Skip to main content
Top
Published in: Journal of Genetic Counseling 5/2016

01-10-2016 | Review Paper

MTHFR: Addressing Genetic Counseling Dilemmas Using Evidence-Based Literature

Authors: Brooke Levenseller Levin, Elizabeth Varga

Published in: Journal of Genetic Counseling | Issue 5/2016

Login to get access

Abstract

The 5, 10 methylenetetrahydrofolate reductase (MTHFR) enzyme is a catalyst in the folate metabolism pathway, the byproducts of which are involved in the remethylation of homocysteine to methionine. Methionine is a precursor for a major DNA methyl donor and is important for DNA methylation and gene regulation. Rare mutations in the MTHFR gene have been associated with autosomal recessive MTHFR deficiency leading to homocystinuria. In addition, two polymorphic variants in this gene (C677T and A1298C) have been implicated in a mild form of MTHFR deficiency associated with hyperhomocysteinemia. Mild to moderate hyperhomocysteinemia has been previously implicated as a risk factor for cardiovascular disease. Further, the presence of these variants, with and without mildly elevated levels of homocysteine, has been studied in relation to several multifactorial disorders including recurrent pregnancy loss, neural tube defects and congenital anomalies, cancer, and neurodevelopmental disorders. Given this wide spectrum of purported clinical implications and the prevalence of these polymorphisms, genetic counselors may encounter questions regarding the significance of MTHFR polymorphisms in a variety of settings. Here we present a brief background of the MTHFR polymorphisms, review of the literature regarding clinical considerations, and discussion of relevant genetic counseling aspects through case vignettes. Educational resources for patients and providers are also included.
Literature
go back to reference Albert, C. M., Cook, N. R., Gaziano, J. M., Zaharris, E., MacFadyen, J., Danielson, E., et al. (2008). Effect of folic acid and B vitamins on risk of cardiovascular events and total mortality among women at high risk for cardiovascular disease: A randomized trial. Journal of the American Medical Association, 299(17), 2027–2036.CrossRefPubMedPubMedCentral Albert, C. M., Cook, N. R., Gaziano, J. M., Zaharris, E., MacFadyen, J., Danielson, E., et al. (2008). Effect of folic acid and B vitamins on risk of cardiovascular events and total mortality among women at high risk for cardiovascular disease: A randomized trial. Journal of the American Medical Association, 299(17), 2027–2036.CrossRefPubMedPubMedCentral
go back to reference American Academy of Family Physicians (2012). Summary of recommendations for clinical preventive services. Leawood (KS): American Academy of Family Physicians (AAFP). American Academy of Family Physicians (2012). Summary of recommendations for clinical preventive services. Leawood (KS): American Academy of Family Physicians (AAFP).
go back to reference American Academy of Pediatrics, Committee on Genetics (1999). Folic acid for the prevention of neural tube defects. Pediatrics, 104(2), 325–327.CrossRef American Academy of Pediatrics, Committee on Genetics (1999). Folic acid for the prevention of neural tube defects. Pediatrics, 104(2), 325–327.CrossRef
go back to reference American Congress of Obstetricians and Gynecologists (2013). Inherited thrombophilias in pregnancy. Washington (DC): American College of Obstetricians and Gynecologists (ACOG). American Congress of Obstetricians and Gynecologists (2013). Inherited thrombophilias in pregnancy. Washington (DC): American College of Obstetricians and Gynecologists (ACOG).
go back to reference Bailey, L. B. (2003). Folate, methyl-related nutrients, alcohol, and the MTHFR 677C–>T polymorphism affect cancer risk: Intake recommendations. The Journal of Nutrition, 133(11 Suppl 1), 3748S–3753S.PubMed Bailey, L. B. (2003). Folate, methyl-related nutrients, alcohol, and the MTHFR 677C–>T polymorphism affect cancer risk: Intake recommendations. The Journal of Nutrition, 133(11 Suppl 1), 3748S–3753S.PubMed
go back to reference Bezemer, I. D., Doggen, C. J., Vos, H. L., & Rosendaal, F. R. (2007). No association between the common MTHFR 677C→ T polymorphism and venous thrombosis: Results from the MEGA study. Archives of Internal Medicine, 167(5), 497–501.CrossRefPubMed Bezemer, I. D., Doggen, C. J., Vos, H. L., & Rosendaal, F. R. (2007). No association between the common MTHFR 677C→ T polymorphism and venous thrombosis: Results from the MEGA study. Archives of Internal Medicine, 167(5), 497–501.CrossRefPubMed
