Alcohol and Acetaldehyde in Public Health: From Marvel to Menace
Abstract
:1. Introduction
2. Alcohol and Human Health
3. Mechanisms of Alcoholic Diseases
3.1. Mechanism of Alcohol Metabolism
3.2. Acetaldehyde-Related Mechanism in Alcohol-Induced Damages
3.3. Non-Acetaldehyde-Related Mechanism in Alcohol-Induced Damages
3.4. Genetic Polymorphisms of Alcohol Metabolizing Enzymes
4. Alcohol-induced Social Problems and Effective Ways to Reduce Alcohol Abuse
5. Conclusion
Acknowledgments
References and Notes
- Gaziano, JM; Gaziano, TA; Glynn, RJ; Sesso, HD; Ajani, UA; Stampfer, MJ; Manson, JE; Hennekens, CH; Buring, JE. Light-to-moderate alcohol consumption and mortality in the Physicians’ Health Study enrollment cohort. J. Am. Coll. Cardiol 2000, 35, 96–105. [Google Scholar]
- Klatsky, AL; Friedman, GD; Siegelaub, AB. Alcohol and mortality. A ten-year Kaiser-Permanente experience. Ann. Intern. Med 1981, 95, 139–145. [Google Scholar]
- Maraldi, C; Volpato, S; Kritchevsky, SB; Cesari, M; Andresen, E; Leeuwenburgh, C; Harris, TB; Newman, AB; Kanaya, A; Johnson, KC; Rodondi, N; Pahor, M. Impact of inflammation on the relationship among alcohol consumption, mortality, and cardiac events: the health, aging, and body composition study. Arch. Intern. Med 2006, 166, 1490–1497. [Google Scholar]
- Maskarinec, G; Meng, L; Kolonel, LN. Alcohol intake, body weight, and mortality in a multiethnic prospective cohort. Epidemiology 1998, 9, 654–661. [Google Scholar]
- Mukamal, KJ; Rimm, EB. Alcohol consumption: risks and benefits. Curr. Atheroscler. Rep 2008, 10, 536–543. [Google Scholar]
- Wold Cancer Research Fund; American Institute for Cancer Research Food, nutrition, physical activity, and the prevention of cancer: a global perspective. AICR: Washington, DC, USA, 2007; pp. 1–14.
- Mocan, T; Agoston-Coldea, L; Rusu, LD; Pais, R; Gatfosse, M; Mocan, LC; Rusu, ML. The correlation between alcohol consumption, lipids, apolipoproteins and coronary heart disease. Rom. J. Intern. Med 2008, 46, 323–330. [Google Scholar]
- Mukamal, KJ. Alcohol and heart disease: where to next? Interview by Christine Forder. Future Cardiol 2009, 5, 219–225. [Google Scholar]
- George, A; Figueredo, VM. Alcohol and arrhythmias: a comprehensive review. J. Cardiovasc. Med. (Hagerstown) 2010, 11, 221–228. [Google Scholar]
- Marinho, V; Laks, J; Engelhardt, E; Conn, D. Alcohol abuse in an elderly woman taking donepezil for Alzheimer disease. J. Clin. Psychopharmacol 2006, 26, 683–685. [Google Scholar]
- Ikehara, S; Iso, H; Toyoshima, H; Date, C; Yamamoto, A; Kikuchi, S; Kondo, T; Watanabe, Y; Koizumi, A; Wada, Y; Inaba, Y; Tamakoshi, A. Alcohol consumption and mortality from stroke and coronary heart disease among Japanese men and women: the Japan collaborative cohort study. Stroke 2008, 39, 2936–2942. [Google Scholar]
- Ohkubo, T; Metoki, H; Imai, Y. Alcohol intake, circadian blood pressure variation, and stroke. Hypertension 2009, 53, 4–5. [Google Scholar]
- Cederbaum, AI; Lu, Y; Wu, D. Role of oxidative stress in alcohol-induced liver injury. Arch. Toxicol 2009, 83, 519–548. [Google Scholar]
- Mandrekar, P; Szabo, G. Signalling pathways in alcohol-induced liver inflammation. J. Hepatol 2009, 50, 1258–1266. [Google Scholar]
- Osna, N. Alcohol and liver disease. Semin. Liver Dis 2009, 29, 139. [Google Scholar]
- Seitz, HK; Becker, P. Alcohol metabolism and cancer risk. Alcohol Res Health 2007, 30, 38–41. [Google Scholar]
