Document G5BGRQ2RmLq9yVGmOpdoR5V0x
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functions of NAD(P)H:quinone oxidoreductase
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[8] NAD(P)H:Quinone Oxidoreductase 1 (NQO1, DT-Diaphorase), Functions and Pharmacogenetics
By David Ross and David Siegel
Introduction
NQO1 is a flavoprotein that is known to catalyze two electron reduction of a broad range of substrates.13 As the name of the enzyme suggests, a common group of substrates are quinones, which are reduced via a hydride transfer mechanism to generate the corresponding hydroquinone derivative. Elucidation of the mechanism of catalysis has been facilitated by elucidation of the crystal structure of the enzyme and has been recently summarized.47 The broad substrate specificity has also been explained by structural studies demonstrating the presence of a highly plastic active site that can accommodate a range of structures.8 Because of the many deleterious effects of quinonoid compounds, including their capacity to arylate nucleophiles and generate aggressive oxygen species via redox cycling mechanisms, removal of a quinone from a biological system by NQO1 has been considered to be a detoxification reaction.912 Two electron reduction of certain antitumor quinones such as mitomycin C, E09, streptonigrin and B-lapachone by NQO1, however, results in bioactivation
1 L. Ernster, Methods Enzymol. 10, 309 (1967). 2 C. Lind, E. Cadenas, P. Hochstein, and L. Ernster, Methods Enzymol. 186, 287 (1990). 3 L. Ernster, in ``Pathophysiology of lipid peroxides and free radicals'' (K. Yagi, ed.), p. 149.
Japan Sci. Soc. Press/Karger, Tokyo/Basel, 1998. 4 R. Li, M. Bianchet, P. Talalay, and L. M. Amzel, FASEB J. 9, A1338 (1995). 5 M. Faig, M. A. Bianchet, P. Talalay, S. Chen, S. Winski, D. Ross, and A. L. Mario, Proc.
Natl. Acad. Sci. USA 97, 3177 (2000). 6 G. Cavelier and L. M. Amzel, Proteins 43, 420 (2001). 7 R. Li, M. A. Bianchet, P. Talalay, and L. M. Amzel, Proc. Natl. Acad. Sci. USA 92, 8846
(1995). 8 M. Faig, M. A. Bianchet, S. Winski, R. Hargreaves, C. J. Moody, A. R. Hudnott, D. Ross,
and L. M. Amzel, Structure. (Camb.) 9, 659 (2001). 9 C. Lind, P. Hochstein, and L. Ernster, Arch. Biochem. Biophys. 216, 178 (1982). 10 H. Thor, M. T. Smith, P. Hartzell, G. Bellomo, S. A. Jewell, and S. Orrenius, J. Biol. Chem.
257, 12419 (1982). 11 D. Di Monte, G. Bellomo, H. Thor, P. Nicotera, and S. Orrenius, Arch. Biochem. Biophys.
235, 343 (1984). 12 D. Di Monte, D. Ross, G. Bellomo, L. Eklow, and S. Orrenius, Arch. Biochem. Biophys.
235, 334 (1984).
METHODS IN ENZYMOLOGY, VOL. 382
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116 anticancer quinones and quinone oxidoreductases
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of these compounds to more toxic metabolites.1316 Since NQO1 is expressed at high levels throughout many human solid tumors,17,18 com-
pounds efficiently bioactivated by NQO1 have been designed for the therapy of tumors rich in NQO1.8,1921 Currently, a new NQO1-targeted aziridinylbenzoquinone, RH1,20 is undergoing phase 1 clinical trials. The
role of NQO1 in chemoprotection and its contrasting role in bioactivation of antitumor quinones22,23 and both the gene and protein structure of NQO124,25 have been recently summarized. The purpose of this review is
to introduce the enzyme, to review the possible functions of NQO1, to
summarize current information on polymorphic forms of NQO1 and finally, to summarize the relevance of the common NQO1*2 polymorphism
for chemoprotection, susceptibility to disease and cancer chemotherapy.
Possible Functions of NQO1
Early Work on Mitochondrial Electron Transport and Vitamin K Metabolism When NQO1 was first isolated by Ernster,26,27 there was considerable
controversy regarding a potential role for NQO1 in mitochondrial electron transport. This work was summarized in a fascinating historical review of
13 D. Siegel, N. W. Gibson, P. C. Preusch, and D. Ross, Cancer Res. 50, 7483 (1990). 14 M. I. Walton, P. J. Smith, and P. Workman, Cancer Commun. 3, 199 (1991). 15 H. D. Beall, Y. Liu, D. Siegel, E. M. Bolton, N. W. Gibson, and D. Ross, Biochem.
Pharmacol. 51, 645 (1996). 16 J. J. Pink, S. M. Planchon, C. Tagliarino, M. E. Varnes, D. Siegel, and D. A. Boothman,
J. Biol. Chem. 275, 5416 (2000). 17 D. Siegel, W. A. Franklin, and D. Ross, Clin. Cancer Res. 4, 3083 (1998). 18 D. Siegel and D. Ross, Free Radic. Biol. Med. 29, 246 (2000). 19 H. D. Beall, A. M. Murphy, D. Siegel, R. H. J. Hargreaves, J. Butler, and D. Ross, Mol.
Pharmacol. 48, 499 (1995). 20 S. Winski, R. H. J. Hargreaves, J. Butler, and D. Ross, Clin. Cancer Res. 4, 3083 (1998). 21 S. L. Winski, E. Swann, R. H. Hargreaves, D. L. Dehn, J. Butler, C. J. Moody, and D. Ross,
Biochem. Pharmacol. 61, 1509 (2001). 22 D. Ross, in ``Comprehensive toxicology'' (F. P. Guengerich, ed.), Vol. 3, p. 179. Pergamon,
New York, 1997. 23 D. Ross, J. K. Kepa, S. L. Winski, H. D. Beall, A. Anwar, and D. Siegel, Chem. Biol.
Interact. 129, 77 (2000). 24 D. Ross, in ``Encyclopedia of Molecular Medicine'' p. 2208. John Wiley and Sons,
New York, 2001. 25 D. Ross, ``Atlas genetics cytogenetics oncology hematology'' http://www.infobiogen.fr/
services/chromcancer/Genes/NQO1ID375.html, 2002. 26 L. Ernster and F. Navazio, Acta Chem. Scand. 12, 595 (1958). 27 L. Ernster, Fed. Proc. 17, 216 (1958).
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the enzyme by Ernster in 1987.28 NQO1 was found not to be a component
of the mitochondrial respiratory chain, and attention turned to other pos-
sible physiological functions for the enzyme such as a potential role in vitamin K metabolism, suggested in the early 1960s by Martius.29 The role of
NQO1 in generating reduced vitamin K1 cofactor and triggering protein carboxylation critical to prothrombin synthesis was suggested in rat liver,30
but vitamin K1 was found not to be a substrate for purified NQO1 isolated
from rat liver cytosol, suggesting that other enzyme systems may be more important for vitamin K1 reduction.31
Detoxification of Quinones via Two Electron Reduction
A considerable body of literature exists supporting the role of NQO1 as a detoxification system. Induction of NQO1 has been demonstrated to protect against the cytotoxicity, mutagenicity and carcinogenicity of many compounds.3234 Induction of NQO1 occurs however via the XRE and ARE elements in the NQO1 promoter,35 and many protective enzymes in addition to NQO1 may also be induced via this mechanism. For example, recent work using t-butylhydroquinone, a common inducer used to elevate NQO1, increased the expression of 63 different genes as indicated by microarray analysis.36 This observation emphasizes the need to perform specific studies to define the role of a particular gene in detoxification and a good example is work performed with menadione.
Work by two independent groups a few miles apart in Stockholm in the early 1980s using the naphthoquinone menadione9,10 defined the role of NQO1 as a detoxification enzyme in quinone metabolism. Both menadione-induced arylation of cellular nucleophiles and generation of aggressive oxygen species were diminished in the presence of functional NQO1. Detoxification of quinones by NQO1 has been confirmed by studies in NQO1 knockout mice that demonstrated increased menadione toxicity in NQO1-deficient animals.37 NQO1 knockout animals also demonstrate
28 L. Ernster, Chemica Scripta, 27A, 1 (1987). 29 C. Martius, in ``The Enzymes'' (P. D. Boyer, H. Lardy, and K. Myrback, eds.), Vol. 7,
p. 517. Academic Press, New York, 1960. 30 R. Wallin, S. R. Rannels, and L. F. Martin, Chemica Scripta 27A, 193 (1987). 31 P. C. Preusch and D. M. Smalley, Free Rad. Res. Comm. 8, 401 (1990). 32 C. Huggins and R. Fukunishi, J. Exp. Med. 119, 923 (1964). 33 A. M. Benson, M. J. Hunkler, and P. Talalay, Proc. Natl. Acad. Sci. USA 77, 5216 (1980). 34 P. Talalay and H. J. Prochaska, Chemica Scripta 27A, 61 (1987). 35 J. K. Kepa, R. D. Traver, D. Siegel, S. L. Winski, and D. Ross, Rev. Toxicol. 1, 53 (1997). 36 J. Li, J. M. Lee, and J. A. Johnson, J. Biol. Chem. 277, 388 (2002). 37 V. Radjendirane, P. Joseph, Y. H. Lee, S. Kimura, A. J. P. Klein-Szanto, F. J. Gonzalez,
and A. K. Jaiswal, J. Biol. Chem. 273, 7382 (1998).
