Abasic RNA: its formation and potential role in cellular stress response

被引:2
作者
Prashar, Tanya [1 ]
de la Selle, Fernand [1 ]
Hudak, Katalin A. A. [1 ]
机构
[1] York Univ, Dept Biol, 4700 Keele St, Toronto, ON M3J 1P3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Abasic RNA; RNA N-glycosylase; no-go decay; ribosome stalling; R-loops; ribotoxic stress response; RICIN-A-CHAIN; MESSENGER-RNA; NO-GO; PROTEIN-SYNTHESIS; STRANDED-DNA; R-LOOPS; RELEASE; DEPURINATION; YEAST; ACTIVATION;
D O I
10.1080/15476286.2023.2223466
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
RNA is integral to gene expression as messenger RNA (mRNA), transfer RNA (tRNA) and ribosomal RNA (rRNA) each play roles to transmit information from DNA into synthesis of functional proteins. During their lifespan, these nucleic acids may be chemically modified by alkylation, oxidation and the removal of bases, which alters their activity. Though much research has been devoted to the detection and repair of damaged DNA, RNA is viewed as a short-lived molecule that is quickly degraded upon damage. However, recent studies indicate that RNAs that become modified, particularly during stress, function as important signalling molecules. In this review, we focus on the effects of abasic RNAs and the modifications that lead to the loss of a base, as RNAs that are initially methylated or oxidized often become abasic. We describe how these chemical changes occur and cite recent work showing that in addition to being indicators of damage, abasic RNAs function as signals that mediate downstream cellular responses to stress.
引用
收藏
页码:348 / 358
页数:11
相关论文
共 50 条
  • [41] Regulation of eukaryotic transcription initiation in response to cellular stress
    Ferdoush, Jannatul
    Kadir, Rizwaan Abdul
    Ogle, Matthew
    Saha, Ayan
    [J]. GENE, 2024, 924
  • [42] PINCH in the Cellular Stress Response to Tau-Hyperphosphorylation
    Ozdemir, Ahmet Yunus
    Rom, Inna
    Kovalevich, Jane
    Yen, William
    Adiga, Radhika
    Dave, Rajnish S.
    Langford, Dianne
    [J]. PLOS ONE, 2013, 8 (03):
  • [43] MiRNA-Mediated Macrophage Polarization and its Potential Role in the Regulation of Inflammatory Response
    Essandoh, Kobina
    Li, Yutian
    Huo, Jiuzhou
    Fan, Guo-Chang
    [J]. SHOCK, 2016, 46 (02): : 122 - 131
  • [44] The role of the androgen receptor as a driver and mitigator of cellular stress
    Doultsinos, Dimitrios
    Mills, Ian
    [J]. JOURNAL OF MOLECULAR ENDOCRINOLOGY, 2020, 65 (02) : R19 - R33
  • [45] Gold nanourchins induce cellular stress, impair proteostasis and damage RNA
    Samhadaneh, Dana M.
    Alqarni, Khalid A.
    Smart, Adam
    Kuang, Mohuizi
    Moujaber, Ossama
    Maysinger, Dusica
    Stochaj, Ursula
    [J]. NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2019, 22
  • [46] Identification of ARF family in blueberry and its potential involvement of fruit development and pH stress response
    Li, Xuyan
    Zhang, Xiaoyi
    Shi, Tianran
    Chen, Min
    Jia, Chengguo
    Wang, Jingying
    Hou, Zhixia
    Han, Junyou
    Bian, Shaomin
    [J]. BMC GENOMICS, 2022, 23 (01)
  • [47] Messenger RNA processing and its role in diabetes
    Harries, L. W.
    [J]. DIABETIC MEDICINE, 2011, 28 (09) : 1010 - 1017
  • [48] The pleiotropic roles of eIF5A in cellular life and its therapeutic potential in cancer
    Sfakianos, Aristeidis Panagiotis
    Raven, Rebecca Mallory
    Willis, Anne Elizabeth
    [J]. BIOCHEMICAL SOCIETY TRANSACTIONS, 2022, : 1885 - 1895
  • [49] The role of the orexin system in stress response
    Sargin, Derya
    [J]. NEUROPHARMACOLOGY, 2019, 154 : 68 - 78
  • [50] Role of plant autophagy in stress response
    Han, Shaojie
    Yu, Bingjie
    Wang, Yan
    Liu, Yule
    [J]. PROTEIN & CELL, 2011, 2 (10) : 784 - 791