- Suzuki, T; Matsuo, K; Sawaki, A; Mizuno, N; Hiraki, A; Kawase, T; Watanabe, M; Nakamura, T; Yamao, K; Tajima, K; Tanaka, H. Alcohol drinking and one-carbon metabolism-related gene polymorphisms on pancreatic cancer risk. Cancer Epidemiol. Biomarkers Prev 2008, 17, 2742–2747. [Google Scholar]
- Zhang, FF; Hou, L; Terry, MB; Lissowska, J; Morabia, A; Chen, J; Yeager, M; Zatonski, W; Chanock, S; Chow, WH. Genetic polymorphisms in alcohol metabolism, alcohol intake and the risk of stomach cancer in Warsaw, Poland. Int. J. Cancer 2007, 121, 2060–2064. [Google Scholar]
- Lebowitz, MD. Respiratory symptoms and disease related to alcohol consumption. Am. Rev. Respir. Dis 1981, 123, 16–19. [Google Scholar]
- Morris, MJ. Alcohol breath testing in patients with respiratory disease. Thorax 1990, 45, 717–721. [Google Scholar]
- Baliunas, DO; Taylor, BJ; Irving, H; Roerecke, M; Patra, J; Mohapatra, S; Rehm, J. Alcohol as a risk factor for type 2 diabetes: A systematic review and meta-analysis. Diabetes Care 2009, 32, 2123–2132. [Google Scholar]
- Frericks, KG; Schurmann, A; Hempel, G. [Type 2 diabetes with alcohol abuse]. Med. Monatsschr. Pharm 2005, 28, 357–360. [Google Scholar]
- Mohs, ME; Leonard, TK; Watson, RR. Interrelationships among alcohol abuse, obesity, and type II diabetes mellitus: focus on Native Americans. World Rev. Nutr. Diet 1988, 56, 93–172. [Google Scholar]
- Callaci, JJ; Himes, R; Lauing, K; Wezeman, FH; Brownson, K. Binge alcohol-induced bone damage is accompanied by differential expression of bone remodeling-related genes in rat vertebral bone. Calcif. Tissue Int 2009, 84, 474–484. [Google Scholar]
- Chen, Y; Cui, L; Liao, J; Huang, L. Effects of alcohol on bone metabolism and biomechanical property of mice. Sheng Wu Yi Xue Gong Cheng Xue Za Zhi 2009, 26, 780–782. [Google Scholar]
- Baumberg, B. The global economic burden of alcohol: a review and some suggestions. Drug Alcohol Rev 2006, 25, 537–551. [Google Scholar]
- Moeller, FG; Dougherty, DM. Antisocial personality disorder, alcohol, and aggression. Alcohol Res. Health 2001, 25, 5–11. [Google Scholar]
- Moeller, FG; Dougherty, DM; Lane, SD; Steinberg, JL; Cherek, DR. Antisocial personality disorder and alcohol-induced aggression. Alcohol Clin. Exp. Res 1998, 22, 1898–1902. [Google Scholar]
- Rehm, J; Mathers, C; Popova, S; Thavorncharoensap, M; Teerawattananon, Y; Patra, J. Global burden of disease and injury and economic cost attributable to alcohol use and alcohol-use disorders. Lancet 2009, 373, 2223–2233. [Google Scholar]
- Lonczak, HS; Huang, B; Catalano, RF; Hawkins, JD; Hill, KG; Abbott, RD; Ryan, JA; Kosterman, R. The social predictors of adolescent alcohol misuse: a test of the social development model. J. Stud. Alcohol 2001, 62, 179–189. [Google Scholar]
- Preedy, VR; Patel, VB; Reilly, ME; Richardson, PJ; Falkous, G; Mantle, D. Oxidants, antioxidants and alcohol: implications for skeletal and cardiac muscle. Front Biosci 1999, 4, e58–e66. [Google Scholar]
- Laposata, EA; Lange, LG. Presence of nonoxidative ethanol metabolism in human organs commonly damaged by ethanol abuse. Science 1986, 231, 497–499. [Google Scholar]
- Hannuksela, ML; Liisanantti, MK; Savolainen, MJ. Effect of alcohol on lipids and lipoproteins in relation to atherosclerosis. Crit. Rev. Clin. Lab. Sci 2002, 39, 225–283. [Google Scholar]
- Zhang, X; Li, SY; Brown, RA; Ren, J. Ethanol and acetaldehyde in alcoholic cardiomyopathy: from bad to ugly en route to oxidative stress. Alcohol 2004, 32, 175–186. [Google Scholar]
