1,915
Views
3
CrossRef citations to date
0
Altmetric
Research Paper

Alterations of long non-coding RNA and mRNA profiles associated with extracellular matrix homeostasis and vascular aging in rats

, , , , , & ORCID Icon show all
Pages 832-843 | Received 29 Dec 2020, Accepted 09 Feb 2021, Published online: 28 Feb 2021

References

  • Ding YN, Tang X, Chen HZ, et al. Epigenetic regulation of vascular aging and age-related vascular diseases. Adv Exp Med Biol. 2018;1086:55–75.
  • Jin J, Liu Y, Huang L, et al. Advances in epigenetic regulation of vascular aging. Rev Cardiovasc Med. 2019;20(1):19–25.
  • Maloberti A, Vallerio P, Triglione N, et al. Vascular aging and disease of the large vessels: role of inflammation. High Blood Press Cardiovasc Prev. 2019;26(3):175–182.
  • Rizzoni D, Rizzoni M, Nardin M, et al. Vascular aging and disease of the small vessels. High Blood Press Cardiovasc Prev. 2019;26(3):183–189.
  • Zanoli L, Lentini P, Briet M, et al. Arterial stiffness in the heart disease of CKD. J Am Soc Nephrol. 2019;30(6):918–928.
  • Camici GG, Savarese G, Akhmedov A, et al. Molecular mechanism of endothelial and vascular aging: implications for cardiovascular disease. Eur Heart J. 2015;36(48):3392–3403.
  • Ungvari Z, Tarantini S, Donato AJ, et al. Mechanisms of vascular aging. Circ Res. 2018;123(7):849–867.
  • Seals DR, Alexander LM. Vascular aging. J Appl Physiol (1985). 2018;125(6):1841–1842.
  • Guzik TJ, Touyz RM. Oxidative stress, inflammation, and vascular aging in hypertension. Hypertension. 2017;70(4):660–667.
  • Serino A, Salazar G. Protective role of polyphenols against vascular inflammation, aging and cardiovascular disease. Nutrients. 2018;11(1):53.
  • Li Y, Xie L, Huang T, et al. Aging neurovascular unit and potential role of DNA damage and repair in combating vascular and neurodegenerative disorders. Front Neurosci. 2019;13:778.
  • Karnewar S, Neeli PK, Panuganti D, et al. Metformin regulates mitochondrial biogenesis and senescence through AMPK mediated H3K79 methylation: relevance in age-associated vascular dysfunction. Biochim Biophys Acta Mol Basis Dis. 2018;1864(4 Pt A):1115–1128.
  • Gil N, Ulitsky I. Regulation of gene expression by cis-acting long non-coding RNAs. Nat Rev Genet. 2020;21(2):102–117.
  • Nair L, Chung H, Basu U. Regulation of long non-coding RNAs and genome dynamics by the RNA surveillance machinery. Nat Rev Mol Cell Biol. 2020;21(3):123–136.
  • Hansji H, Leung EY, Baguley BC, et al. Keeping abreast with long non-coding RNAs in mammary gland development and breast cancer. Front Genet. 2014;5:379.
  • Kok FO, Baker AH. The function of long non-coding RNAs in vascular biology and disease. Vascul Pharmacol. 2019;114:23–30.
  • Chi JS, Li JZ, Jia JJ, et al. Long non-coding RNA ANRIL in gene regulation and its duality in atherosclerosis. J Huazhong Univ Sci Technolog Med Sci. 2017;37(6):816–822.
  • Lin X, Zhan JK, Zhong JY, et al. lncRNA-ES3/miR-34c-5p/BMF axis is involved in regulating high-glucose-induced calcification/senescence of VSMCs. Aging (Albany NY). 2019;11(2):523–535.
  • Tan P, Guo YH, Zhan JK, et al. LncRNA-ANRIL inhibits cell senescence of vascular smooth muscle cells by regulating miR-181a/Sirt1. Biochem Cell Biol. 2019;97(5):571–580.
  • Bianchessi V, Badi I, Bertolotti M, et al. The mitochondrial lncRNA ASncmtRNA-2 is induced in aging and replicative senescence in endothelial cells. J Mol Cell Cardiol. 2015;81:62–70.
  • Hofmann P, Sommer J, Theodorou K, et al. Long non-coding RNA H19 regulates endothelial cell aging via inhibition of STAT3 signalling. Cardiovasc Res. 2019;115(1):230–242.
  • MA C-H, FK L, ZP D, et al. Sex- and strain-related differences in the stress response of mice to CO₂ euthanasia. J Am Assoc Lab Anim Sci. 2018;57(5):513–519.
  • Furió-Tarí P, Tarazona S, Gabaldón T, et al. SpongeScan: a web for detecting microRNA binding elements in lncRNA sequences. Nucleic Acids Res. 2016;44(W1):W176–180.
  • Timmis A, Townsend N, Gale CP, et al. European society of cardiology: cardiovascular disease statistics 2019. Eur Heart J. 2020;41(1):12–85.
  • Zhao Y, Li H, Fang S, et al. NONCODE 2016: an informative and valuable data source of long non-coding RNAs. Nucleic Acids Res. 2016;44(D1):D203–208.
  • Jiang W, Agrawal DK, Boosani CS. Non-coding RNAs as epigenetic gene regulators in cardiovascular diseases. Adv Exp Med Biol. 2020;1229:133–148.
  • Kumar S, Gonzalez EA, Rameshwar P, et al. Non-coding RNAs as mediators of epigenetic changes in malignancies. Cancers (Basel). 2020;12(12):3657.
  • Huarte M. The emerging role of lncRNAs in cancer. Nat Med. 2015;21(11):1253–1261.
  • Pereira Fernandes D, Bitar M, Jacobs FMJ, et al. Long non-coding RNAs in neuronal aging. Noncoding RNA. 2018;4(2):12.
  • Sousa-Franco A, Rebelo K, da Rocha ST, et al. LncRNAs regulating stemness in aging. Aging Cell. 2019;18(1):e12870.
  • Xing W, Gao W, Mao G, et al. Long non-coding RNAs in aging organs and tissues. Clin Exp Pharmacol Physiol. 2017;44(Suppl 1):30–37.
  • Zhang G, Kang Y, Feng X, et al. LncRNAs down-regulate Myh1, Casr, and Mis18a expression in the Substantia Nigra of aged male rats. Aging (Albany NY). 2019;11(19):8313–8328.
  • Liakouli V, Cipriani P, Di Benedetto P, et al. The role of extracellular matrix components in angiogenesis and fibrosis: possible implication for systemic sclerosis. Mod Rheumatol. 2018;28(6):922–932.
  • Mongiat M, Andreuzzi E, Tarticchio G, et al. Extracellular matrix, a hard player in angiogenesis. Int J Mol Sci. 2016;17(11):1822.
  • Li Y, Sun R, Zou J, et al. Dual roles of the AMP-activated protein Kinase pathway in angiogenesis. Cells. 2019;8(7):752.
  • Condorelli G, Latronico MV, Cavarretta E. MicroRNAs in cardiovascular diseases: current knowledge and the road ahead. J Am Coll Cardiol. 2014;63(21):2177–2187.
  • Menghini R, Stöhr R, Federici M. MicroRNAs in vascular aging and atherosclerosis. Ageing Res Rev. 2014;17:68–78.
  • Tang Q, Wan S, Qiao X, et al. MiR-29 promotes ovarian carcinoma cell proliferation through the PTEN pathway. Eur J Gynaecol Oncol. 2020;41(5):774–778.