An overview of natural products that modulate the expression of non-coding RNAs involved in oxidative stress and inflammation-associated disorders

被引:8
|
作者
Ngum, Jubilate Afuoti [1 ]
Tatang, Fabrice Junior [1 ]
Toumeni, Michelle Hako [1 ]
Nguengo, Sarah Ngate [1 ]
Simo, Ulrich Stephane Fotso [1 ]
Mezajou, Cybelle Fodieu [1 ]
Kameni, Charleine [1 ]
Ngongang, Natacha Njike [1 ]
Tchinda, Maxwell Fofou [1 ]
Dongmo, Fabrice Fabien Dongho [1 ]
Akami, Mazarin [1 ]
Ngono, Annie Rosalie Ngane [1 ]
Tamgue, Ousman [1 ]
机构
[1] Univ Douala, Fac Sci, Dept Biochem, Douala, Cameroon
关键词
oxidative stress; inflammation; disorders; non-coding RNAs; natural products; NF-KAPPA-B; COLON-CANCER CELLS; REACTIVE OXYGEN; TANSHINONE IIA; INHIBITS PROLIFERATION; DIABETIC-NEPHROPATHY; ENDOTHELIAL DYSFUNCTION; HYDROGEN-PEROXIDE; MYOCARDIAL INJURY; PODOCYTE INJURY;
D O I
10.3389/fphar.2023.1144836
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Oxidative stress is a state in which oxidants are produced in excess in the body's tissues and cells, resulting in a biological imbalance amid the generation of reactive oxygen and nitrogen species (RONS) from redox reactions. In case of insufficient antioxidants to balance, the immune system triggers signaling cascades to mount inflammatory responses. Oxidative stress can have deleterious effects on major macromolecules such as lipids, proteins, and nucleic acids, hence, Oxidative stress and inflammation are among the multiple factors contributing to the etiology of several disorders such as diabetes, cancers, and cardiovascular diseases. Non-coding RNAs (ncRNAs) which were once referred to as dark matter have been found to function as key regulators of gene expression through different mechanisms. They have dynamic roles in the onset and development of inflammatory and oxidative stress-related diseases, therefore, are potential targets for the control of those diseases. One way of controlling those diseases is through the use of natural products, a rich source of antioxidants that have drawn attention with several studies showing their involvement in combating chronic diseases given their enormous gains, low side effects, and toxicity. In this review, we highlighted the natural products that have been reported to target ncRNAs as mediators of their biological effects on oxidative stress and several inflammation-associated disorders. Those natural products include Baicalein, Tanshinone IIA, Geniposide, Carvacrol/Thymol, Triptolide, Oleacein, Curcumin, Resveratrol, Solarmargine, Allicin, aqueous extract or pulp of Acai, Quercetin, and Genistein. We also draw attention to some other compounds including Zanthoxylum bungeanum, Canna genus rhizome, Fuzi-ganjiang herb pair, Aronia melanocarpa, Peppermint, and Gingerol that are effective against oxidative stress and inflammation-related disorders, however, have no known effect on ncRNAs. Lastly, we touched on the many ncRNAs that were found to play a role in oxidative stress and inflammation-related disorders but have not yet been investigated as targets of a natural product. Shedding more light into these two last points of shadow will be of great interest in the valorization of natural compounds in the control and therapy of oxidative stress- and inflammation-associated disorders.
引用
收藏
页数:20
相关论文
共 42 条
  • [11] Natural products: Potential targets of TME related long non-coding RNAs in lung cancer
    Malla, Rama Rao
    Padmaraju, Vasudevaraju
    Marni, Rakshmitha
    Kamal, Mohammad Amjad
    PHYTOMEDICINE, 2021, 93
  • [12] Revisiting cancer hallmarks: insights from the interplay between oxidative stress and non-coding RNAs
    Zhou, Li
    Zhang, Zhe
    Huang, Zhao
    Nice, Edouard
    Zou, Bingwen
    Huang, Canhua
    MOLECULAR BIOMEDICINE, 2020, 1 (01):
  • [13] Regulation of Oxidative Stress by Long Non-Coding RNAs in Vascular Complications of Diabetes
    Chu, Pei-Ming
    Yu, Cheng-Chia
    Tsai, Kun-Ling
    Hsieh, Pei-Ling
    LIFE-BASEL, 2022, 12 (02):
  • [14] Immunological processes of enhancers and suppressors of long non-coding RNAs associated with brain tumors and inflammation
    Dehkordi, Hossein Tahmasebi
    Khaledi, Fatemeh
    Ghasemi, Sorayya
    INTERNATIONAL REVIEWS OF IMMUNOLOGY, 2024, 43 (03) : 178 - 196
  • [15] Novel long non-coding RNAs associated with inflammation and macrophage activation in human
    Chini, Avisankar
    Guha, Prarthana
    Malladi, Venkat S. S.
    Guo, Zibiao
    Mandal, Subhrangsu S. S.
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [16] Exosomal non-coding RNAs: key regulators of inflammation-related cardiovascular disorders
    Mohamed J. Saadh
    Faris Anad Muhammad
    Rafid Jihad Albadr
    Gaurav Sanghvi
    Suhas Ballal
    Piyus Kumar Pathak
    Lakshay Bareja
    Zafar Aminov
    Waam Mohammed Taher
    Mariem Alwan
    Mahmood Jasem Jawad
    Ali M. Ali Al-Nuaimi
    European Journal of Medical Research, 30 (1)
  • [17] Role of long non-coding RNAs and natural products in prostate cancer: insights into key signaling pathways
    Doghish, Ahmed S.
    Mageed, Sherif S. Abdel
    Zaki, Mohamed Bakr
    Abd-Elmawla, Mai A.
    Sayed, Ghadir A.
    Hatawsh, Abdulrahman
    Aborehab, Nora M.
    Moussa, Rewan
    Mohammed, Osama A.
    Abdel-Reheim, Mustafa Ahmed
    Elimam, Hanan
    FUNCTIONAL & INTEGRATIVE GENOMICS, 2025, 25 (01)
  • [18] Editorial: Combating Cancer With Natural Products: What Would Non-Coding RNAs Bring?
    Huang, Yongye
    Hou, Yue
    Qu, Peng
    Cai, Yong
    FRONTIERS IN ONCOLOGY, 2021, 11
  • [19] Crosstalk between regulatory non-coding RNAs and oxidative stress in Parkinson's disease
    Zhang, Hantao
    Liu, Xiaoyan
    Liu, Yi
    Liu, Junlin
    Gong, Xun
    Li, Gang
    Tang, Min
    FRONTIERS IN AGING NEUROSCIENCE, 2022, 14
  • [20] Acute liver failure is associated with altered cerebral expression profiles of long non-coding RNAs
    Silva, Vinicius R.
    Secolin, Rodrigo
    Vemuganti, Raghu
    Lopes-Cendes, Iscia
    Hazell, Alan S.
    NEUROSCIENCE LETTERS, 2017, 656 : 58 - 64