- Thadhani, R; Camargo, CA, Jr; Stampfer, MJ; Curhan, GC; Willett, WC; Rimm, EB. Prospective study of moderate alcohol consumption and risk of hypertension in young women. Arch. Intern. Med 2002, 162, 569–574. [Google Scholar]
- Peng, GS; Wang, MF; Chen, CY; Luu, SU; Chou, HC; Li, TK; Yin, SJ. Involvement of acetaldehyde for full protection against alcoholism by homozygosity of the variant allele of mitochondrial aldehyde dehydrogenase gene in Asians. Pharmacogenetics 1999, 9, 463–476. [Google Scholar]
- Peng, GS; Yin, SJ. Effect of the allelic variants of aldehyde dehydrogenase ALDH2*2 and alcohol dehydrogenase ADH1B*2 on blood acetaldehyde concentrations. Hum. Genomics 2009, 3, 121–127. [Google Scholar]
- Dong, X. Genetic variation in alcohol dehydrogenase and myocardial infarction. N. Engl. J. Med 2001, 345, 221–222. [Google Scholar]
- Kloner, RA; Rezkalla, SH. To drink or not to drink? That is the question. Circulation 2007, 116, 1306–1317. [Google Scholar]
- Frid, A. Moderate alcohol drinking protects against heart disease. Lakartidningen 2000, 97, 946–947. [Google Scholar]
- Dey, AB; Choudhury, D. How frequent and how much alcohol prevents heart attack? Natl. Med. J. India 1997, 10, 284–285. [Google Scholar]
- Agarwal, DP; Srivastava, LM. Does moderate alcohol intake protect against coronary heart disease? Indian Heart J 2001, 53, 224–230. [Google Scholar]
- Camargo, CA, Jr; Stampfer, MJ; Glynn, RJ; Grodstein, F; Gaziano, JM; Manson, JE; Buring, JE; Hennekens, CH. Moderate alcohol consumption and risk for angina pectoris or myocardial infarction in U.S. male physicians. Ann. Intern. Med 1997, 126, 372–375. [Google Scholar]
- Samanek, M. Does moderate alcohol drinking decrease the incidence and mortality rate in ischemic heart disease? Cas. Lek. Cesk 2000, 139, 747–752. [Google Scholar]
- Elkind, MS; Sciacca, R; Boden-Albala, B; Rundek, T; Paik, MC; Sacco, RL. Moderate alcohol consumption reduces risk of ischemic stroke: the Northern Manhattan Study. Stroke 2006, 37, 13–19. [Google Scholar]
- Camargo, CA, Jr; Stampfer, MJ; Glynn, RJ; Gaziano, JM; Manson, JE; Goldhaber, SZ; Hennekens, CH. Prospective study of moderate alcohol consumption and risk of peripheral arterial disease in US male physicians. Circulation 1997, 95, 577–580. [Google Scholar]
- Gillman, MW; Cook, NR; Evans, DA; Rosner, B; Hennekens, CH. Relationship of alcohol intake with blood pressure in young adults. Hypertension 1995, 25, 1106–1110. [Google Scholar]
- Desenclos, JA; Klontz, KC; Wilder, MH; Gunn, RA. The protective effect of alcohol on the occurrence of epidemic oyster-borne hepatitis A. Epidemiology 1992, 3, 371–374. [Google Scholar]
- Ajani, UA; Hennekens, CH; Spelsberg, A; Manson, JE. Alcohol consumption and risk of type 2 diabetes mellitus among US male physicians. Arch. Intern. Med 2000, 160, 1025–1030. [Google Scholar]
- Cordain, L; Bryan, ED; Melby, CL; Smith, MJ. Influence of moderate daily wine consumption on body weight regulation and metabolism in healthy free-living males. J. Am. Coll. Nutr 1997, 16, 134–139. [Google Scholar]
- Hellenbrand, W; Seidler, A; Boeing, H; Robra, BP; Vieregge, P; Nischan, P; Joerg, J; Oertel, WH; Schneider, E; Ulm, G. Diet and Parkinson’s disease. I: A possible role for the past intake of specific foods and food groups. Results from a self-administered food-frequency questionnaire in a case-control study. Neurology 1996, 47, 636–643. [Google Scholar]
- Kallberg, H; Jacobsen, S; Bengtsson, C; Pedersen, M; Padyukov, L; Garred, P; Frisch, M; Karlson, EW; Klareskog, L; Alfredsson, L. Alcohol consumption is associated with decreased risk of rheumatoid arthritis: results from two Scandinavian case-control studies. Ann. Rheum. Dis 2009, 68, 222–227. [Google Scholar]