118 anticancer quinones and quinone oxidoreductases
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increased benzo[a]pyrene and 7,12-dimethylbenzanthracene-induced mouse skin carcinogenesis.38,39 A role for NQO1 in detoxification is consistent
with the distribution of the enzyme in animal and human systems. In mice,
rats and humans, NQO1 is mainly localized to epithelial and endothelial tissues,17,18 which facilitates exposure of compounds entering the body to
NQO1. An interesting and puzzling species difference in enzyme distribu-
tion is that both rat and mouse liver contain high levels of NQO1, but only
trace levels of NQO1 could be detected by immunoblot analysis in five human liver samples.18 This confirms earlier work demonstrating a low activity of NQO1 in human liver cytosol relative to other species.30
Sharpening the Double-Edged Sword: NQO1 in Bioactivation
It is often difficult to generalize whether NQO1 functions as a detoxification enzyme or a toxification system with an individual substrate. The reactions of the hydroquinone generated will determine whether NQO1 mediated reduction results in deleterious or protective effects in a cellular system. Hydroquinones are not necessarily innocuous species and may autoxidize to generate reactive oxygen species or rearrange to produce reactive arylating species.23 Efficient detoxification of quinones via two electron reduction relies on excretion of the more water soluble hydroquinone or conjugation with glucuronide or sulfate and subsequent excretion.
NQO1 is expressed at high levels throughout many human solid tumors, and a number of compounds clinically used as antitumor agents or in development as experimental antitumor agents can be efficiently bioactivated by NQO1.23,4042,43 Apart from the bioactivation of antitumor quinones such as mitosenes, indolequinones, aziridinylbenzoquinones and others, NQO1 can also bioactivate simpler quinones. Even though the naphthoquinone menadione is detoxified by NQO1, closely related naphthoquinones such as 2-hydroxy-1,4-naphthoquinone44 and -lapachone can be activated by NQO1.16 Interestingly, although NQO1 is predominantly a cytosolic enzyme, recent work has demonstrated a significant nuclear pool of
38 D. J. Long, R. L. Waikel, X. J. Wang, L. Perlaky, D. R. Roop, and A. K. Jaiswal, Cancer
Res. 60, 5913 (2000). 39 D. J. Long, R. L. Waikel, X. J. Wang, D. R. Roop, and A. K. Jaiswal, J. Natl. Cancer Inst.
93, 1166 (2001). 40 D. Ross, D. Siegel, H. Beall, A. S. Prakash, R. T. Mulcahy, and N. W. Gibson, Cancer
Metastasis Rev. 12, 83 (1993). 41 D. Ross, H. Beall, R. D. Traver, D. Siegel, R. M. Phillips, and N. W. Gibson, Oncol. Res.
6, 493 (1994). 42 R. J. Riley and P. Workman, Biochem. Pharmacol. 43, 1657 (1992). 43 H. D. Beall and S. I. Winski, Front Biosci. 5, D639 (2000). 44 R. Munday, B. L. Smith, and C. M. Munday, Chem. Biol. Interact. 117, 241 (1999).
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NQO1 in human tumor cells when using both confocal microscopy and immuno-electron microscopy.45 A nuclear pool of NQO1 may be of considerable importance for the bioactivation of NQO1-directed antitumor quinones that are designed to crosslink DNA. Whether a similar pool of nuclear NQO1 exists in normal cells is currently unclear.
NQO1 as an Antioxidant Enzyme: Role in Ubiquinone and Vitamin E Metabolism
In addition to activation and deactivation of exogenous compounds, NQO1 has been shown to play a role in the metabolism of endogenous quinones such as ubiquinone and vitamin E quinone. These quinones have very large hydrophobic tails, and in their reduced state they protect cellular membranes against lipid peroxidative injury. The reduction of ubiquinone by NQO1 has been shown to generate ubiquinol, and this compound possesses excellent antioxidant properties.46,47 Vitamin E quinone is formed during free radical attack on vitamin E and has been shown to undergo reduction by NQO1 to generate vitamin E hydroquinone.48 Since vitamin E quinone is devoid of antioxidant activity, in this situation NQO1 may extend the antioxidant potential of vitamin E by generation of vitamin E hydroquinone, a compound that has been suggested to have antioxidant properties superior to vitamin E.49
NQO1 as a Component of a Stress Response: Stabilization of p53
Studies with proteins typically considered as metabolic enzymes suggest that these proteins may have additional roles outside the range of their normal metabolic functions. For example, glutathione-S-transferase associates with c-Jun N terminal kinase leading to inhibition of kinase activity and modulation of signaling and cellular proliferation.5052 Recent studies
45 S. L. Winski, Y. Koutalos, D. L. Bentley, and D. Ross, Cancer Research 62, 1420 (2002). 46 R. E. Beyer, J. Segura-Aguilar, S. Di Bernardo, M. Cavazzoni, R. Fato, D. Fiorentini,
M. Galli, M. Setti, L. Landi, and G. Lenaz, Proc. Natl. Acad. Sci. USA 93, 2528 (1996). 47 L. Landi, D. Fiorentini, M. C. Galli, J. Segura-Aguilar, and R. E. Beyer, Free Radic. Biol.
Med. 22, 329 (1997). 48 D. Siegel, E. M. Bolton, J. A. Burr, D. C. Liebler, and D. Ross, Mol. Pharmacol. 52, 300
(1997). 49 I. Kohar, M. Baca, C. Suarna, R. Stocker, and P. T. Southwell-Keely, Free Rad. Biol. Med.
19, 197 (1995). 50 T. Wang, P. Arifoglu, Z. Ronai, and K. D. Tew, J. Biol. Chem. 276, 20999 (2001). 51 V. Adler, Z. Yin, S. Y. Fuchs, M. Benezra, L. Rosario, K. D. Tew, M. R. Pincus, M. Sardana,
C. J. Henderson, C. R. Wolf, R. J. Davis, and Z. Ronai, EMBO J. 18, 1321 (1999). 52 J. E. Ruscoe, L. A. Rosario, T. Wang, L. Gate, P. Arifoglu, C. R. Wolf, C. J. Henderson,
Z. Ronai, and K. D. Tew, J. Pharmacol. Exp. Ther. 298, 339 (2001).
120 anticancer quinones and quinone oxidoreductases
Interaction with additional p53 binding proteins
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NQO1
p53
NQO1
Stability
Instability p53 MDM-2
NQO1
p53
Proteasomal degradation
Fig. 1. Proposed mechanism of stabilization of p53 via a protein-protein interaction with NQO1. See reference 56.
have shown that NQO1 may influence the stability of the tumor suppressor protein p53 by inhibiting its degradation.5355 In these studies the authors hypothesized that the NQO1-mediated conversion of NADH to NAD
promoted stabilization of p53. Our own work has shown a direct physical interaction between p53 and NQO1.56 In these studies, p53 was found to
directly associate with NQO1 in an in vitro translation/transcription
system and in human cancer and primary cell lines. The association be-
tween p53 and NQO1 was not affected by pretreatment with ES936, a
mechanism based inhibitor of NQO1, suggesting that the catalytic activity
of NQO1 was not needed for a protein-protein interaction of p53 and
NQO1 proteins. Anwar et al. proposed that the protein-protein inter-
action of NQO1 and p53 may represent an alternative mechanism of p53 stabilization by NQO1,56 as shown in Fig. 1.
53 G. Asher, J. Lotem, B. Cohen, L. Sachs, and Y. Shaul, Proc. Natl. Acad. Sci. USA 98, 1188
(2001). 54 G. Asher, J. Lotem, R. Kama, L. Sachs, and Y. Shaul, Proc. Natl. Acad. Sci. USA 99, 3099
(2002). 55 G. Asher, J. Lotem, L. Sachs, C. Kahana, and Y. Shaul, Proc. Natl. Acad. Sci. USA 99,
13125 (2002). 56 A. Anwar, D. Dehn, D. Siegel, J. K. Kepa, L. J. Tang, J. A. Pietenpol, and D. Ross, J. Biol.
Chem. 278, 10368 (2003).