go back to reference Boccia, S., Hung, R., Ricciardi, G., Gianfagna, F., Ebert, M. P., Fang, J. Y., et al. (2008). Meta- and pooled analyses of the methylenetetrahydrofolate reductase C677T and A1298C polymorphisms and gastric cancer risk: A huge-GSEC review. American Journal of Epidemiology, 167(5), 505–516.CrossRefPubMed Boccia, S., Hung, R., Ricciardi, G., Gianfagna, F., Ebert, M. P., Fang, J. Y., et al. (2008). Meta- and pooled analyses of the methylenetetrahydrofolate reductase C677T and A1298C polymorphisms and gastric cancer risk: A huge-GSEC review. American Journal of Epidemiology, 167(5), 505–516.CrossRefPubMed
go back to reference Botto, L. D., & Yang, Q. (2000). 5,10-methylenetetrahydrofolate reductase gene variants and congenital anomalies: A HuGE review. American Journal of Epidemiology, 151(9), 862–877.CrossRefPubMed Botto, L. D., & Yang, Q. (2000). 5,10-methylenetetrahydrofolate reductase gene variants and congenital anomalies: A HuGE review. American Journal of Epidemiology, 151(9), 862–877.CrossRefPubMed
go back to reference Cao, Y., Xu, J., Zhang, Z., Huang, X., Zhang, A., Wang, J., et al. (2013). Association study between methylenetetrahydrofolate reductase polymorphisms and unexplained recurrent pregnancy loss: A meta-analysis. Gene, 514(2), 105–111.CrossRefPubMed Cao, Y., Xu, J., Zhang, Z., Huang, X., Zhang, A., Wang, J., et al. (2013). Association study between methylenetetrahydrofolate reductase polymorphisms and unexplained recurrent pregnancy loss: A meta-analysis. Gene, 514(2), 105–111.CrossRefPubMed
go back to reference Cattaneo, M. (2006). Hyperhomocysteinemia and venous thromboembolism. Seminars in Thrombosis and Hemostasis, 32(7), 716–723.CrossRefPubMed Cattaneo, M. (2006). Hyperhomocysteinemia and venous thromboembolism. Seminars in Thrombosis and Hemostasis, 32(7), 716–723.CrossRefPubMed
go back to reference Centers for Disease Control (CDC) (1991). Use of folic acid for prevention of spina bifida and other neural tube defects–1983-1991. MMWR. Morbidity and Mortality Weekly Report, 40(30), 513–516. Centers for Disease Control (CDC) (1991). Use of folic acid for prevention of spina bifida and other neural tube defects–1983-1991. MMWR. Morbidity and Mortality Weekly Report, 40(30), 513–516.
go back to reference Clarke, R., Daly, L., Robinson, K., Naughten, E., Cahalane, S., Fowler, B., & Graham, I. (1991). Hyperhomocysteinemia: An independent risk factor for vascular disease. New England Journal of Medicine, 324(17), 1149–1155.CrossRefPubMed Clarke, R., Daly, L., Robinson, K., Naughten, E., Cahalane, S., Fowler, B., & Graham, I. (1991). Hyperhomocysteinemia: An independent risk factor for vascular disease. New England Journal of Medicine, 324(17), 1149–1155.CrossRefPubMed
go back to reference Clarke, R., Halsey, J., Lewington, S., Lonn, E., Armitage, J., Manson, J. E., et al. (2010). Effects of lowering homocysteine levels with B vitamins on cardiovascular disease, cancer, and cause-specific mortality: Meta-analysis of 8 randomized trials involving 37 485 individuals. Archives of Internal Medicine, 170(18), 1622–1631.CrossRefPubMed Clarke, R., Halsey, J., Lewington, S., Lonn, E., Armitage, J., Manson, J. E., et al. (2010). Effects of lowering homocysteine levels with B vitamins on cardiovascular disease, cancer, and cause-specific mortality: Meta-analysis of 8 randomized trials involving 37 485 individuals. Archives of Internal Medicine, 170(18), 1622–1631.CrossRefPubMed
go back to reference Clarke, R., Bennett, D. A., Parish, S., Verhoef, P., Dötsch-Klerk, M., Lathrop, M., et al. (2012). Homocysteine and coronary heart disease: Meta-analysis of MTHFR case-control studies, avoiding publication bias. PLoS Medicine, 9(2), 205.CrossRef Clarke, R., Bennett, D. A., Parish, S., Verhoef, P., Dötsch-Klerk, M., Lathrop, M., et al. (2012). Homocysteine and coronary heart disease: Meta-analysis of MTHFR case-control studies, avoiding publication bias. PLoS Medicine, 9(2), 205.CrossRef
go back to reference Colson, N. J., Naug, H. L., Nikbakht, E., Zhang, P., & McCormack, J. (2015). The impact of MTHFR 677 C/T genotypes on folate status markers: a meta-analysis of folic acid intervention studies. European Journal of Nutrition, 1-14. Advanced online publication. doi:10.1007/s00394-015-1076-x. Colson, N. J., Naug, H. L., Nikbakht, E., Zhang, P., & McCormack, J. (2015). The impact of MTHFR 677 C/T genotypes on folate status markers: a meta-analysis of folic acid intervention studies. European Journal of Nutrition, 1-14. Advanced online publication. doi:10.​1007/​s00394-015-1076-x.
