| Literature DB >> 20444272 |
Ana L Miranda-Vilela1, Penha Cz Alves, Arthur K Akimoto, Graciana S Lordelo, Carlos A Gonçalves, Cesar K Grisolia, Maria N Klautau-Guimarães.
Abstract
BACKGROUND: Normal cellular metabolism is well established as the source of endogenous reactive oxygen species which account for the background levels of oxidative DNA damage detected in normal tissue. Hydrogen peroxide imposes an oxidative stress condition on cells that can result in DNA damage, leading to mutagenesis and cell death. Several potentially significant genetic variants related to oxidative stress have already been identified, and angiotensin I-converting enzyme (ACE) inhibitors have been reported as possible antioxidant agents that can reduce vascular oxidative stress in cardiovascular events.Entities:
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Year: 2010 PMID: 20444272 PMCID: PMC2881052 DOI: 10.1186/1476-069X-9-21
Source DB: PubMed Journal: Environ Health ISSN: 1476-069X Impact factor: 5.984
Figure 1Influences of age groups (year-olds) on the frequencies (%) of moderate and high DNA damage of the total group. N = sample size. The data correspond to the means and to the standard error of mean (SEM) of the frequencies (%) of comets of class 1 and 2 (moderate damage) and of comets of class 3 and 4 (elevated damage) with respect to the total damages. P-values were generated by the Kruskall-Wallis test. The lower-case letters indicate significant differences between the age groups detected by the Mann-Whitney U test in the 2-to-2 comparisons: for moderate damage, a = significant compared to b: p = 0.014 in the comparison of 20-40 and 41-56 year-olds; for elevated damages, c = significant compared to d: p = 0.044 in the comparison of 17-19 and 41-56 year-olds and p = 0.008 in the comparison of 20-40 and 41-56 year-olds.
Figure 2Influences of GPx-1 gene polymorphism on the frequencies (%) of moderate and high DNA damage of the total group. N = sample size. The data correspond to the means and to the standard error of mean (SEM) of the frequencies (%) of comets of class 1 and 2 (moderate damage) and of comets of class 3 and 4 (elevated damage) with respect to the total damages. P-values were generated by the Kruskall-Wallis test. The lower-case letters indicate significant differences detected by the Mann-Whitney U test in the 2-to-2 comparisons between genotypes: for moderate damage, a = significant compared to b (p = 0.002); for elevated damages, c = significant compared to d (p = 0.004).
Distribution of Haptoglobin (Hp), MnSOD, CAT, GPx-1, ACE, GSTM1 and GSTT1 allele frequencies, genetic diversity parameters, genotype frequencies and Hardy-Weinberg equilibrium data for chi-square (χ2) test.
| Genetic Markers | Allele frequencies | Heterozygosity-observed (Ho) | Heterozygosity-expected (He) | FIS | Genotypes | Genotype frequencies | Number of observed individuals | Number of expected individuals | HWE test | |||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0.144 | 0.570 | 0.594 | 0.046 | 0.04 | 6 | 2.75 | 0.132 | |||||
| 0.06 | 8 | 13.05 | ||||||||||
| 0.333 | 0.12 | 16 | 14.89 | |||||||||
| 0.14 | 19 | 20.44 | ||||||||||
| 0.522 | 0.37 | 50 | 47.17 | |||||||||
| 0.27 | 36 | 36.69 | ||||||||||
| 0.704 | 0.498 | -0.409 | 0.18 | 24 | 37.74 | < 0.001 | ||||||
| 0.530 | 0.70 | 95 | 67.51 | |||||||||
| 0.470 | 0.12 | 16 | 29.74 | |||||||||
| 0.385 | 0.488 | 0.214 | 0.23 | 31 | 23.94 | 0.012 | ||||||
| 0.422 | 0.39 | 52 | 66.11 | |||||||||
| 0.578 | 0.39 | 52 | 44.94 | |||||||||
| 0.407 | 0.432 | 0.059 | 0.48 | 65 | 63.27 | 0.551 | ||||||
| 0.685 | 0.41 | 55 | 58.46 | |||||||||
| 0.315 | 0.11 | 15 | 13.27 | |||||||||
| 0.467 | 0.482 | 0.034 | 0.36 | 49 | 47.88 | 0.721 | ||||||
| 0.596 | 0.47 | 63 | 65.24 | |||||||||
| 0.404 | 0.17 | 23 | 21.88 | |||||||||
| 0.622 | 0.62 | 84 | 52.23 | < 0.001 | ||||||||
| - | - | - | ||||||||||
| 0.378 | 0.38 | 51 | 82.77 | |||||||||
| 0.244 | 0.24 | 33 | 8.04 | < 0.001 | ||||||||
| - | - | - | ||||||||||
| 0.756 | 0.76 | 102 | 126.96 | |||||||||
*p < 0.05 indicates deviation from Hardy-Weinberg equilibrium, appropriate to a heterozygote deficit for CAT locus (p = 0.0085) and a heterozygote excess for MnSOD locus (p = 0.0000). For co-dominant markers (Hp, MnsOD, CAT, GPX-1 and ACE) p-values were generated using statistical programme Genepopweb version 4.0 http://genepop.curtin.edu.au; for dominant markers (GSTM1 and GSTT1), they were calculated by a chi-square calculator programme. For GSTM1 and GSTT1 genotypes were considered: Null = -/-; Non-null = +/+ and +/-.