- Feskanich, D; Korrick, SA; Greenspan, SL; Rosen, HN; Colditz, GA. Moderate alcohol consumption and bone density among postmenopausal women. J. Womens Health 1999, 8, 65–73. [Google Scholar]
- Holbrook, TL; Barrett-Connor, E. A prospective study of alcohol consumption and bone mineral density. BMJ 1993, 306, 1506–1509. [Google Scholar]
- Weisse, ME; Eberly, B; Person, DA. Wine as a digestive aid: comparative antimicrobial effects of bismuth salicylate and red and white wine. BMJ 1995, 311, 1657–1660. [Google Scholar]
- Lipton, RI. The effect of moderate alcohol use on the relationship between stress and depression. Am. J. Public Health 1994, 84, 1913–1917. [Google Scholar]
- Rashidkhani, B; Akesson, A; Lindblad, P; Wolk, A. Alcohol consumption and risk of renal cell carcinoma: a prospective study of Swedish women. Int. J. Cancer 2005, 117, 848–853. [Google Scholar]
- Ahlgren, JD. Epidemiology and risk factors in pancreatic cancer. Semin. Oncol 1996, 23, 241–250. [Google Scholar]
- Aldoori, WH; Giovannucci, EL; Stampfer, MJ; Rimm, EB; Wing, AL; Willett, WC. A prospective study of alcohol, smoking, caffeine, and the risk of duodenal ulcer in men. Epidemiology 1997, 8, 420–424. [Google Scholar]
- Obisesan, TO; Hirsch, R; Kosoko, O; Carlson, L; Parrott, M. Moderate wine consumption is associated with decreased odds of developing age-related macular degeneration in NHANES-1. J. Am. Geriatr. Soc 1998, 46, 1–7. [Google Scholar]
- Popelka, MM; Cruickshanks, KJ; Wiley, TL; Tweed, TS; Klein, BE; Klein, R; Nondahl, DM. Moderate alcohol consumption and hearing loss: a protective effect. J. Am. Geriatr. Soc 2000, 48, 1273–1278. [Google Scholar]
- Leitzmann, MF; Giovannucci, EL; Stampfer, MJ; Spiegelman, D; Colditz, GA; Willett, WC; Rimm, EB. Prospective study of alcohol consumption patterns in relation to symptomatic gallstone disease in men. Alcohol Clin. Exp. Res 1999, 23, 835–841. [Google Scholar]
- Nelson, HD; Nevitt, MC; Scott, JC; Stone, KL; Cummings, SR. Smoking, alcohol, and neuromuscular and physical function of older women. Study of Osteoporotic Fractures Research Group. JAMA 1994, 272, 1825–1831. [Google Scholar]
- Cohen, S; Tyrrell, DA; Russell, MA; Jarvis, MJ; Smith, AP. Smoking, alcohol consumption, and susceptibility to the common cold. Am. J. Public Health 1993, 83, 1277–1283. [Google Scholar]
- Devos-Comby, L; Lange, JE. “My drink is larger than yours”? A literature review of self-defined drink sizes and standard drinks. Curr. Drug Abuse Rev 2008, 1, 162–176. [Google Scholar]
- Heng, K; Hargarten, S; Layde, P; Craven, A; Zhu, S. Moderate alcohol intake and motor vehicle crashes: the conflict between health advantage and at-risk use. Alcohol Alcohol 2006, 41, 451–454. [Google Scholar]
- Adolfsson, R; Karlsson, T. Alcohol abuse and memory disorders. Lakartidningen 1987, 84, 3923–3926. [Google Scholar]
- Bondi, MW; Drake, AI; Grant, I. Verbal learning and memory in alcohol abusers and polysubstance abusers with concurrent alcohol abuse. J. Int. Neuropsychol. Soc 1998, 4, 319–328. [Google Scholar]
- Larkin, JP; Seltzer, B. Alcohol abuse and Alzheimer’s disease. Hosp Community Psychiatry 1994, 45, 1040–1041. [Google Scholar]
- Guo, R; Zhong, L; Ren, J. Overexpression of aldehyde dehydrogenase-2 attenuates chronic alcohol exposure-induced apoptosis, change in Akt and Pim signalling in liver. Clin. Exp. Pharmacol. Physiol 2009, 36, 463–468. [Google Scholar]