go back to reference Cordero, A. M., Crider, K. S., Rogers, L. M., Cannon, M. J., & Berry, R. J. (2015). Optimal serum and red blood cell folate concentrations in women of reproductive age for prevention of neural tube defects: World Health Organization guidelines. MMWR. Morbidity and Mortality Weekly Report, 64(15), 421–423.PubMed Cordero, A. M., Crider, K. S., Rogers, L. M., Cannon, M. J., & Berry, R. J. (2015). Optimal serum and red blood cell folate concentrations in women of reproductive age for prevention of neural tube defects: World Health Organization guidelines. MMWR. Morbidity and Mortality Weekly Report, 64(15), 421–423.PubMed
go back to reference Den Heijer, M., Lewington, S., & Clarke, R. (2005). Homocysteine, MTHFR and risk of venous thrombosis: A meta-analysis of published epidemiological studies. Journal of Thrombosis and Haemostasis, 3(2), 292–299.CrossRef Den Heijer, M., Lewington, S., & Clarke, R. (2005). Homocysteine, MTHFR and risk of venous thrombosis: A meta-analysis of published epidemiological studies. Journal of Thrombosis and Haemostasis, 3(2), 292–299.CrossRef
go back to reference Den Heijer, M., Willems, H. P., Blom, H. J., Gerrits, W. B., Cattaneo, M., Eichinger, S., et al. (2007). Homocysteine lowering by B vitamins and the secondary prevention of deep vein thrombosis and pulmonary embolism: A randomized, placebo-controlled, double-blind trial. Blood, 109(1), 139–144.CrossRef Den Heijer, M., Willems, H. P., Blom, H. J., Gerrits, W. B., Cattaneo, M., Eichinger, S., et al. (2007). Homocysteine lowering by B vitamins and the secondary prevention of deep vein thrombosis and pulmonary embolism: A randomized, placebo-controlled, double-blind trial. Blood, 109(1), 139–144.CrossRef
go back to reference Eldibany, M. M., & Caprini, J. A. (2007). Hyperhomocysteinemia and thrombosis: An overview. Archives of Pathology & Laboratory Medicine, 131(6), 872. Eldibany, M. M., & Caprini, J. A. (2007). Hyperhomocysteinemia and thrombosis: An overview. Archives of Pathology & Laboratory Medicine, 131(6), 872.
go back to reference Finnell, R. H., Shaw, G. M., Lammer, E. J., & Volcik, K. A. (2002). Does prenatal screening for 5, 10-methylenetetrahydrofolate reductase (MTHFR) mutations in high-risk neural tube defect pregnancies make sense? Genetic Testing, 6(1), 47–52.CrossRefPubMed Finnell, R. H., Shaw, G. M., Lammer, E. J., & Volcik, K. A. (2002). Does prenatal screening for 5, 10-methylenetetrahydrofolate reductase (MTHFR) mutations in high-risk neural tube defect pregnancies make sense? Genetic Testing, 6(1), 47–52.CrossRefPubMed
go back to reference Friso, S., Choi, S. W., Girelli, D., Mason, J. B., Dolnikowski, G. G., Bagley, P. J., et al. (2002). A common mutation in the 5,10-methylenetetrahydrofolate reductase gene affects genomic DNA methylation through an interaction with folate status. Proceedings of the National Academy of Sciences of the United States of America, 99(8), 5606–5611.CrossRefPubMedPubMedCentral Friso, S., Choi, S. W., Girelli, D., Mason, J. B., Dolnikowski, G. G., Bagley, P. J., et al. (2002). A common mutation in the 5,10-methylenetetrahydrofolate reductase gene affects genomic DNA methylation through an interaction with folate status. Proceedings of the National Academy of Sciences of the United States of America, 99(8), 5606–5611.CrossRefPubMedPubMedCentral
go back to reference Frosst, P., Blom, H. J., Milos, R., Goyette, P., Sheppard, C. A., Matthews, R. G., et al. (1995). A candidate genetic risk factor for vascular disease: A common mutation in methylenetetrahydrofolate reductase. Nature Genetics, 10(1), 111–113.CrossRefPubMed Frosst, P., Blom, H. J., Milos, R., Goyette, P., Sheppard, C. A., Matthews, R. G., et al. (1995). A candidate genetic risk factor for vascular disease: A common mutation in methylenetetrahydrofolate reductase. Nature Genetics, 10(1), 111–113.CrossRefPubMed
