Oxidative Medicine and Cellular Longevity

Role of RNA Modifications in Oxidative Stress: From Mechanisms to Therapeutic Approaches


Publishing date
01 Mar 2023
Status
Published
Submission deadline
14 Oct 2022

Lead Editor

1Fourth Military Medical University, Xi'an, China

2Canterbury Christ Church University, Sandwich, UK

3University of Edinburgh, Edinburgh, UK


Role of RNA Modifications in Oxidative Stress: From Mechanisms to Therapeutic Approaches

Description

RNA plays essential roles in not only translating nucleic acids into proteins, but also in gene regulation, environmental interactions, and many human diseases. RNA modifications can be added or removed by a variety of enzymes that catalyze the necessary reactions, and these modifications play roles in essential molecular mechanisms. The prevalent modifications on mRNA include N6-methyladenosine (m6A), N1-methyladenosine (m1A), 5-methylcytosine (m5C), 5-hydroxymethylcytosine (hm5C), pseudouridine (Ψ), inosine (I), uridine (U), ribose-methylation (2'-O-Me), etc. Most of these modifications contribute to pre-mRNA splicing, nuclear export, transcript stability, and translation initiation in eukaryotic cells.

By participating in various physiological processes, RNA modifications have regulatory roles in the pathogenesis of various human diseases. Recently, it has been reported that oxidative stress, a term that describes the imbalance between oxidants and antioxidants, leads to the disruption of redox signals and causes molecular damage. Excessive ROS, generated from various endogenous oxidative biochemical enzymes, interferes with the normal function of cells. Increased oxidative stress from diverse sources has been implicated in various human diseases, such as atherosclerosis, chronic obstructive pulmonary disease, Alzheimer disease, and cancer. Limited evidence suggests that RNA modifications can modulate oxidative stress in human diseases through diverse mechanisms. It is worth noting that oxidative stress also plays a regulatory role in RNA modifications. However, the related studies are still few, and the role of RNA modifications in oxidative stress remains to be clarified.

This Special Issue aims to encourage researchers to submit original research and review articles focused on the discovery of novel RNA modification targets and drugs regulating oxidative stress in human diseases. We hope that the research of this Special Issue will improve our understanding of current and potential therapeutic strategies. We also hope that this provides an understanding of novel candidate targets for treatment.

Potential topics include but are not limited to the following:

  • Molecular mechanisms of epigenetic modifications (e.g., m6A, m1A, m5C, (hm5C, Ψ, I, U, 2'-O-Me) regulating oxidative stress
  • The role of oxidative stress in RNA modification-based therapy
  • Drug discovery and rational design targeting RNA modifications through redox balance for the treatment of human diseases
  • Identification of novel RNA modification targets and signaling pathways involved in oxidative stress in human diseases
  • In vivo and in vitro studies focused on the RNA modification mechanism of small molecular compounds regulating oxidative stress
  • Crosstalk between RNA modifications and oxidative stress in human diseases
  • The role of RNA modifications in oxidative stress-induced cellular senescence
  • Discovery of novel RNA modification types regulating oxidative stress

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 3611540
  • - Research Article

[Retracted] ZFP36 Inhibits Tumor Progression of Human Prostate Cancer by Targeting CDK6 and Oxidative Stress

Dongbo Yuan | Yinyi Fang | ... | Jianguo Zhu
  • Special Issue
  • - Volume 2022
  • - Article ID 5772509
  • - Research Article

[Retracted] Leukemia Inhibitory Factor Facilitates Self-Renewal and Differentiation and Attenuates Oxidative Stress of BMSCs by Activating PI3K/AKT Signaling

Youde Liang | Ruiping Zhou | ... | Xiangxiang Zhao
  • Special Issue
  • - Volume 2022
  • - Article ID 3341038
  • - Research Article

[Retracted] Siglec-15 Regulates the Inflammatory Response and Polarization of Tumor-Associated Macrophages in Pancreatic Cancer by Inhibiting the cGAS-STING Signaling Pathway

HuaGen Li | RongXuan Zhu | ... | DeFei Hong
  • Special Issue
  • - Volume 2022
  • - Article ID 2633123
  • - Research Article

[Retracted] Inflammation and Oxidative Stress Role of S100A12 as a Potential Diagnostic and Therapeutic Biomarker in Acute Myocardial Infarction

Jian Xie | Changjun Luo | ... | Lang Li
  • Special Issue
  • - Volume 2022
  • - Article ID 2775433
  • - Research Article

[Retracted] Circular RNA hsa_circ_0002360 Promotes Proliferation and Invasion and Inhibits Oxidative Stress in Gastric Cancer by Sponging miR-629-3p and Regulating the PDLIM4 Expression

Zhengyuan Yu | Jing Lan | ... | Hao Zhu
  • Special Issue
  • - Volume 2022
  • - Article ID 8619275
  • - Research Article

[Retracted] Delicaflavone Represses Lung Cancer Growth by Activating Antitumor Immune Response through N6-Methyladenosine Transferases and Oxidative Stress

Xuewen Wang | Dafen Xu | ... | Xinhua Lin
  • Special Issue
  • - Volume 2022
  • - Article ID 7671324
  • - Research Article

[Retracted] miR-494-3p Promotes Erastin-Induced Ferroptosis by Targeting REST to Activate the Interplay between SP1 and ACSL4 in Parkinson’s Disease

Jianjun Ma | Xiaohuan Li | ... | Xue Li
  • Special Issue
  • - Volume 2022
  • - Article ID 9399658
  • - Research Article

[Retracted] Chrysophanol Ameliorates Hemin-Induced Oxidative Stress and Endoplasmic Reticulum Stress by Regulating MicroRNA-320-5p/Wnt3a Pathway in HT22 Cells

Xu Zhao | Dongge Qiao | ... | Yinglin Cui
  • Special Issue
  • - Volume 2022
  • - Article ID 9529814
  • - Research Article

[Retracted] Identification of Nine M6A-Related Long Noncoding RNAs as Prognostic Signatures Associated with Oxidative Stress in Oral Cancer Based on Data from The Cancer Genome Atlas

Li Shan | Ye Lu | ... | Xu Cheng
  • Special Issue
  • - Volume 2022
  • - Article ID 7288729
  • - Research Article

[Retracted] ZNF354C Mediated by DNMT1 Ameliorates Lung Ischemia-Reperfusion Oxidative Stress Injury by Reducing TFPI Promoter Methylation to Upregulate TFPI

Qi Shi | Nana Feng | ... | Meng Shi
Oxidative Medicine and Cellular Longevity
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Submission to final decision179 days
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