| Literature DB >> 23624825 |
Magdalena Laniewska-Dunaj1, Wojciech Jelski, Karolina Orywal, Jan Kochanowicz, Robert Rutkowski, Maciej Szmitkowski.
Abstract
The brain being highly sensitive to the action of alcohol is potentially susceptible to its carcinogenic effects. Alcohol dehydrogenase (ADH) and aldehyde dehydrogenase (ALDH) are the main enzymes involved in ethanol metabolism, which leads to the generation of carcinogenic acetaldehyde. Human brain tissue contains various ADH isoenzymes and possess also ALDH activity. The purpose of this study was to compare the capacity for ethanol metabolism measured by ADH isoenzymes and ALDH activity in cancer tissues and healthy brain cells. The samples were taken from 62 brain cancer patients (36 glioblastoma, 26 meningioma). For the measurement of the activity of class I and II ADH isoenzymes and ALDH activity, the fluorometric methods were used. The total ADH activity and activity of class III and IV isoenzymes were measured by the photometric method. The total activity of ADH, and activity of class I ADH were significantly higher in cancer cells than in healthy tissues. The other tested classes of ADH and ALDH did not show statistically significant differences of activity in cancer and in normal cells. Analysis of the enzymes activity did not show significant differences depending on the location of the tumor. The differences in the activity of total alcohol dehydrogenase, and class I isoenzyme between cancer tissues and healthy brain cells might be a factor for metabolic changes and disturbances in low mature cancer cells and additionally might be a reason for higher level of acetaldehyde which can intensify the carcinogenesis.Entities:
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Year: 2013 PMID: 23624825 PMCID: PMC3671125 DOI: 10.1007/s11064-013-1053-9
Source DB: PubMed Journal: Neurochem Res ISSN: 0364-3190 Impact factor: 3.996
Characteristics of brain cancer patients
| Variable | No of patients | |
|---|---|---|
| Brain cancer patients | 62 | |
| Gender | ||
| Males | 37 | |
| Females | 27 | |
| Age | ||
| <50 years | 34 | |
| ≥50 years | 28 | |
| Range | 30–77 | |
| Histological type | ||
| Glioblastoma | 36 | |
| Meningioma | 26 | |
| Tumour stage | ||
| I | 16 | |
| II | 10 | |
| III | 15 | |
| IV | 21 | |
| Tumor size | ||
| <3 cm | 35 | |
| ≥3 cm | 27 | |
| Location in the brain | ||
| Frontal lobe | 16 | |
| Temporal lobe | 24 | |
| Parietal lobe | 16 | |
| Cerebellum | 6 | |
| Degree of differentiation | ||
| Well | 39 | |
| Poorly | 23 | |
The activity of ADH isoenzymes and ALDH in brain cancer tissue
| Tested group | Adh I | ADH II | ADH III | ADH IV | ADH total | ALDH |
|---|---|---|---|---|---|---|
| Brain cancer (n = 62) | 0.431 | 0.0029 | 0.552 | 0.363 | 2.485 | 0.808 |
| 0.203–0.722 | 0.0008–0.0074 | 0.175–1.322 | 0.152–0.734 | 1.164–6.732 | 0.396–2.015 | |
| 0.422 | 0.0028 | 0.535 | 0.344 | 2.378 | 0.783 | |
| Glioblastoma (n = 36) | 0.406 | 0.0030 | 0.575 | 0.370 | 2.531 | 0.813 |
| 0.216–0.722 | 0.0010–0.0074 | 0.198–1.332 | 0.177–0.734 | 1.302–6.732 | 0.406–2.105 | |
| 0.454 | 0.0029 | 0.561 | 0.362 | 2.428 | 0.798 | |
| Meningioma (n = 26) | 0.426 | 0.0028 | 0.546 | 0.361 | 2.453 | 0.804 |
| 0.203–0.684 | 0.0008–0.0069 | 0.175–1.248 | 0.152–0.688 | 1.164–5.975 | 0.396–1.846 | |
| 0.417 | 0.0028 | 0.527 | 0.339 | 2.334 | 0.776 | |
| Healthy tissue (n = 62) | 0.346 | 0.0028 | 0.513 | 0.332 | 1.798 | 0.746 |
| 0.165–0.606 | 0.0006–0.0065 | 0.134–1.215 | 0.138–0.685 | 0.955–5.012 | 0.266–1.984 | |
| 0.341 | 0.0027 | 0.495 | 0.311 | 1.638 | 0.727 | |
| p < 0.001a | p = 0.276a | p = 0.373a | p = 0.387a | p < 0.001a | p = 0.389a | |
| p < 0.001b | p = 0.357b | p = 0.304b | p = 0.387b | p < 0.001b | p = 0.428b | |
| p < 0.001c | p = 0.309c | p = 0.327c | p = 0.303c | p < 0.001c | p = 0.327c | |
| p = 0.365d | p = 0.574d | p = 0.429d | p = 0.329d | p = 0.538d | p = 0.377d |
Data are expressed as nmol/min/mg of protein
aBrain cancer versus healthy tissue
bGlioblastoma versus healthy tissue
cMeningioma versus healthy tissue
dGlioblastoma versus meningioma
Fig. 1The comparison of ADH isoenzymes and ALDH activity in cancer tissue depending on the localization of tumour. Data are expressed as a median in nmol/min/mg of protein