go back to reference Gaysina, D., Cohen, S., Craddock, N., Farmer, A., Hoda, F., Korszun, A., et al. (2008). No association with the 5, 10-methylenetetrahydrofolate reductase gene and major depressive disorder: Results of the depression case control (DeCC) study and a meta-analysis. American Journal of Medical Genetics Part B: Neuropsychiatric Genetics, 147(6), 699–706.CrossRef Gaysina, D., Cohen, S., Craddock, N., Farmer, A., Hoda, F., Korszun, A., et al. (2008). No association with the 5, 10-methylenetetrahydrofolate reductase gene and major depressive disorder: Results of the depression case control (DeCC) study and a meta-analysis. American Journal of Medical Genetics Part B: Neuropsychiatric Genetics, 147(6), 699–706.CrossRef
go back to reference Gilbody, S., Lewis, S., & Lightfoot, T. (2007). Methylenetetrahydrofolate reductase (MTHFR) genetic polymorphisms and psychiatric disorders: A HuGE review. American Journal of Epidemiology, 165(1), 1–13.CrossRefPubMed Gilbody, S., Lewis, S., & Lightfoot, T. (2007). Methylenetetrahydrofolate reductase (MTHFR) genetic polymorphisms and psychiatric disorders: A HuGE review. American Journal of Epidemiology, 165(1), 1–13.CrossRefPubMed
go back to reference Gouveia, L. O., & Canhão, P. (2010). MTHFR and the risk for cerebral venous thrombosis-a meta-analysis. Thrombosis Research, 125(4), 153–158.CrossRef Gouveia, L. O., & Canhão, P. (2010). MTHFR and the risk for cerebral venous thrombosis-a meta-analysis. Thrombosis Research, 125(4), 153–158.CrossRef
go back to reference Goyette, P., Frosst, P., Rosenblatt, D. S., & Rozen, R. (1995). Seven novel mutations in the methylenetetrahydrofolate reductase gene and genotype/phenotype correlations in severe methylenetetrahydrofolate reductase deficiency. American Journal of Human Genetics, 56(5), 1052–1059.PubMedPubMedCentral Goyette, P., Frosst, P., Rosenblatt, D. S., & Rozen, R. (1995). Seven novel mutations in the methylenetetrahydrofolate reductase gene and genotype/phenotype correlations in severe methylenetetrahydrofolate reductase deficiency. American Journal of Human Genetics, 56(5), 1052–1059.PubMedPubMedCentral
go back to reference Green, R. (2011). Indicators for assessing folate and vitamin B-12 status and for monitoring the efficacy of intervention strategies. The American Journal of Clinical Nutrition, 94(2), 666S–672S.CrossRefPubMedPubMedCentral Green, R. (2011). Indicators for assessing folate and vitamin B-12 status and for monitoring the efficacy of intervention strategies. The American Journal of Clinical Nutrition, 94(2), 666S–672S.CrossRefPubMedPubMedCentral
go back to reference Greenland, P., Alpert, J. S., Beller, G. A., Benjamin, E. J., Budoff, M. J., Fayad, Z. A., et al. (2010). ACCF/AHA guideline for assessment of cardiovascular risk in asymptomatic adults: a report of the American College of Cardiology Foundation/American Heart Association. Journal of the American College of Cardiology, 56(25), 50–103.CrossRef Greenland, P., Alpert, J. S., Beller, G. A., Benjamin, E. J., Budoff, M. J., Fayad, Z. A., et al. (2010). ACCF/AHA guideline for assessment of cardiovascular risk in asymptomatic adults: a report of the American College of Cardiology Foundation/American Heart Association. Journal of the American College of Cardiology, 56(25), 50–103.CrossRef
go back to reference Hainsworth, A. H., Yeo, N. E., Weekman, E. M., & Wilcock, D. M. (2015). Homocysteine, hyperhomocysteinemia and vascular contributions to cognitive impairment and dementia (VCID). Biochimica et Biophysica Acta (BBA)-Molecular Basis of Disease. Advance online publication. doi:10.1016/j.bbadis.2015.11.015. Hainsworth, A. H., Yeo, N. E., Weekman, E. M., & Wilcock, D. M. (2015). Homocysteine, hyperhomocysteinemia and vascular contributions to cognitive impairment and dementia (VCID). Biochimica et Biophysica Acta (BBA)-Molecular Basis of Disease. Advance online publication. doi:10.1016/j.bbadis.2015.11.015.
