(3):276-80
pubmed: 10391216
Int J Cardiol. 2021 Mar 15;327:146-154
pubmed: 33212095
Cardiovasc Res. 2013 Sep 1;99(4):657-64
pubmed: 23708738
Proc Natl Acad Sci U S A. 2009 Sep 29;106(39):16817-22
pubmed: 19805379
PLoS Genet. 2013 Mar;9(3):e1003368
pubmed: 23555285
Eur J Histochem. 2007 Apr-Jun;51(2):125-35
pubmed: 17664163
Stem Cell Rev Rep. 2018 Jun;14(3):309-322
pubmed: 29541978