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Future Work on Possible Physiological Roles of NQO1
A number of possible functions of NQO1 have been investigated. Many of the pharmacological studies of NQO1 have relied on the use of the inhibitor dicoumarol. The major problem with the use of dicoumarol is its nonspecific nature.57 The recent development of a mechanism-based inhibitor of NQO158 offers the promise of more specific targeting of NQO1. Taken together with the application of gene targeting methods59 and the development of NQO1 knockout animals,37 these approaches should be able to more precisely define the role of NQO1 in cellular systems.
Pharmacogenetics of NQO1
There are two well-characterized polymorphisms in NQO1 with defined phenotypes and population frequencies--the NQO1*260,61 and NQO1*362,63 polymorphisms. A recent review by Nebert and coworkers64 screened the SNP database at the University of Utah and identified 22 SNPs in NQO1. Three of these SNPs had been reported earlier in a study of 84 Japanese volunteers.65 In addition to the NQO1*2 polymorphism, 5 SNPs were found in the 50 flanking region of NQO1, 10 SNPs at 9 sites in intron 1, a synonomous mutation in exon 2, 2 SNPs in the 30 untranslated region and 3 SNPs in the 30 flanking region of the gene.64 The NQO1*3 polymorphism was not detected in the SNP database study. Apart from the NQO1*2 and NQO1*3 polymorphisms, the frequency of the additional 21 variant alleles in the population is unknown and their significance, if any, for phenotype remains to be characterized. Further work needs to be performed to determine if any of the SNP's characterized in the SNP database64 represent true polymorphisms with allele frequencies of greater than 1%.
The two NQO1 variant alleles that have been well-characterized are both coding region alleles that are of sufficient frequency to be
57 P. C. Preusch, D. Siegel, N. W. Gibson, and D. Ross, Free Rad. Biol. Med. 11, 77 (1991). 58 S. L. Winski, M. Faig, M. A. Bianchet, D. Siegel, E. Swann, K. Fung, M. W. Duncan, C. J.
Moody, L. M. Amzel, and D. Ross, Biochemistry 40, 15135 (2001). 59 T. Yoshida and H. Tsuda, Biochem. Biophys. Res. Commun. 214, 701 (1995). 60 R. D. Traver, T. Horikoshi, K. D. Danenberg, T. H. W. Stadlbauer, P. V. Danenberg,
D. Ross, and N. W. Gibson, Cancer Res. 52, 797 (1992). 61 R. D. Traver, D. Siegel, H. D. Beall, R. M. Phillips, N. W. Gibson, W. A. Franklin, and
D. Ross, Br. J. Cancer 75, 69 (1997). 62 S. S. Pan, G. L. Forrest, S. A. Akman, and L.-T. Hu, Cancer Res. 55, 330 (1995). 63 L. T. Hu, J. Stamberb, and S. S. Pan, Cancer Res. 56, 5253 (1996). 64 D. W. Nebert, A. L. Roe, S. E. Vandale, E. Bingham, and G. G. Oakley, Genet. Med. 4, 62
(2002). 65 A. Iida, A. Sekine, S. Saito, Y. Kitamura, T. Kitamoto, S. Osawa, C. Mishima, and Y.
Nakamura, J. Hum. Genet. 46, 225 (2001).
122 anticancer quinones and quinone oxidoreductases
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characterized as polymorphisms (allele frequency > 0.01). The most prevalent variant allele is the NQO1*2 polymorphism,66,67 which has profound implications for phenotype68; individuals carrying the homozygous NQO1*2 allele have no NQO1 activity. The phenotypic implications of the NQO1*3 allele vary according to substrate,62 and the frequency of the NQO1*3 allele in the population is very low.66
Research into the identification and significance of NQO1 polymor-
phisms is increasing, and a search of the PubMed database in March 2003
resulted in 82 hits when using the keywords NQO1 and polymorphism. Ten
additional studies of NQO1 polymorphisms were obvious from additional
PubMed searches of NQO1-related publications generating a total of 92
publications related to NQO1 polymorphisms. The majority of work on NQO1 polymorphisms has focused on the NQO1*2 polymorphism, and
to give the reader some sense of impact of this polymorphism in different
disciplines, we have classified each of these studies into a particular
subgroup (Table I).
Polymorphisms in NQO1
NQO1*2 Polymorphism
Genotype-Phenotype Relationships
The NQO1*2 polymorphism was characterized in a collaboration between our own laboratory and that of Dr. Neil Gibson. During investigations of a series of human colon carcinoma cell lines60 and lung tumor cell lines,61 a good correlation was observed between NQO1 mRNA levels and NQO1 activity. In each series of tumor cell lines, however, one cell line (BE human colon carcinoma cells and H596 lung cancer cells) demonstrated high mRNA levels but no NQO1 activity. After SSCP analysis and DNA sequencing the same homozygous point mutation--a C to T mutation at position 609 of the cDNA--was identified in each cell line.60,61 Immunoblot analysis revealed that the reason underlying the lack of NQO1 activity in each cell line was a lack of NQO1 protein. Although the recombinant mutant NQO1*2 protein demonstrated poor activity relative to wild-type protein, virtually no NQO1 protein could be detected in cells,
66 A. Gaedigk, R. F. Tyndale, M. Jurima-Romet, E. M. Sellers, D. M. Grant, and J. S. Leeder, Pharmacogenetics 8, 305 (1998).
67 K. T. Kelsey, J. K. Wiencke, D. C. Christiani, Z. Zuo, M. R. Spitz, X. Xu, B. K. Lee, B. S. Schwartz, R. D. Traver, and D. Ross, Br. J. Cancer 76, 852 (1997).
68 D. Siegel, A. Anwar, S. L. Winski, J. K. Kepa, K. L. Zolman, and D. Ross, Mol. Pharmacol. 59, 263 (2001).
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TABLE I NQO1 Polymorphisms, Frequency of Citations in Different Fieldsa
Field
Number of citations
Toxicological Association with specific cancers (apart from leukemia) Association with leukemia Association with Parkinson's disease Association with diabetes Genotype distribution and phenotype Mechanistic studies Reviews Relevance for chemotherapy NQO2b Total
9 29 10 2 1 8 15 9 6 3 92a
a Eighty-two studies were identified in a PubMed search using the keywords NQO1 and
polymorphism and were classified into subgroups. An additional 10 studies were
identified by PubMed searches using the key word NQO1. Each study was assigned to
one subgroup only and since some studies could be entered in various groups, this
classification solely represents the views of the authors. The table describes the wide
range of studies of NQO1 polymorphisms in different disciplines. The vast majority of the citations listed are focused on the NQO1*2 polymorphism. b Citations for NQO2 were also retrieved as part of this search.
and, more importantly, in human tissues genotyped as homozygous for the NQO1*2 polymorphism.17,18,60,61,69 A number of cell lines commonly used in research are homozygous for the NQO1*2 polymorphism (Table II).
The NQO1*2 polymorphism shows a clear gene-dose effect with respect to phenotype. Individuals genotyped as NQO1*1/*1 (or wild type) had the
highest levels of NQO1 protein in saliva while individuals carrying the homozygous NQO1*2/*2 polymorphism had no detectable levels of NQO1 protein.69 Heterozygous individuals (NQO1*1/*2) had intermediate levels of NQO1 protein.69 In other studies, cell lines and tumor samples homozygous for the NQO1*2 polymorphism had no detectable NQO1 activity.60,61,7073 In addition, tumor samples genotyped as NQO1*1/*2 or
69 D. Siegel, S. M. McGuinness, S. Winski, and D. Ross, Pharmacogenetics 9, 113 (1999). 70 V. Misra, H. J. Klamut, and A. M. Rauth, Br. J. Cancer 77, 1236 (1998). 71 P. Eickelmann, T. Ebert, U. Warskulat, W. A. Schulz, and H. Sies, Carcinogenesis 15, 219
(1994). 72 P. Eickelmann, W. A. Schulz, D. Rohde, B. Schmitz-Dra ger, and H. Sies, Biol. Chem.
Hoppe Seyler 375, 439 (1994). 73 W. A. Schulz, A. Krummeck, I. Rosinger, P. Eickelmann, C. Neuhas, T. Ebert, B. Schmitz-
Dra ger, and H. Sies, Pharmacogenetics 7, 235 (1997).
124 anticancer quinones and quinone oxidoreductases
TABLE II Commonly Used Human Cell Lines with the NQO1*2/*2 Genotypea
Cell Line
Tissue
BE Caco-2 NCI-H1570 NCI-H596 MDA-MB-231 MDA-MB-468
a Modified from reference 69.
Colon Colon Lung Lung Breast Breast
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TABLE III NQO1 Allele Frequenciesa
Allele
Population
*1 *2
Chinese Inuit Native American Caucasian
0.47 0.54 0.59 0.79
a Adapted from reference 66.