go back to reference Helfand, M., Buckley, D. I., Freeman, M., Fu, R., Rogers, K., Fleming, C., & Humphrey, L. L. (2009). Emerging risk factors for coronary heart disease: A summary of systematic reviews conducted for the US preventive services task force. Annals of Internal Medicine, 151(7), 496–507.CrossRefPubMed Helfand, M., Buckley, D. I., Freeman, M., Fu, R., Rogers, K., Fleming, C., & Humphrey, L. L. (2009). Emerging risk factors for coronary heart disease: A summary of systematic reviews conducted for the US preventive services task force. Annals of Internal Medicine, 151(7), 496–507.CrossRefPubMed
go back to reference Hickey, S. E., Curry, C. J., & Toriello, H. V. (2013). American College of Medical Genetics Practice guideline: Lack of evidence for MTHFR polymorphism testing. Genetics in Medicine, 15(2), 153–156.CrossRefPubMed Hickey, S. E., Curry, C. J., & Toriello, H. V. (2013). American College of Medical Genetics Practice guideline: Lack of evidence for MTHFR polymorphism testing. Genetics in Medicine, 15(2), 153–156.CrossRefPubMed
go back to reference Homocysteine Studies Collaboration (2002). Homocysteine and risk of ischemic heart disease and stroke: A meta-analysis. Journal of the American Medical Association, 288(16), 2015–2022.CrossRef Homocysteine Studies Collaboration (2002). Homocysteine and risk of ischemic heart disease and stroke: A meta-analysis. Journal of the American Medical Association, 288(16), 2015–2022.CrossRef
go back to reference Howlader N, Noone AM, Krapcho M, Garshell J, Miller D, Altekruse SF, Kosary CL, Yu M, Ruhl J, Tatalovich Z, Mariotto A, Lewis DR, Chen HS, Feuer EJ, Cronin, KA (April 2015) (eds). SEER Cancer Statistics Review, 19752012, National cancer institute. Bethesda, MD, http://seer.cancer.gov/csr/1975_2012/, based on November 2014 SEER data submission, posted to the SEER web site. Howlader N, Noone AM, Krapcho M, Garshell J, Miller D, Altekruse SF, Kosary CL, Yu M, Ruhl J, Tatalovich Z, Mariotto A, Lewis DR, Chen HS, Feuer EJ, Cronin, KA (April 2015) (eds). SEER Cancer Statistics Review, 19752012, National cancer institute. Bethesda, MD, http://​seer.​cancer.​gov/​csr/​1975_​2012/​, based on November 2014 SEER data submission, posted to the SEER web site.
go back to reference Hu, C., Qian, Z., Gong, F., Lu, S., Feng, F., Wu, Y., et al. (2014). Methylenetetrahydrofolate reductase (MTHFR) polymorphism susceptibility to schizophrenia and bipolar disorder: An updated meta-analysis. Journal of Neural Transmission, 122(2), 307–320.CrossRefPubMed Hu, C., Qian, Z., Gong, F., Lu, S., Feng, F., Wu, Y., et al. (2014). Methylenetetrahydrofolate reductase (MTHFR) polymorphism susceptibility to schizophrenia and bipolar disorder: An updated meta-analysis. Journal of Neural Transmission, 122(2), 307–320.CrossRefPubMed
go back to reference Huang, T., Chen, Y., Yang, B., Yang, J., Wahlqvist, M. L., & Li, D. (2012). Meta-analysis of B vitamin supplementation on plasma homocysteine, cardiovascular and all-cause mortality. Clinical Nutrition, 31(4), 448–454.CrossRefPubMed Huang, T., Chen, Y., Yang, B., Yang, J., Wahlqvist, M. L., & Li, D. (2012). Meta-analysis of B vitamin supplementation on plasma homocysteine, cardiovascular and all-cause mortality. Clinical Nutrition, 31(4), 448–454.CrossRefPubMed
go back to reference Hubner, R. A., & Houlston, R. S. (2007). MTHFR C677T and colorectal cancer risk: A meta-analysis of 25 populations. International Journal of Cancer, 120(5), 1027–1035.CrossRefPubMed Hubner, R. A., & Houlston, R. S. (2007). MTHFR C677T and colorectal cancer risk: A meta-analysis of 25 populations. International Journal of Cancer, 120(5), 1027–1035.CrossRefPubMed
go back to reference Huemer, M., Mulder-Bleile, R., Burda, P., Froese, D. S., Suormala, T., Zeev, B., et al. (2015). Clinical pattern, mutations and in vitro residual activity in 33 patients with severe 5, 10 methylenetetrahydrofolate reductase (MTHFR) deficiency. Journal of Inherited Metabolic Disease, 1–10. Huemer, M., Mulder-Bleile, R., Burda, P., Froese, D. S., Suormala, T., Zeev, B., et al. (2015). Clinical pattern, mutations and in vitro residual activity in 33 patients with severe 5, 10 methylenetetrahydrofolate reductase (MTHFR) deficiency. Journal of Inherited Metabolic Disease, 1–10.
