Cytoprotection "gone astray": Nrf2 and its role in cancer

被引:90
作者
Geismann, Claudia [1 ]
Arlt, Alexander [1 ]
Sebens, Susanne [2 ]
Schaefer, Heiner [1 ]
机构
[1] Univ Klinikum Schleswig Holstein, Inst Expt Med, Lab Mol Gastroenterol, Dept Internal Med 1, Kiel, Germany
[2] Univ Klinikum Schleswig Holstein, Inst Expt Med, Inflammatory Carcinogenesis Res Grp, Kiel, Germany
关键词
xenobiotic and oxidative stress; tumorigenesis; cancer therapy; transcription factor; carcinogen; TRANSCRIPTION FACTOR NRF2; ANTIOXIDANT-RESPONSE-ELEMENT; NF-KAPPA-B; COMPONENTS CHLOROGENIC ACID; NF-E2-RELATED FACTOR-2 NRF2; TO-MESENCHYMAL TRANSITION; BROCCOLI SPROUT BEVERAGES; MEDIATED GENE-EXPRESSION; OXIDATIVE STRESS; SIGNALING PATHWAY;
D O I
10.2147/OTT.S36624
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
Nrf2 has gained great attention with respect to its pivotal role in cell and tissue protection. Primarily defending cells against metabolic, xenobiotic and oxidative stress, Nrf2 is essential for maintaining tissue integrity. Owing to these functions, Nrf2 is regarded as a promising drug target in the chemoprevention of diseases, including cancer. However, much evidence has accumulated that the beneficial role of Nrf2 in cancer prevention essentially depends on the tight control of its activity. In fact, the deregulation of Nrf2 is a critical determinant in oncogenesis and found in many types of cancer. Therefore, amplified Nrf2 activity has profound effects on the phenotype of tumor cells, including radio/chemoresistance, apoptosis protection, invasiveness, antisenescence, autophagy deficiency, and angiogenicity. The deregulation of Nrf2 can result from various epigenetic and genetic alterations directly affecting Nrf2 control or from the complex interplay of Nrf2 with numerous oncogenic signaling pathways. Additionally, alterations of the cellular environment, eg, during inflammation, contribute to Nrf2 deregulation and its persistent activation. Therefore, the status of Nrf2 as anti- or protumorigenic is defined by many different modalities. A better understanding of these modalities is essential for the safe use of Nrf2 as an activation target for chemoprevention on the one hand and as an inhibition target in cancer therapy on the other. The present review mainly addresses the conditions that promote the oncogenic function of Nrf2 and the resulting consequences providing the rationale for using Nrf2 as a target structure in cancer therapy.
引用
收藏
页码:1497 / 1518
页数:22
相关论文
共 282 条
[1]
Renal Cyst Formation in Fh1-Deficient Mice Is Independent of the Hif/Phd Pathway: Roles for Fumarate in KEAP1 Succination and Nrf2 Signaling [J].
Adam, Julie ;
Hatipoglu, Emine ;
O'Flaherty, Linda ;
Ternette, Nicola ;
Sahgal, Natasha ;
Lockstone, Helen ;
Baban, Dilair ;
Nye, Emma ;
Stamp, Gordon W. ;
Wolhuter, Kathryn ;
Stevens, Marcus ;
Fischer, Roman ;
Carmeliet, Peter ;
Maxwell, Patrick H. ;
Pugh, Chris W. ;
Frizzell, Norma ;
Soga, Tomoyoshi ;
Kessler, Benedikt M. ;
El-Bahrawy, Mona ;
Ratcliffe, Peter J. ;
Pollard, Patrick J. .
CANCER CELL, 2011, 20 (04) :524-537
[2]
Involvement of Nrf2 activation in resistance to 5-fluorouracil in human colon cancer HT-29 cells [J].
Akhdar, Hanane ;
Loyer, Pascal ;
Rauch, Claudine ;
Corlu, Anne ;
Guillouzo, Andre ;
Morel, Fabrice .
EUROPEAN JOURNAL OF CANCER, 2009, 45 (12) :2219-2227
[3]
Oxidative Stress Induced by Inactivation of TP53INP1 Cooperates with KrasG12D to Initiate and Promote Pancreatic Carcinogenesis in the Murine Pancreas [J].
Al Saati, Talal ;
Clerc, Pascal ;
Hanoun, Naima ;
Peuget, Sylvain ;
Lulka, Hubert ;
Gigoux, Veronique ;
Capilla, Florence ;
Beluchon, Benoit ;
Couvelard, Anne ;
Selves, Janick ;
Buscail, Louis ;
Carrier, Alice ;
Dusetti, Nelson ;
Dufresne, Marlene .
AMERICAN JOURNAL OF PATHOLOGY, 2013, 182 (06) :1996-2004
[4]
[Anonymous], SCIENTIFICA CAIRO
[5]
Repression of cancer protective genes by 17β-estradiol:: Ligand-dependent interaction between human Nrf2 and estrogen receptor α [J].
Ansell, PJ ;
Lo, SC ;
Newton, LG ;
Espinosa-Nicholas, C ;
Zhang, DD ;
Liu, JH ;
Hannink, M ;
Lubahn, DB .
MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2005, 243 (1-2) :27-34
[6]
Phosphorylation of nrf2 in the transcription activation domain by casein kinase 2 (CK2) is critical for the nuclear translocation and transcription activation function of Nrf2 in IMR-32 neuroblastoma cells [J].
Apopa, Patrick L. ;
He, Xiaoqing ;
Ma, Qiang .
JOURNAL OF BIOCHEMICAL AND MOLECULAR TOXICOLOGY, 2008, 22 (01) :63-76
[7]
Inhibition of the Nrf2 transcription factor by the alkaloid trigonelline renders pancreatic cancer cells more susceptible to apoptosis through decreased proteasomal gene expression and proteasome activity [J].
Arlt, A. ;
Sebens, S. ;
Krebs, S. ;
Geismann, C. ;
Grossmann, M. ;
Kruse, M-L ;
Schreiber, S. ;
Schaefer, H. .
ONCOGENE, 2013, 32 (40) :4825-4835
[8]
The 'N-factors' in pancreatic cancer: functional relevance of NF-κB, NFAT and Nrf2 in pancreatic cancer [J].
Arlt, A. ;
Schaefer, H. ;
Kalthoff, H. .
ONCOGENESIS, 2012, 1 :e35-e35
[9]
Increased proteasome subunit protein expression and proteasome activity in colon cancer relate to an enhanced activation of nuclear factor E2-related factor 2 (Nrf2) [J].
Arlt, A. ;
Bauer, I. ;
Schafmayer, C. ;
Tepel, J. ;
Mueerkoester, S. Sebens ;
Brosch, M. ;
Roeder, C. ;
Kalthoff, H. ;
Hampe, J. ;
Moyer, M. P. ;
Foelsch, U. R. ;
Schaefer, H. .
ONCOGENE, 2009, 28 (45) :3983-3996
[10]
NQ01 stabilizes p53 through a distinct pathway [J].
Asher, G ;
Lotem, J ;
Kama, R ;
Sachs, L ;
Shaul, Y .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (05) :3099-3104