0.49 0.46 0.40 0.16
*3
0.04 <0.01
0.01 0.05
heterozygous had significantly lower NQO1 activity than samples containing the wild type or concensus sequence.74
Ethnic Distribution The allele frequency of the NQO1*2 polymorphism (Table III) has been reported to be as high as 0.49 in some Asian populations.66 The prevalence of the NQO1*2/*2 genotype in different ethnic groups is shown in Fig. 2. The NQO1*2/*2 genotype is essentially a null polymorphism and as many as 22% of individuals in some Asian populations lack NQO1 (Fig. 2).
74 R. A. Fleming, J. Drees, B. W. Loggie, G. B. Russell, K. R. Geisinger, R. T. Morris, D. Sachs, and R. P. McQuellon, Pharmacogenetics 12, 31 (2002).
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Chinese Korean Native American Mexican Hispanic Japanese African American non-Hispanic white
5.2 (136) 4.4 (114)
22.4 (49) 18.8 (69) 17.9 (56) 15.5 (161) 12.2 (156)
Fig. 2. Percentage of individuals in different populations with the NQO1*2/*2 genotype.
Data are from healthy individuals and is primarily taken from reference 67 and unpublished
data in a Japanese population (A. Sadler, M. Yano, and D. Ross, unpublished) and a Native American population (A. Sadler and D. Ross, unpublished) adapted from reference 24.
Mechanisms Underlying the Lack of NQO1*2 Protein in Cells
and Tissues
Our studies have demonstrated that the NQO1*2 protein is rapidly de-
graded by the ubiquitin proteasomal system with a half-life of approximately 1.2 h.68 The mechanisms underlying the structural instability of the NQO1*2 protein are unclear. Although we have generated a crystal structure of human wild type recombinant NQO1,5 crystallization of the NQO1*2 mutant protein for structural elucidation studies has not been possible. However, the mutation in the NQO1*2 protein is a proline to serine
at position 187, which may disrupt the structure of an external loop of the
protein. A potential role for the protein chaperone Hsp70 has also been demonstrated in recent studies.75 NQO1 has two Hsp binding sites and
Hsp70 interacts with early immature forms of the wild-type NQO1 protein,
but not with the mature protein, presumably to assist in correct protein
folding. We were unable to detect any interaction of Hsp70 and the NQO1*2 protein (Fig. 3) and we have hypothesized that this leads to incorrect folding of the NQO1*2 mutant protein followed by ubiquitination and proteasomal degradation.75
75 A. Anwar, D. Siegel, J. K. Kepa, and D. Ross, J. Biol. Chem. 16, 14060 (2002).
126 anticancer quinones and quinone oxidoreductases
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A
Wild-type NQO1*1
B
Mutant NQO1*2
Association with Hsp70/40
Correct folding
No association with Hsp70/40
Incorrect folding
Long half-life (>18 hr) No observed proteasomal
degradation Catalytically active
Short half-life (<1.5 hr) Undergoes proteasomal
degradation Catalytically inactive
Fig. 3. The potential role of protein chaperones in the folding of the NQO1*1 protein. The protein chaperones HSP 70 and HSP 40 interact with newly-synthesized forms of the NQO1*1 protein but not the NQO1*2 protein.75
NQO1*3 Polymorphism: Phenotype and Implications for NQO1 mRNA Alternative Splicing
The NQO1*3 polymorphism was characterized by Pan and colleagues62,63 and represents a C465T change coding for an arginine to tryptophan change in the protein. The variant protein had similar stability to wild-type protein and the implications of the NQO1*3 polymorphism for phenotype are variable according to the substrate. For example, the NQO1*3 recombinant protein demonstrated a similar ability to reduce menadione relative to wild-type protein but showed a 60% decreased ability to metabolize mitomycin C.62
At least three distinct transcripts of NQO1 mRNA (2.7, 1.7 and 1.2 kb) have been reported because of alternative poladenylation sites in the NQO1 gene.76 A fourth smaller transcript of 1.1 kb was identified in human cancer cell lines as a product of alternative splicing.77 The truncated transcript corresponds to a protein lacking exon 4 which contains the quinone binding site. Although the truncated protein could be expressed in E. coli, it was not detected in human tumor cells77 or in Cos7 cells,63 so it appears that the alternatively spliced mRNA is not translated into protein. The recombinant NQO1*3 protein purified from E. coli had no detectable activity when using a variety of electron acceptors,77 as would be predicted from a protein lacking the critical quinone binding site. The truncated mRNA could be detected in patients but expressed wide interindividual variability.78
76 A. K. Jaiswal, O. W. McBride, M. Adesnik, and D. W. Nebert, J. Biol. Chem. 263, 13572 (1988).
77 P. Y. Gasdaska, H. Fisher, and G. Powis, Cancer Res. 55, 2542 (1995). 78 K.-S. Yao, A. K. Godwin, C. Johnson, and P. J. O'Dwyer, Cancer Res. 56, 1731 (1996).
[8]
functions of NAD(P)H:quinone oxidoreductase
127
Recently Pan et al.79 have reported that in a human colon carcinoma cell line, alternative splicing of NQO1 at the 50 splice site of intron 4 increased in cells carrying the NQO1*3 polymorphism. The NQO1*3 polymorphism disrupts the binding of small nuclear RNA (snRNA) in spliceosomes and transfection of snRNA constructs compensating for the NQO1*3 polymorphism increased NQO1 protein expression and enzymatic activity. These authors concluded that the NQO1*3 polymorphism was the major cause of increased alternate splicing and decreased expression of NQO1 protein in this particular colon carcinoma cell line.79 The significance of the NQO1*3 polymorphism may therefore not be limited to the phenotype exhibited by the recombinant NQO1*3 protein but may also involve decreased expression of NQO1 wild type protein.
The frequency of the NQO1*3 polymorphism is low (Table III) and varied from 0 to 0.05 in different ethnic groups.66
Relevance of the NQO1*2 Polymorphism
As stated previously, a review of PubMed citations in March 2003 resulted in 92 hits related to NQO1 polymorphisms. The vast majority of these publications focus on the NQO1*2 polymorphism. We cannot discuss all of these studies in detail because of limitations of space, but we have attempted to summarize these studies in Table IV. Three studies on NQO2 were not included in Table IV, resulting in a total of 89 publications summarized. In addition, a few areas of significance of the NQO1 polymorphism are highlighted later.
NQO1*2 Polymorphism and Benzene Toxicity
The metabolism of benzene is complex,80 but it is clear that metabolism is necessary for the induction of benzene toxicity. A number of reactive metabolites have been proposed as being responsible for benzene toxicity, and the evidence favoring each of these metabolites has recently been critically reviewed.81 The conclusion of this analysis was that there was not sufficient evidence to define a particular benzene metabolite or group of metabolites as being responsible for benzene toxicity. The greatest weight of evidence, however, favors the generation of polyphenolics via cytochrome P4502E1-mediated metabolism of benzene, accumulation of metabolites such as catechol and hydroquinone in the target organ--the bone marrow--and subsequent oxidation of these metabolites to reactive quinone metabolites via a number of possible pathways.81
79 S. S. Pan, Y. Han, P. Farabaugh, and H. Xia, Pharmacogenetics 12, 479 (2002). 80 D. Ross, Eur. J. Haematol. 57(Suppl. 60), 111 (1996). 81 D. Ross, J. Toxicol. Environ. Health 61, 357 (2000).
128 anticancer quinones and quinone oxidoreductases
[8]
First Author (Year) Traver (1992)60
Eickelmann (1994)71 Eickelmann (1994)72
Kolesar (1995)82 Rosvold (1995)83
Rosvold (1995)84 Kolesar (1995)85 Ross (1996a)80 Kuehl (1995)86 Ross (1996b)87
Rebbeck (1996)88 Traver (1997)61
Wiencke (1997)89
TABLE IV Studies on NQO1 Polymorphisms
Study
Remarks
Characterization of NQO1*2
Kidney Tumors
PCR-RFLP/Kidney Tumors
Colorectal Cancer
Lung Cancer and Smoking
Colorectal Cancer
Colorectal Cancer Benzene Characterization
of NQO1*2 Characterization
of NQO1*2
Breast Cancer Characterization
of NQO1*2/Lung Cancer
Lung Cancer
The C to T substitution at position 609 of the human NQO1 cDNA was identified in cell lines with high NQO1 mRNA expression but no NQO1 catalytic activity.
No NQO1 catalytic activity was detected in three separate kidney tumor samples with normal NQO1 mRNA levels.
A PCR-RFLP assay is described for the detection of the NQO1*2 polymorphism. No NQO1 catalytic activity was detected in kidney tumor samples from patients genotype as homozygous for the NQO1*2 polymorphism.