go back to reference Kang, S. S., Wong, P. W., Susmano, A., Sora, J., Norusis, M., & Ruggie, N. (1991). Thermolabile methylenetetrahydrofolate reductase: An inherited risk factor for coronary artery disease. American Journal of Human Genetics, 48(3), 536–545.PubMedPubMedCentral Kang, S. S., Wong, P. W., Susmano, A., Sora, J., Norusis, M., & Ruggie, N. (1991). Thermolabile methylenetetrahydrofolate reductase: An inherited risk factor for coronary artery disease. American Journal of Human Genetics, 48(3), 536–545.PubMedPubMedCentral
go back to reference Keijzer, M. B., Borm, G. F., Blom, H. J., Bos, G. M., Rosendaal, F. R., & den Heijer, M. (2007). No interaction between factor V leiden and hyperhomocysteinemia or MTHFR 677TT genotype in venous thrombosis-results of a meta-analysis of published studies and a large case-only study. Thrombosis and Haemostasis, 97(1), 32–37.PubMed Keijzer, M. B., Borm, G. F., Blom, H. J., Bos, G. M., Rosendaal, F. R., & den Heijer, M. (2007). No interaction between factor V leiden and hyperhomocysteinemia or MTHFR 677TT genotype in venous thrombosis-results of a meta-analysis of published studies and a large case-only study. Thrombosis and Haemostasis, 97(1), 32–37.PubMed
go back to reference Klerk, M., Verhoef, P., Clarke, R., Blom, H. J., Kok, F. J., & Schouten, E. G. (2002). MTHFR 677C→ T polymorphism and risk of coronary heart disease: A meta-analysis. Journal of the American Medical Association, 288(16), 2023–2031.CrossRefPubMed Klerk, M., Verhoef, P., Clarke, R., Blom, H. J., Kok, F. J., & Schouten, E. G. (2002). MTHFR 677C→ T polymorphism and risk of coronary heart disease: A meta-analysis. Journal of the American Medical Association, 288(16), 2023–2031.CrossRefPubMed
go back to reference Laurino, M. Y., Bennett, R. L., Saraiya, D. S., Baumeister, L., Doyle, D. L., Leppig, K., et al. (2005). Genetic evaluation and counseling of couples with recurrent miscarriage: Recommendations of the national society of genetic counselors. Journal of Genetic Counseling, 14(3), 165–181.CrossRefPubMed Laurino, M. Y., Bennett, R. L., Saraiya, D. S., Baumeister, L., Doyle, D. L., Leppig, K., et al. (2005). Genetic evaluation and counseling of couples with recurrent miscarriage: Recommendations of the national society of genetic counselors. Journal of Genetic Counseling, 14(3), 165–181.CrossRefPubMed
go back to reference Martí-Carvajal AJ, Solà I, Lathyris D, Salanti G. (2009) Homocysteine lowering interventions for preventing cardiovascular events.Cochrane Database of Systematic Reviews 2009, Issue 4. Art. No.: CD006612. (Updated Version 4: Martí-Carvajal AJ, Solà I, Lathyris D. (2015) Homocysteine-lowering interventions for preventing cardiovascular events. Cochrane Database of Systematic Reviews 2015, Issue 1. Art. No.: CD006612. doi:10.1002/14651858.CD006612.pub4.). Martí-Carvajal AJ, Solà I, Lathyris D, Salanti G. (2009) Homocysteine lowering interventions for preventing cardiovascular events.Cochrane Database of Systematic Reviews 2009, Issue 4. Art. No.: CD006612. (Updated Version 4: Martí-Carvajal AJ, Solà I, Lathyris D. (2015) Homocysteine-lowering interventions for preventing cardiovascular events. Cochrane Database of Systematic Reviews 2015, Issue 1. Art. No.: CD006612. doi:10.​1002/​14651858.​CD006612.​pub4.).
go back to reference Moll, S., & Varga, E. A. (2015). Homocysteine and MTHFR mutations. Circulation, 132(1), 6–9.CrossRef Moll, S., & Varga, E. A. (2015). Homocysteine and MTHFR mutations. Circulation, 132(1), 6–9.CrossRef
go back to reference Molloy, A. M., Mills, J. L., Kirke, P. N., Ramsbottom, D., McPartlin, J. M., Burke, H., et al. (1998). Low blood folates in NTD pregnancies are only partly explained by thermolabile 5,10-methylenetetrahydrofolate reductase: Low folate status alone may be the critical factor. American Journal of Medical Genetics, 78(2), 155–159.CrossRefPubMed Molloy, A. M., Mills, J. L., Kirke, P. N., Ramsbottom, D., McPartlin, J. M., Burke, H., et al. (1998). Low blood folates in NTD pregnancies are only partly explained by thermolabile 5,10-methylenetetrahydrofolate reductase: Low folate status alone may be the critical factor. American Journal of Medical Genetics, 78(2), 155–159.CrossRefPubMed
go back to reference Morris, M. S., Jacques, P. F., Rosenberg, I. H., & Selhub, J. (2007). Folate and vitamin B-12 status in relation to anemia, macrocytosis, and cognitive impairment in older Americans in the age of folic acid fortification. The American Journal of Clinical Nutrition, 85(1), 193–200.PubMedPubMedCentral Morris, M. S., Jacques, P. F., Rosenberg, I. H., & Selhub, J. (2007). Folate and vitamin B-12 status in relation to anemia, macrocytosis, and cognitive impairment in older Americans in the age of folic acid fortification. The American Journal of Clinical Nutrition, 85(1), 193–200.PubMedPubMedCentral