- Vaiphei, K; Gupta, K; Lal, V. Chronic alcohol intake: indicator towards alcoholic liver disease. Indian J. Gastroenterol 2007, 26, 180–184. [Google Scholar]
- Bird, GL; Williams, R. Factors determining cirrhosis in alcoholic liver disease. Mol. Aspects Med 1988, 10, 97–105. [Google Scholar]
- Singh, GK; Hoyert, DL. Social epidemiology of chronic liver disease and cirrhosis mortality in the United States, 1935–1997: trends and differentials by ethnicity, socioeconomic status, and alcohol consumption. Hum. Biol 2000, 72, 801–820. [Google Scholar]
- Li, SY; Ren, J. Cardiac overexpression of alcohol dehydrogenase exacerbates chronic ethanol ingestion-induced myocardial dysfunction and hypertrophy: role of insulin signaling and ER stress. J. Mol. Cell Cardiol 2008, 44, 992–1001. [Google Scholar]
- Ren, J; Davidoff, AJ; Brown, RA. Acetaldehyde depresses shortening and intracellular Ca2+ transients in adult rat ventricular myocytes. Cell Mol. Biol. (Noisy-le-grand) 1997, 43, 825–834. [Google Scholar]
- Lang, CH; Frost, RA; Summer, AD; Vary, TC. Molecular mechanisms responsible for alcohol-induced myopathy in skeletal muscle and heart. Int. J. Biochem. Cell Biol 2005, 37, 2180–2195. [Google Scholar]
- Wang, L; Zhou, Z; Saari, JT; Kang, YJ. Alcohol-induced myocardial fibrosis in metallothionein-null mice: prevention by zinc supplementation. Am. J. Pathol 2005, 167, 337–344. [Google Scholar]
- Schoppet, M; Maisch, B. Alcohol and the heart. Herz 2001, 26, 345–352. [Google Scholar]
- Jones, WK. A murine model of alcoholic cardiomyopathy: a role for zinc and metallothionein in fibrosis. Am. J. Pathol 2005, 167, 301–304. [Google Scholar]
- Meister, KA; Whelan, EM; Kava, R. The health effects of moderate alcohol intake in humans: an epidemiologic review. Crit. Rev. Clin. Lab. Sci 2000, 37, 261–296. [Google Scholar]
- Sun, W; Schooling, CM; Chan, WM; Ho, KS; Lam, TH; Leung, GM. Moderate alcohol use, health status, and mortality in a prospective Chinese elderly cohort. Ann. Epidemiol 2009, 19, 396–403. [Google Scholar]
- Allen, NE; Beral, V; Casabonne, D; Kan, SW; Reeves, GK; Brown, A; Green, J. Moderate alcohol intake and cancer incidence in women. J. Natl. Cancer Inst 2009, 101, 296–305. [Google Scholar]
- Edenberg, HJ. The genetics of alcohol metabolism: role of alcohol dehydrogenase and aldehyde dehydrogenase variants. Alcohol Res. Health 2007, 30, 5–13. [Google Scholar]
- Mallikarjuna, K; Sahitya Chetan, P; Sathyavelu Reddy, K; Rajendra, W. Ethanol toxicity: rehabilitation of hepatic antioxidant defense system with dietary ginger. Fitoterapia 2008, 79, 174–178. [Google Scholar]
- Tanaka, E; Terada, M; Misawa, S. Cytochrome P450 2E1: its clinical and toxicological role. J Clin. Pharm. Ther 2000, 25, 165–175. [Google Scholar]
- Lieber, CS. Alcoholic fatty liver: its pathogenesis and mechanism of progression to inflammation and fibrosis. Alcohol 2004, 34, 9–19. [Google Scholar]
- Aberle, IN; Ren, J. Experimental assessment of the role of acetaldehyde in alcoholic cardiomyopathy. Biol. Proced. Online 2003, 5, 1–12. [Google Scholar] [Green Version]
- Vonlaufen, A; Wilson, JS; Pirola, RC; Apte, MV. Role of alcohol metabolism in chronic pancreatitis. Alcohol Res. Health 2007, 30, 48–54. [Google Scholar]
- Ren, J; Wold, LE. Mechanisms of alcoholic heart disease. Ther. Adv. Cardiovasc. Dis 2008, 2, 497–506. [Google Scholar]
- Zakhari, S. Overview: how is alcohol metabolized by the body? Alcohol Res. Health 2006, 29, 245–254. [Google Scholar]