A C to T substitution at position 609 of the human NQO1 cDNA was detected in a patient with colon cancer.
The NQO1 codon 187 (pro!ser) mutation was identified as a polymorphism (NQO1*2). No correlation was observed between this mutant allele and the risk of lung cancer.
A letter suggesting that the NQO1 mutation described by Kolesar (1995) was a polymorphism.
Response by Kolesar et al. Review. Genotype-phenotype studies of the
NQO1*2 polymorphism. A letter indicating that the BE human
colon carcinoma cell line previously genotyped by Kuehl et al. as NQO1*1/*2 is actually NQO1*2/*2. The NQO1*2 allele was associated with an increased risk of breast cancer. The NQO1 protein was not detected in human tumor cell lines with the NQO1*2/*2 genotype. This study also suggested that the NQO1*2 polymorphism may be over represented in lung cancers. The NQO1*1/*1 genotype was associated with an increased risk of lung cancer.
(continued)
[8]
functions of NAD(P)H:quinone oxidoreductase
129
First Author (Year) Schulz (1997)73 Rothman (1997)90 Kelsey (1997)67
Bartsch (1998)91 Gaedigk (1998)66 Kadlubar (1998)92 Steiner (1999)93 Siegel (1999)69
Ozawa (1999)94 Longuemaux (1999)95 Clairmont (1999)96
TABLE IV (continued)
Study
Remarks
Urological Malignancies
Benzene Poisoning
Anticancer Chemotherapy
Pancreatic Disease
Mutant Allele Frequency
DNA Adducts/Pancreas
Prostate Disease
Genotype/Phenotype Studies
Bronchial DNA Adducts
Renal Cell Carcinoma
Basal Cell Carcinoma
The NQO1*2/*2 genotype was associated
with an increased risk of renal cell and
urothelial carcinomas. The NQO1*2/*2 genotype and rapid
CYP4502E1 phenotypes were associ-
ated with an increased risk of benzene
poisoning. This study suggested that the NQO1*2
polymorphism may influence the re-
sponse of tumor cells to quinone
antitumor drugs. Prevalence of the NQO1*2/*2 genotype was reported in
different ethnic populations.
No correlation was observed between the NQO1*2 allele frequency and risk of
pancreatic disease. The NQO1*2 allele frequency was higher
in Chinese, Canadian Native Indian
and Canadian Inuit populations rela-
tive to a Caucasian population.
No correlation was observed between the NQO1*2 allele frequency and the
levels of pancreatic DNA adducts in
smokers and non-smokers. The NQO1*2 allele was not associated
with an increased risk of prostate
disease.
A correlation was observed between the
amount of NQO1 protein isolated from saliva and the NQO1*2 genotype. Individuals with the NQO1*2/*2 genotype had
no detectable NQO1 protein whereas individuals with the NQO1*1/*2 geno-
type had intermediate NQO1 protein
levels. The NQO1*2 polymorphism was not
associated with an increased level of
bronchial-DNA adducts in smokers
and non-smokers. The NQO1*2 polymorphism was not
associated with an increased risk of
renal cell carcinoma. The NQO1*2/*2 genotype was associated
with an increased risk of basal cell
carcinoma.
(continued)
130 anticancer quinones and quinone oxidoreductases
[8]
First Author (Year) Smith (1999)97 Moran (1999)98 Chen (1999)99
Larson (1999)100 Kristiansen (1999)101 Wiemels (1999)102 Kelland (1999)103 Zheng (1999)104 Lin (1999)105
Harth (2000)106 Gaedigk (2000)107 Shi (2000)108
TABLE IV (continued)
Study
Remarks
Benzene Poisoning Benzene Metabolism
Lung Cancer
Myeloid Leukemia Type I Diabetes Pediatric Leukemias
17-Demethoxygeldanamycin
Manganism Lung Cancer
Colorectal Cancer Drug Metabolism
High-Output Genotyping
Commentary on Moran et al. 1999.
Human bone marrow progenitor cells carrying the NQO1*2 allele have de-
creased NQO1 protein levels following
induction by benzene metabolites. The NQO1*2 allele was protective
against lung cancer in a Japanese
population. Increased risk of lung
cancer was associated with the NQO1*1 wild type allele. The NQO1*2 allele was associated with
an increased risk of therapy-related
acute myeloid leukemia.
No correlation was observed between the NQO1*2 polymorphism and the risk of
type I diabetes in a Danish population. The mutant NQO1*2 allele was associ-
ated with an increased risk of infant
leukemias with chromosomal re-
arrangements.
The sensitivity of tumor cells to 17-
demethoxygeldanamycin was associated with expression of NQO1*1
protein.
No correlation was observed between the NQO1*2 allele frequency and occupa-
tional chronic manganism.
No correlation was observed between the NQO1*2 polymorphism and risk of
lung cancer in a Taiwan population.
Stratification of tumors according to
histological subtype suggested that the NQO1*1/*1 genotype was more
common in adenocarcinomas than
controls.
No correlation was observed between the NQO1*2 polymorphism and risk of
colorectal cancer.
This study describes interethnic differ-
ences in the distribution of polymorphisms including NQO1*2 in closely
related populations. The NQO1*2 polymorphism was success-
fully genotyped in a high output assay
utilizing Taq poymerase and fluoro-
genic Taqman probes.
(continued)
[8]
functions of NAD(P)H:quinone oxidoreductase
131
First Author (Year) Martone (2000)109 Nakajima (2000)110 Schelonka (2000)111 Lafuente (2000)112
Naoe (2000)113
Ross (2000)23 Siegel (2001)68
Pavanello (2001)114 Peters (2001)115 Smith (2001)116 Shao (2001)117
Xu (2001)118
TABLE IV (continued)
Study
Remarks
p53 Mutations in Bladder Cancer
Susceptibility to Industrial Chemicals
Eye Disease
Colorectal Cancer
Leukemias
NQO1 NQO1*2 Protein
Stability
Genotoxic Risk
Glioma
Leukemias
Parkinson's Disease
Lung Cancer
No correlation was observed between the NQO1*2 allele frequency and p53 mutations in human bladder cancers.
Review.
The NQO1*2/*2 genotype was associated with the absence of NQO1 protein in human donor eyes.
The NQO1*2 polymorphism was associated with a increased risk of colon cancers in association with K-ras codon 12 mutations.
The NQO1*2 polymorphism was associated with an increased risk of therapyrelated leukemia and myelodysplastic syndrome.
Review. The mutant NQO1*2 protein was found
to have a greatly reduced protein halflife compared to the NQO1*1 protein as a result of degradation by the proteasomal pathway. No correlation was observed between the NQO1*2 polymorphism and biomarkers of genotoxic exposure. No correlation was observed between the NQO1*2 allele frequency and risk of glioma. The NQO1*2 allele was associated with an increased risk of de novo acute myeloid leukemia in adults. The NQO1*2 polymorphism in combination with a polymorphism in monoamine oxidase B resulted in an additive increased risk of Parkinson's disease. No correlation was observed between the NQO1*2 allele frequency and susceptibility to lung cancer. An association, however, was observed between the NQO1*2/2 genotype and risk of lung cancer in heavy former and current smokers.
(continued)
132 anticancer quinones and quinone oxidoreductases
[8]
TABLE IV (continued)
First Author (Year) Iida (2001)65
Study
SNPs in Quinone Reductase
Bergamaschi (2001)119 Effect of Ozone
Winski (2001)21
Chemotherapy
Le Marchand (2001)120 Genotyping
Gallou (2001)121
Renal Cell Carcinoma
Yin (2001)122 Lewis (2001)123
Lung Cancer Lung Cancer
Harada (2001)124 Siegel (2001)125
Parkinson's Disease
Bone Marrow Expression
Remarks
A Japanese population was screened for single nucleotide polymorphisms in quinone metabolizing enzymes including NQO1 and NQO2.
The NQO1*1/*1 genotype was associated with both a decrease in pulmonary function and increased serum clara cell protein 16 in patients exposed to ozone.
A human colon carcinoma cell line genotyped as NQO1*2/*2 (BE) and lacking NQO1 catalytic activity was transfected with the NQO1*1 coding region. Stable clones obtained following transfection demonstrated increased sensitivity to the DNA crosslinking agent RH-1.
The NQO1*2 polymorphism was successfully genotyped by PCR-RFLP from buccal DNA obtained in a large, community-based mail-in study.
No correlation was observed between the NQO1*2 allele frequency and mutations in the von Hippel-Lindau tumor suppressor gene in renal cell carcinoma.
The NQO1*2 allele was not associated with an increased risk of lung cancer in a Chinese population.
The NQO1*2 allele was associated with an increased risk of small cell lung cancer. No correlation was observed between the NQO1*2 allele and nonsmall cell lung cancer.
