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Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs

High oxidative stress, Th1/Th17 immune response, M1 macrophage inflammation, and cell death are associated with cardiovascular diseases. Controlled oxidative stress, Th2/Treg anti-tumor immune response, M2 macrophage inflammation, and survival are associated with cancer. MiR-21 protects against card...

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Autores principales: Ginckels, Pieterjan, Holvoet, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: YJBM 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8961704/
https://www.ncbi.nlm.nih.gov/pubmed/35370493
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author Ginckels, Pieterjan
Holvoet, Paul
author_facet Ginckels, Pieterjan
Holvoet, Paul
author_sort Ginckels, Pieterjan
collection PubMed
description High oxidative stress, Th1/Th17 immune response, M1 macrophage inflammation, and cell death are associated with cardiovascular diseases. Controlled oxidative stress, Th2/Treg anti-tumor immune response, M2 macrophage inflammation, and survival are associated with cancer. MiR-21 protects against cardiovascular diseases but may induce tumor growth by retaining the anti-inflammatory M2 macrophage and Treg phenotypes and inhibiting apoptosis. Down-regulation of let-7, miR-1, miR-9, miR-16, miR-20a, miR-22a, miR-23a, miR-24a, miR-26a, miR-29, miR-30a, miR-34a, miR-124, miR-128, miR-130a, miR-133, miR-140, miR-143-145, miR-150, miR-153, miR-181a, miR-378, and miR-383 may aid cancer cells to escape from stresses. Upregulation of miR-146 and miR-223 may reduce anti-tumor immune response together with miR-21 that also protects against apoptosis. MiR-155 and silencing of let-7e, miR-125, and miR-126 increase anti-tumor immune response. MiR expression depends on oxidative stress, cytokines, MYC, and TGF-β, and expression of silencing lncRNAs and circ-RNAs. However, one lncRNA or circ-RNA may have opposite effects by targeting several miRs. For example, PVT1 induces apoptosis by targeting miR-16a and miR-30a but inhibits apoptosis by silencing miR-17. In addition, levels of a non-coding RNA in a cell type depend not only on expression in that cell type but also on an exchange of microvesicles between cell types and tumors. Although we got more insight into the function of a growing number of individual non-coding RNAs, overall, we do not know enough how several of them interact in functional networks and how their expression changes at different stages of disease progression.
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spelling pubmed-89617042022-03-31 Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs Ginckels, Pieterjan Holvoet, Paul Yale J Biol Med Review High oxidative stress, Th1/Th17 immune response, M1 macrophage inflammation, and cell death are associated with cardiovascular diseases. Controlled oxidative stress, Th2/Treg anti-tumor immune response, M2 macrophage inflammation, and survival are associated with cancer. MiR-21 protects against cardiovascular diseases but may induce tumor growth by retaining the anti-inflammatory M2 macrophage and Treg phenotypes and inhibiting apoptosis. Down-regulation of let-7, miR-1, miR-9, miR-16, miR-20a, miR-22a, miR-23a, miR-24a, miR-26a, miR-29, miR-30a, miR-34a, miR-124, miR-128, miR-130a, miR-133, miR-140, miR-143-145, miR-150, miR-153, miR-181a, miR-378, and miR-383 may aid cancer cells to escape from stresses. Upregulation of miR-146 and miR-223 may reduce anti-tumor immune response together with miR-21 that also protects against apoptosis. MiR-155 and silencing of let-7e, miR-125, and miR-126 increase anti-tumor immune response. MiR expression depends on oxidative stress, cytokines, MYC, and TGF-β, and expression of silencing lncRNAs and circ-RNAs. However, one lncRNA or circ-RNA may have opposite effects by targeting several miRs. For example, PVT1 induces apoptosis by targeting miR-16a and miR-30a but inhibits apoptosis by silencing miR-17. In addition, levels of a non-coding RNA in a cell type depend not only on expression in that cell type but also on an exchange of microvesicles between cell types and tumors. Although we got more insight into the function of a growing number of individual non-coding RNAs, overall, we do not know enough how several of them interact in functional networks and how their expression changes at different stages of disease progression. YJBM 2022-03-31 /pmc/articles/PMC8961704/ /pubmed/35370493 Text en Copyright ©2022, Yale Journal of Biology and Medicine https://creativecommons.org/licenses/by-nc/4.0/This is an open access article distributed under the terms of the Creative Commons CC BY-NC license, which permits use, distribution, and reproduction in any medium, provided the original work is properly cited. You may not use the material for commercial purposes.
spellingShingle Review
Ginckels, Pieterjan
Holvoet, Paul
Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title_full Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title_fullStr Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title_full_unstemmed Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title_short Oxidative Stress and Inflammation in Cardiovascular Diseases and Cancer: Role of Non-coding RNAs
title_sort oxidative stress and inflammation in cardiovascular diseases and cancer: role of non-coding rnas
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8961704/
https://www.ncbi.nlm.nih.gov/pubmed/35370493
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