- Lieber, CS; DeCarli, LM; Feinman, L; Hasumura, Y; Korsten, M; Matsuzaki, S; Teschke, R. Effect of chronic alcohol consumption on ethanol and acetaldehyde metabolism. Adv. Exp. Med. Biol 1975, 59, 185–227. [Google Scholar]
- Aberle, NS, 2nd; Ren, J. Short-term acetaldehyde exposure depresses ventricular myocyte contraction: role of cytochrome P450 oxidase, xanthine oxidase, and lipid peroxidation. Alcohol Clin. Exp. Res 2003, 27, 577–583. [Google Scholar]
- Duan, J; McFadden, GE; Borgerding, AJ; Norby, FL; Ren, BH; Ye, G; Epstein, PN; Ren, J. Overexpression of alcohol dehydrogenase exacerbates ethanol-induced contractile defect in cardiac myocytes. Am. J. Physiol. Heart Circ. Physiol 2002, 282, H1216–H1222. [Google Scholar]
- Duan, J; Esberg, LB; Ye, G; Borgerding, AJ; Ren, BH; Aberle, NS; Epstein, PN; Ren, J. Influence of gender on ethanol-induced ventricular myocyte contractile depression in transgenic mice with cardiac overexpression of alcohol dehydrogenase. Comp. Biochem. Physiol. A Mol. Integr. Physiol 2003, 134, 607–614. [Google Scholar]
- Eriksson, CJ. The role of acetaldehyde in the actions of alcohol (update 2000). Alcohol Clin. Exp. Res 2001, 25, 15S–32S. [Google Scholar]
- Hintz, KK; Relling, DP; Saari, JT; Borgerding, AJ; Duan, J; Ren, BH; Kato, K; Epstein, PN; Ren, J. Cardiac overexpression of alcohol dehydrogenase exacerbates cardiac contractile dysfunction, lipid peroxidation, and protein damage after chronic ethanol ingestion. Alcohol Clin. Exp. Res 2003, 27, 1090–1098. [Google Scholar]
- Liang, Q; Carlson, EC; Borgerding, AJ; Epstein, PN. A transgenic model of acetaldehyde overproduction accelerates alcohol cardiomyopathy. J. Pharmacol. Exp. Ther 1999, 291, 766–772. [Google Scholar]
- Brown, RA; Jefferson, L; Sudan, N; Lloyd, TC; Ren, J. Acetaldehyde depresses myocardial contraction and cardiac myocyte shortening in spontaneously hypertensive rats: role of intracellular Ca2+. Cell Mol. Biol. (Noisy-le-grand) 1999, 45, 453–465. [Google Scholar]
- Ren, J; Brown, RA. Influence of chronic alcohol ingestion on acetaldehyde-induced depression of rat cardiac contractile function. Alcohol Alcohol 2000, 35, 554–560. [Google Scholar]
- Li, Q; Ren, J. Cardiac overexpression of metallothionein attenuates chronic alcohol intake-induced cardiomyocyte contractile dysfunction. Cardiovasc. Toxicol 2006, 6, 173–182. [Google Scholar]
- Oba, T; Maeno, Y; Nagao, M; Sakuma, N; Murayama, T. Cellular redox state protects acetaldehyde-induced alteration in cardiomyocyte function by modifying Ca2+ release from sarcoplasmic reticulum. Am. J. Physiol Heart Circ. Physiol 2008, 294, H121–H133. [Google Scholar]
- Carruthers, VB; Moreno, SN; Sibley, LD. Ethanol and acetaldehyde elevate intracellular [Ca2+] and stimulate microneme discharge in Toxoplasma gondii. Biochem. J 1999, 342, 379–386. [Google Scholar]
- Quertemont, E; Didone, V. Role of acetaldehyde in mediating the pharmacological and behavioral effects of alcohol. Alcohol Res. Health 2006, 29, 258–265. [Google Scholar]
- Guerri, C; Montoliu, C; Renau-Piqueras, J. Involvement of free radical mechanism in the toxic effects of alcohol: implications for fetal alcohol syndrome. Adv. Exp. Med. Biol 1994, 366, 291–305. [Google Scholar]
- McDonough, KH. The role of alcohol in the oxidant antioxidant balance in heart. Front Biosci 1999, 4, D601–D606. [Google Scholar]
- Lee, YJ; Aroor, AR; Shukla, SD. Temporal activation of p42/44 mitogen-activated protein kinase and c-Jun N-terminal kinase by acetaldehyde in rat hepatocytes and its loss after chronic ethanol exposure. J. Pharmacol. Exp. Ther 2002, 301, 908–914. [Google Scholar]