The NQO1*2 polymorphism was not associated with an increased risk of Parkinson's disease.
NQO1 protein was detected by immunohistochemistry in human bone marrow endothelial cells suggesting a role for NQO1 in the metabolism of xenobiotics in the bone marrow.
(continued)
[8]
functions of NAD(P)H:quinone oxidoreductase
133
First Author (Year) Phillips (2001)126 Verdina (2001)127 Fleming (2002)74
Krajinovic (2002)128 Siegelmann (2002)129
Anwar (2002)75
Naoe (2002)130 Nebert (2002)64 Krajinovic (2002)131
TABLE IV (continued)
Study
Remarks
Response to Mitomycin C
Urinary Biomarkers/ Benzene Exposure
Response to Mitomycin C
Leukemias
Breast Cancer
HSP70 Binding
Leukemias HUGO Review Leukemias
No correlation was observed between the NQO1*2 allele frequency and response
to mitomycin C treatment in a panel of
human tumor xenografts transplanted
into mice.
No correlation was observed between the NQO1*2 allele frequency and the
levels of benzene urinary metabolites
in policeman exposed to low concen-
trations of benzene. The NQO1*2 allele was associated with
significantly lower NQO1 catalytic
activity and reduced survival in pa-
tients receiving intraperitoneal hyper-
thermic chemotherapy with mitomycin
C. The NQO1*2 and NQO1*3 alleles
in combination with variant alleles in
CYP2E1, MPO or GSTM1 were asso-
ciated with an increased risk of acute
lymphoblastic leukemia in children.
No correlation was observed between the NQO1*2 allele frequency and the risk of breast cancer. The NQO1*1/*1 geno-
type however, was associated with an
increased risk of ductal carcinoma with
poor histological grade. The NQO1*1 protein but not the
NQO1*2 protein was found to associ-
ate with HSP70 and HSP40 in cellular
and cell free systems. The lack of association between NQO1*2 protein
and HSP proteins may explain the
diminished catalytic activity of the
mutant NQO1 protein. The NQO1*2 polymorphism does not
affect survival of patients with AML.
Review. The NQO1*2 and variant CYP1A1 alleles
were associated with a poorer progno-
sis in children with acute lymphoblastic
leukemia.
(continued)
134 anticancer quinones and quinone oxidoreductases
[8]
First Author (Year) Brockstedt (2002)132
Tuominen (2002)133 Hamajima (2002)134
Hamajima (2002)135
Goode (2002)136 Krajinovic (2001)137 Morgan (2002)138 Carere (2002)139 Sunaga (2002)140
Hamajima (2002)141
TABLE IV (continued)
Study
Remarks
DNA Adducts Breast Cancer
PAH Exposure PCR/Genotyping
Japanese Cancers
Breast Cancer Leukemias Leukemia Urban Pollution Lung Cancer
Japanese Noncancers
No correlation was observed between the NQO1*2 and NQO1*3 allele frequencies and the level of DNA adducts detected in normal human breast tissues.
The NQO1*2 polymorphism may influence the DNA adduct profile in control and aluminum smelter workers.
This study describes the use of PCR with confronting two-pair primers as an alternative method for single nucleotide polymorphism analysis. The NQO1*2 polymorphism was utilized as a model.
The NQO1*2/*2 genotype was not associated with an increased risk of cancer of the stomach, colon, rectum, breast, prostate or malignant lymphoma in a Japanese population. This study suggested that the NQO1*1/*1 genotype was associated with an increased risk of lung cancer. In addition, an increased risk of lung and esophageal cancer in combination with smoking was observed for the NQO1*2/*2 genotype.
No correlation was observed between the NQO1*2 allele frequency and survival in women with breast cancer.
Review. Review. No correlation was observed between the
NQO1*2 allele frequency and genetic biomarkers for exposure to urban air pollution in Rome traffic policemen. The NQO1*1/*1 genotype was associated with increased risk of lung adenocarcinoma. A greater risk was found in combination with the NQO1*1/*1 and GSTT-1 null genotypes. This enhanced risk was more evident in smokers compared to non-smokers. Polymorphisms in drug metabolizing enzymes including NQO1 were analyzed in a Japanese population.
(continued)
[8]
functions of NAD(P)H:quinone oxidoreductase
135
First Author (Year) Zheng (2002)142 Pan (2002)79 Asher (2002)55 Kolesar (2002)143
Seedhouse (2002)144 Smith (2002)145 Soucek (2002)146 Sachse (2002)147 Blanco (2002)148
Wan (2002)149 Wu (2002)150
TABLE IV (continued)
Study
Remarks
Occupational Manganism
NQO1*3 Polymorphism
p53 Interaction
Lung Cancer
Leukemia
Leukemias
Lymphomas
Colorectal Cancer Leukemia
Benzene Poisoning Nasopharyngeal
Carcinoma
No correlation was observed between the NQO1*2 allele frequency and occupa-
tional chronic manganism. The NQO1*3 (465C!T) mutation was
found to be associated with defective
NQO1 RNA splicing and decreased
NQO1 protein expression. The mutant NQO1*2 protein, unlike the
wild type NQO1*1 protein, failed to
stabilize and prevent degradation of
wild type p53. NQO1*2 in normal tissue and lung
tumors. The NQO1*2/*2 genotype was
associated with a shorter survival time
in patients treated with chemotherapy
for stage II/III non-small cell lung
cancer.
No correlation was observed between the NQO1*2 allele frequency and risk of
de novo or therapy-related acute mye-
loblastic leukemia. The NQO1*2 polymorphism was found to
be associated with an increased risk of
de novo leukemias with MLL trans-
locations in infants and children.
No correlation was observed between the NQO1*2 allele frequency and patients
with Hodgkin's and non-Hodgkin's
lymphomas.
No correlation was observed between the NQO1*2 allele frequency and the risk
of colorectal cancer.
No correlation was observed between the NQO1*2 allele frequency and the risk
of therapy-related acute myeloid leu-
kemia and myelodysplastic syndrome
in children treated for ALL.
Study found that Chinese patients with the NQO1*2/*2 genotype were at in-
creased risk of benzene poisoning. The NQO1*2 polymorphism was found to
be associated with genetic susceptibil-
ity to nasopharyngeal carcinoma.
(continued)
136 anticancer quinones and quinone oxidoreductases
[8]
First Author (Year) Takagi (2002)151
Chen (2002)152
TABLE IV (continued)
Study
Remarks
Colorectal Cancer Benzene Poisoning
A correlation was observed between the NQO1*2/*2 genotype and telomere
shortening in colorectal cancer.
Review.
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Pharmacogenetics 11, 521 (2001). 122 L. Yin, Y. Pu, T. Y. Liu, Y. H. Tung, K. W. Chen, and P. Lin, Lung Cancer 33, 133 (2001). 123 S. J. Lewis, N. M. Cherry, R. M. Niven, P. V. Barber, and A. C. Povey, Lung Cancer 34,
177 (2001).
138 anticancer quinones and quinone oxidoreductases
[8]
syndromes (relative risk 70). A case-control study was performed
employing 50 cases of benzene poisoning and 50 controls. CYP2E1 pheno-
typing was assessed by measuring urinary excretion of 6-hydroxy chlorzox-
azone over 8 h after administration of chlorzoxazone while NQO1
genotype was assessed by PCR-RFLP analysis. Individuals with a greater
capacity for CYP4502E1-mediated metabolism were at a greater risk for benzene poisoning (relative risk 2.6) as were individuals carrying the
124 S. Harada, C. Fujii, A. Hayashi, and N. Ohkoshi, Biochem. Biophys. Res. Commun. 288,
887 (2001). 125 D. Siegel, J. Ryder, and D. Ross, Toxicol. Lett. 125, 93 (2001). 126 R. M. Phillips, A. M. Burger, H. H. Fiebig, and J. A. Double, Biochem. Pharmacol. 62,
1371 (2001). 127 A. Verdina, R. Galati, G. Falasca, S. Ghittori, M. Imbriani, F. Tomei, L. Marcellini, A.
Zijno, and V. D. Vecchio, J. Toxicol. Environ. Health 64, 607 (2001). 128 M. Krajinovic, H. Sinnett, C. Richer, D. Labuda, and D. Sinnett, Int. J. Cancer 97, 230
(2002). 129 N. Siegelmann-Danieli and K. H. Buetow, Oncology 62, 39 (2002). 130 T. Naoe, Y. Tagawa, H. Kiyoi, Y. Kodera, S. Miyawaki, N. Asou, K. Kuriyama, S.
Kusumoto, C. Shimazaki, K. Saito, H. Akiyama, T. Motoji, M. Nishimura, K. Shinagawa,
R. Ueda, H. Saito, and R. Ohno, Leukemia 16, 203 (2002). 131 M. Krajinovic, D. Labuda, G. Mathonnet, M. Labuda, A. Moghrabi, J. Champagne, and D.
