Discovery of direct inhibitors of Keap1–Nrf2 protein–protein interaction as potential therapeutic and preventive agents

被引:129
作者
Dhulfiqar Ali Abed [1 ]
Melanie Goldstein [1 ]
Haifa Albanyan [1 ]
Huijuan Jin [1 ]
Longqin Hu [1 ,2 ]
机构
[1] Department of Medicinal Chemistry, Ernest Mario School of Pharmacy, Rutgers, The State University of New Jersey
[2] School of Pharmaceutical Sciences, Shanxi Medical University
关键词
D O I
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中图分类号
R96 [药理学];
学科分类号
100706 [药理学];
摘要
The Keap1–Nrf2–ARE pathway is an important antioxidant defense mechanism that protects cells from oxidative stress and the Keap1–Nrf2 protein–protein interaction(PPI) has become an important drug target to upregulate the expression of ARE-controlled cytoprotective oxidative stress response enzymes in the development of therapeutic and preventive agents for a number of diseases and conditions. However, most known Nrf2 activators/ARE inducers are indirect inhibitors of Keap1–Nrf2PPI and they are electrophilic species that act by modifying the sulfhydryl groups of Keap1's cysteine residues. The electrophilicity of these indirect inhibitors may cause "off-target" side effects by reacting with cysteine residues of other important cellular proteins. Efforts have recently been focused on the development of direct inhibitors of Keap1–Nrf2 PPI. This article reviews these recent research efforts including the development of high throughput screening assays, the discovery of peptide and small molecule direct inhibitors, and the biophysical characterization of the binding of these inhibitors to the target Keap1 Kelch domain protein. These non-covalent direct inhibitors of Keap1–Nrf2 PPI could potentially be developed into effective therapeutic or preventive agents for a variety of diseases and conditions.
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页码:285 / 299
页数:15
相关论文
共 53 条
[1]
Peptide inhibitors of the Keapl-Nrf2 protein-protein interaction with improved binding and cellular activity Hancock;R;Schaap;M;Pfister;H;Wells;G; Org.Biomol.Chem 2013,
[2]
Rapid Identification of Keapl-Nrf2 Small Molecule Inhibitors through Structure-Based Virtual Screening and Hit-Based Substructure Search Zhuang;C;Narayanapillai;S;Zhang;W;Sham;Y;Xing;C; J Med Chem 2014,
[3]
Coordinate control of expression of Nrf2-modulated genes in the human small airway epithelium is highly responsive to cigarette smoking RH Hübner;JD Schwartz;P Bishnu;B Ferris;L Omberg;JG Mezey;NR Hackett;RG Crystal; Mol Med 2009,
[4]
The Keap1–Nrf2 system and diabetes mellitus[J] Akira Uruno;Yoko Yagishita;Masayuki Yamamoto Archives of Biochemistry and Biophysics 2015,
[5]
The emerging role of redox-sensitive Nrf2–Keap1 pathway in diabetes[J] Elango Bhakkiyalakshmi;Dornadula Sireesh;Palanisamy Rajaguru;Ramasamy Paulmurugan;Kunka Mohanram Ramkumar Pharmacological Research 2015,
[6]
Nrf2: bane or blessing in cancer? [J].
Xiang, MingJun ;
Namani, Akhileshwar ;
Wu, ShiJun ;
Wang, XiaoLi .
JOURNAL OF CANCER RESEARCH AND CLINICAL ONCOLOGY, 2014, 140 (08) :1251-1259
[7]
Protective effect of curcumin against heavy metals-induced liver damage[J] Wylly Ramsés García-Niño;José Pedraza-Chaverrí Food and Chemical Toxicology 2014,
[8]
Luteolin inhibits the Nrf2 signaling pathway and tumor growth in vivo [J].
Chian, Song ;
Thapa, Ruby ;
Chi, Zhexu ;
Wang, Xiu Jun ;
Tang, Xiuwen .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2014, 447 (04) :602-608
[9]
Antioxidants and human diseases[J] Peramaiyan Rajendran;Natarajan Nandakumar;Thamaraiselvan Rengarajan;Rajendran Palaniswami;Edwinoliver Nesamony Gnanadhas;Uppalapati Lakshminarasaiah;Jacob Gopas;Ikuo Nishigaki Clinica Chimica Acta 2014,
[10]
NRF2-regulation in brain health and disease: Implication of cerebral inflammation[J] Mats Sandberg;Jaspal Patil;Barbara D'Angelo;Stephen G. Weber;Carina Mallard Neuropharmacology 2014,