go back to reference MRC Vitamin Study Research Group (1991). Prevention of neural tube defects: results of the Medical Research Council Vitamin Study. The Lancet, 338(8760), 131–137.CrossRef MRC Vitamin Study Research Group (1991). Prevention of neural tube defects: results of the Medical Research Council Vitamin Study. The Lancet, 338(8760), 131–137.CrossRef
go back to reference Mudd, S. H., Uhlendorf, B. W., Freeman, J. M., Finkelstein, J. D., & Shih, V. E. (1972). Homocystinuria associated with decreased methylenetetrahydrofolate reductase activity. Biochemical and Biophysical Research Communications, 46(2), 905–912.CrossRefPubMed Mudd, S. H., Uhlendorf, B. W., Freeman, J. M., Finkelstein, J. D., & Shih, V. E. (1972). Homocystinuria associated with decreased methylenetetrahydrofolate reductase activity. Biochemical and Biophysical Research Communications, 46(2), 905–912.CrossRefPubMed
go back to reference Nagele, P., Meissner, K., Francis, A., Fodinger, M., & Saccone, N. L. (2011). Genetic and environmental determinants of plasma total homocysteine levels: Impact of population-wide folate fortification. Pharmacogenetics and Genomics, 21(7), 426–431.CrossRefPubMedPubMedCentral Nagele, P., Meissner, K., Francis, A., Fodinger, M., & Saccone, N. L. (2011). Genetic and environmental determinants of plasma total homocysteine levels: Impact of population-wide folate fortification. Pharmacogenetics and Genomics, 21(7), 426–431.CrossRefPubMedPubMedCentral
go back to reference Picker JD, Levy HL. (2014). Homocystinuria caused by cystathionine beta-synthase deficiency. 2004 Jan 15 [Updated 2014 Nov 13]. In: Pagon RA, Adam MP, Ardinger HH, et al., editors. GeneReviews® [Internet]. Seattle (WA): University of Washington, Seattle. Picker JD, Levy HL. (2014). Homocystinuria caused by cystathionine beta-synthase deficiency. 2004 Jan 15 [Updated 2014 Nov 13]. In: Pagon RA, Adam MP, Ardinger HH, et al., editors. GeneReviews® [Internet]. Seattle (WA): University of Washington, Seattle.
go back to reference Pu, D., Shen, Y., & Wu, J. (2013). Association between MTHFR gene polymorphisms and the risk of autism spectrum disorders: A Meta-Analysis. Autism Research, 6(5), 384–392.CrossRefPubMed Pu, D., Shen, Y., & Wu, J. (2013). Association between MTHFR gene polymorphisms and the risk of autism spectrum disorders: A Meta-Analysis. Autism Research, 6(5), 384–392.CrossRefPubMed
go back to reference Qi, X., Ma, X., Yang, X., Fan, L., Zhang, Y., Zhang, F., et a. (2010). Methylenetetrahydrofolate reductase polymorphisms and breast cancer risk: A meta-analysis from 41 studies with 16,480 cases and 22,388 controls. Breast Cancer Research and Treatment, 123(2), 499–506. Qi, X., Ma, X., Yang, X., Fan, L., Zhang, Y., Zhang, F., et a. (2010). Methylenetetrahydrofolate reductase polymorphisms and breast cancer risk: A meta-analysis from 41 studies with 16,480 cases and 22,388 controls. Breast Cancer Research and Treatment, 123(2), 499–506.
go back to reference Ray, J. G., Kearon, C., Yi, Q., Sheridan, P., & Lonn, E. (2007). Homocysteine-lowering therapy and risk for venous thromboembolism: A randomized trial. Annals of Internal Medicine, 146(11), 761–767.CrossRefPubMed Ray, J. G., Kearon, C., Yi, Q., Sheridan, P., & Lonn, E. (2007). Homocysteine-lowering therapy and risk for venous thromboembolism: A randomized trial. Annals of Internal Medicine, 146(11), 761–767.CrossRefPubMed
go back to reference Ren, A., & Wang, J. (2006). Methylenetetrahydrofolate reductase C677T polymorphism and the risk of unexplained recurrent pregnancy loss: A meta-analysis. Fertility and Sterility, 86(6), 1716–1722.CrossRefPubMed Ren, A., & Wang, J. (2006). Methylenetetrahydrofolate reductase C677T polymorphism and the risk of unexplained recurrent pregnancy loss: A meta-analysis. Fertility and Sterility, 86(6), 1716–1722.CrossRefPubMed
go back to reference Rey, E., Kahn, S. R., David, M., & Shrier, I. (2003). Thrombophilic disorders and fetal loss: A meta-analysis. The Lancet, 361(9361), 901–908.CrossRef Rey, E., Kahn, S. R., David, M., & Shrier, I. (2003). Thrombophilic disorders and fetal loss: A meta-analysis. The Lancet, 361(9361), 901–908.CrossRef
go back to reference Rozen, R. (1996). Molecular genetics of methylenetetrahydrofolate reductase deficiency. Journal of Inherited Metabolic Disease, 19(5), 589–594.CrossRefPubMed Rozen, R. (1996). Molecular genetics of methylenetetrahydrofolate reductase deficiency. Journal of Inherited Metabolic Disease, 19(5), 589–594.CrossRefPubMed