Sinnett, Clin. Cancer Res. 8, 802 (2002). 132 U. Brockstedt, M. Krajinovic, C. Richer, G. Mathonnet, D. Sinnett, W. Pfau, and D.
Labuda, Mutat. Res. 516, 41 (2002). 133 R. Tuominen, P. Baranczewski, M. Warholm, L. Hagmar, L. Moller, and A. Rannug, Arch.
Toxicol. 76, 178 (2002). 134 N. Hamajima, T. Saito, K. Matsuo, and K. Tajima, J. Mol. Diagn. 4, 103 (2002). 135 N. Hamajima, K. Matsuo, H. Iwata, M. Shinoda, Y. Yamamura, T. Kato, S. Hatooka, T.
Mitsudomi, M. Suyama, Y. Kagami, M. Ogura, M. Ando, Y. Sugimura, and K. Tajima, Int.
J. Clin. Oncol. 7, 103 (2002). 136 E. L. Goode, A. M. Dunning, B. Kuschel, C. S. Healey, N. E. Day, B. A. Ponder, D. F.
Easton, and P. P. Pharoah, Cancer Res. 62, 3052 (2002). 137 M. Krajinovic, D. Labuda, and D. Sinnett, Rev. Environ. Health 16, 263 (2001). 138 G. J. Morgan and M. T. Smith, Am. J. Pharmacogenomics. 2, 79 (2002). 139 A. Carere, C. Andreoli, R. Galati, P. Leopardi, F. Marcon, M. V. Rosati, S. Rossi, F.
Tomei, A. Verdina, A. Zijno, and R. Crebelli, Mutat. Res. 518, 215 (2002). 140 N. Sunaga, T. Kohno, N. Yanagitani, H. Sugimura, H. Kunitoh, T. Tamura, Y. Takei, S.
Tsuchiya, R. Saito, and J. Yokota, Cancer Epidemiol. Biomarkers Prev. 11, 730 (2002). 141 N. Hamajima, T. Saito, K. Matsuo, T. Suzuki, T. Nakamura, A. Matsuura, K. Okuma, and
K. Tajima, J. Epidemiol. 12, 229 (2002). 142 Y. X. Zheng, P. Chan, Z. F. Pan, N. N. Shi, Z. X. Wang, J. Pan, H. M. Liang, Y. Niu, X. R.
Zhou, and F. S. He, Biomarkers 7, 337 (2002). 143 J. M. Kolesar, S. C. Pritchard, K. M. Kerr, K. Kim, M. C. Nicolson, and H. McLeod, Int. J.
Oncol. 21, 1119 (2002). 144 C. Seedhouse, R. Bainton, M. Lewis, A. Harding, N. Russell, and E. Das-Gupta, Blood
100, 3761 (2002). 145 M. T. Smith, Y. Wang, C. F. Skibola, D. J. Slater, L. L. Nigro, P. C. Nowell, B. J. Lange,
and C. A. Felix, Blood 100, 4590 (2002).
[8]
functions of NAD(P)H:quinone oxidoreductase
139
homozygous NQO1*2 polymorphism (relative risk 2.4). When both of
these metabolic pathways were combined, rapid CYP2E1 metabolism and a lack of NQO1 caused by the homozygous NQO1*2 polymorphism, the relative risk for benzene poisoning increased to 7.6 fold.90 This was
the first study examining the significance of a sequence of metabolic path-
ways during the metabolism of benzene in humans, and studies in knockout
animals have reinforced the potential importance of both CYP2E1 and NQO1 to benzene toxicity.153,154 Interestingly, in NQO1 knockout animals,
both male and female / mice were more susceptible to benzene induced hematotoxicity relative to NQO1 / animals, but only female /
animals were more susceptible to benzene-induced micronuclei relative to their NQO1 / comparison group.154 It is possible that different ben-
zene metabolites may be responsible for hematotoxicity and genotoxicity,154 but these data also suggest that genotoxicity as reflected by
micronuclei induction may not be related to hematotoxicity.
The mechanism proposed for the role of CYP2E1 and NQO1 in ben-
zene toxicity is shown in Fig. 4. Increased metabolism of benzene to poly-
phenolics or inhibited detoxification of benzene-derived reactive quinones caused by the NQO1*2 polymorphism may lead to increased toxicity. One
potential problem with this mechanism was that for NQO1 to detoxify ben-
zene-derived quinones, the enzyme would have to be present in human
bone marrow, the target organ of benzene toxicity. Our studies, however, did not detect NQO1 in human bone marrow aspirates.155,98 Two potential
146 P. Soucek, J. Sarmanova, V. N. Kristensen, M. Apltauerova, and I. Gut, Int. Arch. Occup.
Environ. Health 75(Suppl. 1), 86 (2002). 147 C. Sachse, G. Smith, M. J. Wilkie, J. H. Barrett, R. Waxman, F. Sullivan, D. Forman, D. T.
Bishop, and C. R. Wolf, Carcinogenesis 23, 1839 (2002). 148 J. G. Blanco, M. J. Edick, M. L. Hancock, N. J. Winick, T. Dervieux, M. D. Amylon, R. O.
Bash, F. G. Behm, B. M. Camitta, C. H. Pui, S. C. Raimondi, and M. V. Relling,
Pharmacogenetics 12, 605 (2002). 149 J. Wan, J. Shi, L. Hui, D. Wu, X. Jin, N. Zhao, W. Huang, Z. Xia, and G. Hu, Environ.
Health Perspect. 110, 1213 (2002). 150 D. H. Wu, Di Yi. Jun. Yi. Da. Xue. Xue. Bao. 22, 1126 (2002). 151 S. Takagi, Y. Kinouchi, N. Hiwatashi, M. Hirai, S. Suzuki, S. Takahashi, K. Negoro,
N. Obana, and T. Shimosegawa, Anticancer Res. 22, 2749 (2002). 152 Y. Chen, G. Li, and S. Yin, Wei Sheng Yan. Jiu. 31, 130 (2002). 153 J. L. Valentine, S. S. T. Lee, M. J. Seaton, B. Asgharian, G. Farris, J. C. Corton, F. J.
Gonzalez, and M. A. Medinsky, Toxicol. Appl. Pharmacol. 141, 205 (1996). 154 A. K. Bauer, B. Faiola, D. J. Abernethy, R. Marchan, L. J. Pluta, V. A. Wong, K. Roberts,
A. K. Jaiswal, F. J. Gonzalez, B. E. Butterworth, S. Borghoff, H. Parkinson, J. Everitt, and
L. Recio, Cancer Res. 63, 929 (2003). 155 D. Ross, D. Siegel, D. G. Schattenberg, X. M. M. Sun, and J. L. Moran, Environ. Health
Perspect. 104(Suppl. 6), 1177 (1996).
140 anticancer quinones and quinone oxidoreductases NQO1*2
[8]
CYP450 2E1
OH
O Toxicity
OH O
Detoxification glucuronidation/
sulfation
Detoxification NQO1*1
Fig. 4. The proposed role of cytochrome P4502E1 and NQO1 in benzene toxicity.
mechanisms were proposed to explain this contradiction, and both of
these mechanisms have now been confirmed. The first mechanism involved
induction of NQO1 by polyphenolic metabolites of benzene. Although
NQO1 was not present in either human bone marrow or purified CD34+
human bone marrow cells, exposure of these cells in vitro to hydroquinone
or catechol led to induction of NQO1 activity but only in cells from individuals genotyped as NQO1*1/*1 or wild-type.98 No induction of NQO1 activity was observed in individuals genotyped as NQO1*2/*2, and intermediate levels of induction were observed in heterozygous or NQO1*1/*2 individuals.98 Presumably, the lack of induction of NQO1 associated with the NQO1*2 polymorphism reflected the instability of the NQO1*2 protein due to proteasomal degradation68 rather than any effect on the mechanism
and extent of enzyme induction. This mechanism would therefore provide an explanation for increased benzene toxicity associated with the NQO1*2
polymorphism; benzene metabolites would induce NQO1, which could detoxify benzene-derived quinones but not in individuals with the NQO1*2/*2
genotype.