- Svegliati-Baroni, G; Ridolfi, F; Di Sario, A; Saccomanno, S; Bendia, E; Benedetti, A; Greenwel, P. Intracellular signaling pathways involved in acetaldehyde-induced collagen and fibronectin gene expression in human hepatic stellate cells. Hepatology 2001, 33, 1130–1140. [Google Scholar]
- Diehl, AM. Cytokines and the molecular mechanisms of alcoholic liver disease. Alcohol Clin. Exp. Res 1999, 23, 1419–1424. [Google Scholar]
- Neuman, MG; Brenner, DA; Rehermann, B; Taieb, J; Chollet-Martin, S; Cohard, M; Garaud, JJ; Poynard, T; Katz, GG; Cameron, RG; Shear, NH; Gao, B; Takamatsu, M; Yamauchi, M; Ohata, M; Saito, S; Maeyama, S; Uchikoshi, T; Toda, G; Kumagi, T; Akbar, SM; Abe, M; Michitaka, K; Horiike, N; Onji, M. Mechanisms of alcoholic liver disease: cytokines. Alcohol Clin. Exp. Res 2001, 25, 251S–253S. [Google Scholar]
- Nakamura, K; Iwahashi, K; Furukawa, A; Ameno, K; Kinoshita, H; Ijiri, I; Sekine, Y; Suzuki, K; Iwata, Y; Minabe, Y; Mori, N. Acetaldehyde adducts in the brain of alcoholics. Arch. Toxicol 2003, 77, 591–593. [Google Scholar]
- Niemela, O. Distribution of ethanol-induced protein adducts in vivo: relationship to tissue injury. Free Radic. Biol. Med 2001, 31, 1533–1538. [Google Scholar]
- Burton, A. Acetaldehyde links alcohol consumption to cancer. Lancet Oncol 2005, 6, 643. [Google Scholar]
- Al-Abed, Y; Mitsuhashi, T; Li, H; Lawson, JA; FitzGerald, GA; Founds, H; Donnelly, T; Cerami, A; Ulrich, P; Bucala, R. Inhibition of advanced glycation endproduct formation by acetaldehyde: role in the cardioprotective effect of ethanol. Proc. Nat. Acad. Sci. USA 1999, 96, 2385–2390. [Google Scholar]
- Lange, LG; Sobel, BE. Myocardial metabolites of ethanol. Circ. Res 1983, 52, 479–482. [Google Scholar]
- Lange, LG; Sobel, BE. Mitochondrial dysfunction induced by fatty acid ethyl esters, myocardial metabolites of ethanol. J. Clin. Invest 1983, 72, 724–731. [Google Scholar]
- Aberle, NS, 2nd; Burd, L; Zhao, BH; Ren, J. Acetaldehyde-induced cardiac contractile dysfunction may be alleviated by vitamin B1 but not by vitamins B6 or B12. Alcohol Alcohol 2004, 39, 450–454. [Google Scholar]
- Aberle, NS, II; Privratsky, JR; Burd, L; Ren, J. Combined acetaldehyde and nicotine exposure depresses cardiac contraction in ventricular myocytes: prevention by folic acid. Neurotoxicol. Teratol 2003, 25, 731–736. [Google Scholar]
- Constant, J. The alcoholic cardiomyopathies--genuine and pseudo. Cardiology 1999, 91, 92–95. [Google Scholar]
- Freeman, TL; Tuma, DJ; Thiele, GM; Klassen, LW; Worrall, S; Niemela, O; Parkkila, S; Emery, PW; Preedy, VR. Recent advances in alcohol-induced adduct formation. Alcohol Clin. Exp. Res 2005, 29, 1310–1316. [Google Scholar]
- Black, WJ; Stagos, D; Marchitti, SA; Nebert, DW; Tipton, KF; Bairoch, A; Vasiliou, V. Human aldehyde dehydrogenase genes: alternatively spliced transcriptional variants and their suggested nomenclature. Pharmacogenet Genomics 2009. in print.. [Google Scholar]
- Holmes, RS. Opossum alcohol dehydrogenases: Sequences, structures, phylogeny and evolution: evidence for the tandem location of ADH genes on opossum chromosome 5. Chem. Biol. Interact 2009, 178, 8–15. [Google Scholar]
- Kitagawa, K; Kawamoto, T; Kunugita, N; Tsukiyama, T; Okamoto, K; Yoshida, A; Nakayama, K. Aldehyde dehydrogenase (ALDH) 2 associates with oxidation of methoxyacetaldehyde; in vitro analysis with liver subcellular fraction derived from human and Aldh2 gene targeting mouse. FEBS Lett 2000, 476, 306–311. [Google Scholar]