The second hypothesis that we tested was that NQO1 was indeed
present in human bone marrow but was contained in cells that were not
removed by conventional aspiration techniques. We performed immuno-
histochemistry on archived bone marrow core samples and found that
NQO1 could be detected in human bone marrow but was present predominantly in bone marrow endothelial cells.125 Endothelial cells are not read-
ily removed from bone marrow by aspiration. The role of bone marrow
endothelial cells in benzene toxicity is as yet unclear but is a subject of
[8]
functions of NAD(P)H:quinone oxidoreductase
141
investigation in our laboratory. Bone marrow endothelial cells participate
in the maturation of hematopoietic progenitor cells in a number of ways,
including expression of adhesion molecules and secretion of cytokines.156,157 The potential mechanisms underlying a protective role of
NQO1 against benzene toxicity in human bone marrow are summarized
in Fig. 5. Since additional roles of NQO1 are being uncovered, such as
its involvement in antioxidant defense and stabilization of p53 (see previ-
ous text), it is feasible that additional mechanisms may be involved in
NQO1-mediated protection against benzene toxicity.
NQO1*2 Polymorphism and Leukemia
Since the homozygous NQO1*2 polymorphism is effectively a null poly-
morphism and heterozygous individuals demonstrate decreased NQO1
protein and activity relative to the wild-type or concensus sequence, the NQO1*2 polymorphism provides a convenient molecular tool to examine
the role of NQO1 in disease. Of the many cancers that have been examined for an association with the NQO1*2 polymorphism (Table IV), the most
frequent association has been found with leukemias.
Eight separate studies have examined the possible relationship of deficient NQO1 caused by the NQO1*2 polymorphism and leukemia. Two
additional studies examined the prognosis of leukemia patients with the NQO1*2 polymorphism after chemotherapy.130,131 Of the eight studies
examining risk of leukemia, six of these found an increased risk of various types of leukemia associated with the NQO1*2 polymorphism while two
found no association of therapy related leukemia. An increased risk of leukemia associated with the NQO1*2 polymorphism was found in therapy-related leukemia,100 therapy-related leukemia/myelodysplastic syndrome,113 pediatric leukemias (particularly with MLL gene rearrangements102,145), childhood acute lymphoblastic leukemia (ALL),128 and adult de-novo leukemias, both acute myeloid leukemia (AML) and ALL.116 In the study by Krajinovic et al.,128 the wild-type NQO1 genotype was found
to be protective against childhood ALL, whereas children carrying at least one mutant allele of NQO1 (NQO1*2 or NQO1*3) were at increased risk. Two additional studies found no association of the NQO1*2 polymorphism with therapy related leukemia.158,159
156 C. Voermans, P. M. Rood, P. L. Hordijk, W. R. Gerritsen, and C. E. van der Schoot, Stem
Cells 18, 435 (2000). 157 R. Mohle, M. A. Moore, R. L. Nachman, and S. Rafii, Blood 89, 72 (1997). 158 D. J. Long, A. Gaikwad, A. Multani, S. Pathak, C. A. Montgomery, F. J. Gonzalez, and
A. K. Jaiswal, Cancer Res. 62, 3030 (2002). 159 K. Mikami, M. Naito, A. Tomida, M. Yamada, T. Sirakusa, and T. Tsuruo, Cancer Res. 56,
2823 (1996).
142 anticancer quinones and quinone oxidoreductases
[8]
Fig. 5. Potential mechanisms underlying a protective role of NQO1 against benzene
toxicity. (A) Induction of NQO1 in human bone marrow mononuclear cells after exposure to hydroquinone depends on NQO1 genotype.98 Catechol induces a similar induction of NQO1, and induction of NQO1 by hydroquinone was also detected in bone marrow CD34 enriched cell populations.98 The inability of polyphenolic metabolites of benzene to increase NQO1 activity in NQO1*2/*2 cells was presumably related to the instability of the mutant NQO1*2
protein rather than any effect on induction. (B) Presence of NQO1 in bone marrow
endothelial cells. Although NQO1 could not be detected in aspirated human bone marrow cells, it could be detected by immunohistochemistry in bone marrow endothelial cells.125
[8]
functions of NAD(P)H:quinone oxidoreductase
143
The NQO1*2*2 genotype has also been associated with an increased
risk of benzene induced myelotoxicity in occupationally exposed workers in China,82 and biologically plausible mechanisms can be proposed to
account for this increased risk (see previous text). Another important study in NQO1 knockout animals has also recently been published158 demon-
strating that NQO1 knockout animals were at a greater risk of myeloid
hyperplasia and increased levels of blood neutrophils, basophils and eo-
sinophils. NQO1 knockout mice also contained decreased levels of p53 in bone marrow relative to wild type animals,158 reinforcing a possible role for
NQO1 in stabilization of p53 (see previous text). Taken together, these
data suggest that low activity NQO1 genotypes, and particularly the NQO1*2/*2 genotype, are associated with myeloid abnormalities and increase the risk of leukemias. Assessing the impact of the NQO1*2
polymorphism should be incorporated as a part of the design of any
large epidemiological studies of genetic risk factors for the induction of
leukemia.
NQO1*2 Polymorphism and Chemotherapy
Since NQO1 can bioactivate certain antitumor quinones such as mitomycin C, E09 streptonigrin, -lapachone1316 and newer experimental agents such as RH1,20,21 the NQO1*2 polymorphism would be expected
to impact therapy using these agents. Pre-clinical studies using gene transfection and gene targeting approaches20,21,59,159 have clearly demonstrated
the role of NQO1 in bioactivation of antitumor quinones and provided proof of principle for this approach. The impact of the NQO1*2 poly-
morphism has also been demonstrated by using excised human tumors in vitro; tumor tissue genotyped as NQO1*2/*2 was more resistant to mitomycin C than tumors genotyped as wild-type.160 Perhaps the most compelling study to date is a clinical study performed by Fleming et al.74 In this
work, patients with disseminated peritoneal cancer received surgical de-
bulking and intraperitoneal hyperthermic perfusions of mitomycin C. In 117 patients genotyped for the NQO1*2 polymorphism, individuals with
the low activity NQO1 genotypes (heterozygous or homozygous for the NQO1*2 polymorphism) had reduced survival relative to individuals with
the wild type or concensus NQO1 genotype. Genotype-phenotype relationships were also confirmed in this study, and NQO1*1/*2 heterozygotes had
significantly less tumor NQO1 activity than individuals with the wild-type NQO1 genotype.74 This study demonstrates the potential importance of the NQO1*2 polymorphism to therapy using antitumor quinones such as
160 M. Yano, Y. Akiyama, H. Shiozaki, M. Inoue, Y. Doki, Y. Fujiwara, D. Ross, A. Sadler, and M. Monden, Proc. Amer. Assoc. Cancer Res. 41, 4585 (2000).
144 anticancer quinones and quinone oxidoreductases
[9]
mitomycin C. The relevance of the NQO1*2 polymorphism to therapy using other compounds such as E09, RH1 and -lapachone remains to be determined.
Acknowledgments
The authors are supported by NIH grants CA51210, ES09554 and NS44613.
[9] Structure and Mechanism of NAD[P]H:Quinone Acceptor Oxidoreductases (NQO)
By Mario A. Bianchet, Margarita Faig, and L. Mario Amzel
Introduction
Cytosolic NAD(P)H:quinone acceptor oxidoreductases (NQO) are flavoenzymes that catalyze the obligatory 2-electron reduction of quinones to hydroquinones.1 This reaction prevents the reduction of quinones by oneelectron reductases that would result in the formation of reactive oxygen species (ROS), generated by redox cycling of semiquinones in the presence of molecular oxygen.2 In addition to its possible role in the detoxification of dietary quinones, the enzyme has been shown to catalyze the reductive activation of quinolic chemotherapeutic compounds such as mitomycins, anthracyclines, and aziridinyl-benzoquinones. NQO type 1 (NQO1; EC 1.6.99.2; also called QR1 and DT-Diaphorase) is a 274-residue enzyme expressed under oxidative or electrophilic stress among a battery of phase II enzymes.36 Also expressed as part of the same response is an iso-enzyme called NQO type 2 (NQO2) that is 43 residues shorter at its C-terminus. NQO2 has a 49% sequence identity with NQO1. Both enzymes can use NAD[P]H as a source of reducing equivalents, but NQO1 uses this cofactor more efficiently. NQO2 has been shown to prefer dihydronicotinamide ribosyl (NRH) as cofactor.7,8 NQO activity is observed in many solid
1 L. Ernster and F. Navazio, Acta Chem. Scand. 12, 595602 (1958). 2 H. Sies and H. de Groot, Toxicol. Lett. 6465, 547551 (1992). 3 A. Benson, M. Hunkeler, and P. Talalay, Proc. Natl. Acad. Sci. USA 77, 52165220 (1980). 4 H. Wefers, T. Komai, P. Talalay, and H. Sies, FEBS Lett. 169, 6366 (1984). 5 H. J. Prochaska, P. Talalay, and H. Sies, J. Biol. Chem. 262, 19311934 (1987). 6 P. Talalay, Biofactors 12, 511 (2000). 7 Q. Zhao, X. Yang, W. Holtzclaw, and P. Talalay, Proc. Natl. Acad. Sci. USA 94, 16691674
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