- Kiyoshi, A; Weihuan, W; Mostofa, J; Mitsuru, K; Toyoshi, I; Toshihiro, K; Kyoko, K; Keiichi, N; Iwao, I; Hiroshi, K. Ethanol metabolism in ALDH2 knockout mice—blood acetate levels. Leg Med. (Tokyo) 2009, 11, S413–S415. [Google Scholar]
- Ren, J. Acetaldehyde and alcoholic cardiomyopathy: lessons from the ADH and ALDH2 transgenic models. Novartis Found Symp 2007, 285. [Google Scholar]
- Kang, TS; Woo, SW; Park, HJ; Lee, Y; Roh, J. Comparison of genetic polymorphisms of CYP2E1, ADH2, and ALDH2 genes involved in alcohol metabolism in Koreans and four other ethnic groups. J. Clin. Pharm. Ther 2009, 34, 225–230. [Google Scholar]
- Chen, SH; Zhang, M; Scott, CR. Gene frequencies of alcohol dehydrogenase2 and aldehyde dehydrogenase2 in Northwest Coast Amerindians. Hum. Genet 1992, 89, 351–352. [Google Scholar]
- Goedde, HW; Agarwal, DP; Fritze, G; Meier-Tackmann, D; Singh, S; Beckmann, G; Bhatia, K; Chen, LZ; Fang, B; Lisker, R; et al. Distribution of ADH2 and ALDH2 genotypes in different populations. Hum. Genet 1992, 88, 344–346. [Google Scholar]
- Yamada, Y; Sun, F; Tsuritani, I; Honda, R. Genetic differences in ethanol metabolizing enzymes and blood pressure in Japanese alcohol consumers. J. Hum. Hypertens 2002, 16, 479–486. [Google Scholar]
- Hashimoto, Y; Nakayama, T; Futamura, A; Omura, M; Nakarai, H; Nakahara, K. Relationship between genetic polymorphisms of alcohol-metabolizing enzymes and changes in risk factors for coronary heart disease associated with alcohol consumption. Clin. Chem 2002, 48, 1043–1048. [Google Scholar]
- Ma, H; Li, J; Gao, F; Ren, J. Aldehyde dehydrogenase 2 ameliorates acute cardiac toxicity of ethanol: role of protein phosphatase and forkhead transcription factor. J. Amer. Coll. Cardiol 2009, 54, 2187–2196. [Google Scholar]
- Spoth, R; Greenberg, M; Turrisi, R. Preventive interventions addressing underage drinking: state of the evidence and steps toward public health impact. Pediatrics 2008, 121(Suppl 4), S311–336. [Google Scholar]
- Hingson, RW; Zha, W; Weitzman, ER. Magnitude of and trends in alcohol-related mortality and morbidity among U.S. college students ages 18–24, 1998–2005. J. Stud. Alcohol Drugs 2009, 16, 12–20. [Google Scholar]
- Hingson, RW; Zha, W. Age of drinking onset, alcohol use disorders, frequent heavy drinking, and unintentionally injuring oneself and others after drinking. Pediatrics 2009, 123, 1477–1484. [Google Scholar]
© 2010 by the authors; licensee Molecular Diversity Preservation International, Basel, Switzerland. This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
Share and Cite
Guo, R.; Ren, J. Alcohol and Acetaldehyde in Public Health: From Marvel to Menace. Int. J. Environ. Res. Public Health 2010, 7, 1285-1301. https://doi.org/10.3390/ijerph7041285
Guo R, Ren J. Alcohol and Acetaldehyde in Public Health: From Marvel to Menace. International Journal of Environmental Research and Public Health. 2010; 7(4):1285-1301. https://doi.org/10.3390/ijerph7041285
Chicago/Turabian StyleGuo, Rui, and Jun Ren. 2010. "Alcohol and Acetaldehyde in Public Health: From Marvel to Menace" International Journal of Environmental Research and Public Health 7, no. 4: 1285-1301. https://doi.org/10.3390/ijerph7041285
APA StyleGuo, R., & Ren, J. (2010). Alcohol and Acetaldehyde in Public Health: From Marvel to Menace. International Journal of Environmental Research and Public Health, 7(4), 1285-1301. https://doi.org/10.3390/ijerph7041285