go back to reference Sharp, L., & Little, J. (2004). Polymorphisms in genes involved in folate metabolism and colorectal neoplasia: A HuGE review. American Journal of Epidemiology, 159(5), 423–443.CrossRefPubMed Sharp, L., & Little, J. (2004). Polymorphisms in genes involved in folate metabolism and colorectal neoplasia: A HuGE review. American Journal of Epidemiology, 159(5), 423–443.CrossRefPubMed
go back to reference Teng, Z., Wang, L., Cai, S., Yu, P., Wang, J., Gong, J., & Liu, Y. (2013). The 677C>T (rs1801133) polymorphism in the MTHFR gene contributes to colorectal cancer risk: A meta-analysis based on 71 research studies. PloS One, 8(2), e55332.CrossRefPubMedPubMedCentral Teng, Z., Wang, L., Cai, S., Yu, P., Wang, J., Gong, J., & Liu, Y. (2013). The 677C>T (rs1801133) polymorphism in the MTHFR gene contributes to colorectal cancer risk: A meta-analysis based on 71 research studies. PloS One, 8(2), e55332.CrossRefPubMedPubMedCentral
go back to reference Troen, A. M., Mitchell, B., Sorensen, B., Wener, M. H., Johnston, A., Wood, B., et al. (2006). Unmetabolized folic acid in plasma is associated with reduced natural killer cell cytotoxicity among postmenopausal women. The Journal of Nutrition, 136(1), 189–194.PubMed Troen, A. M., Mitchell, B., Sorensen, B., Wener, M. H., Johnston, A., Wood, B., et al. (2006). Unmetabolized folic acid in plasma is associated with reduced natural killer cell cytotoxicity among postmenopausal women. The Journal of Nutrition, 136(1), 189–194.PubMed
go back to reference Tsai, M. Y., Loria, C. M., Cao, J., Kim, Y., Siscovick, D., Schreiner, P. J., et al. (2009). Clinical utility of genotyping the 677C>T variant of methylenetetrahydrofolate reductase in humans is decreased in the post-folic acid fortification era. The Journal of Nutrition, 139(1), 33–37.CrossRefPubMedPubMedCentral Tsai, M. Y., Loria, C. M., Cao, J., Kim, Y., Siscovick, D., Schreiner, P. J., et al. (2009). Clinical utility of genotyping the 677C>T variant of methylenetetrahydrofolate reductase in humans is decreased in the post-folic acid fortification era. The Journal of Nutrition, 139(1), 33–37.CrossRefPubMedPubMedCentral
go back to reference Tsang, B. L., Devine, O. J., Cordero, A. M., Marchetta, C. M., Mulinare, J., Mersereau, P., et al. (2015). Assessing the association between the methylenetetrahydrofolate reductase (MTHFR) 677C> T polymorphism and blood folate concentrations: a systematic review and meta-analysis of trials and observational studies. The American Journal of Clinical Nutrition, 101(6), 1286–1294.CrossRefPubMed Tsang, B. L., Devine, O. J., Cordero, A. M., Marchetta, C. M., Mulinare, J., Mersereau, P., et al. (2015). Assessing the association between the methylenetetrahydrofolate reductase (MTHFR) 677C> T polymorphism and blood folate concentrations: a systematic review and meta-analysis of trials and observational studies. The American Journal of Clinical Nutrition, 101(6), 1286–1294.CrossRefPubMed
go back to reference Wang, H., Wang, J., Zhao, L., Liu, X., & Mi, W. (2012a). Methylenetetrahydrofolate reductase polymorphisms and risk of acute lymphoblastic leukemia-evidence from an updated meta-analysis including 35 studies. BMC Medical Genetics, 13, 77.CrossRefPubMedPubMedCentral Wang, H., Wang, J., Zhao, L., Liu, X., & Mi, W. (2012a). Methylenetetrahydrofolate reductase polymorphisms and risk of acute lymphoblastic leukemia-evidence from an updated meta-analysis including 35 studies. BMC Medical Genetics, 13, 77.CrossRefPubMedPubMedCentral
go back to reference Wang, X. W., Luo, Y. L., Wei Wang, M., Zhang, Y., Chen, Q., & Cheng, Y. L. (2012b). Association between MTHFR A1298C polymorphism and neural tube defect susceptibility: A meta-analysis. Obstetrics and Gynecology, 206(251), 1–7. Wang, X. W., Luo, Y. L., Wei Wang, M., Zhang, Y., Chen, Q., & Cheng, Y. L. (2012b). Association between MTHFR A1298C polymorphism and neural tube defect susceptibility: A meta-analysis. Obstetrics and Gynecology, 206(251), 1–7.
go back to reference Williams, J., Mai, C. T., Mulinare, J., Isenburg, J., Flood, T. J., Ethen, M., et al. (2015). Updated estimates of neural tube defects prevented by mandatory folic acid fortification-United States, 1995–2011. MMWR Morbidity and Mortality Weekly Report, 64(1), 1–5.PubMed Williams, J., Mai, C. T., Mulinare, J., Isenburg, J., Flood, T. J., Ethen, M., et al. (2015). Updated estimates of neural tube defects prevented by mandatory folic acid fortification-United States, 1995–2011. MMWR Morbidity and Mortality Weekly Report, 64(1), 1–5.PubMed
go back to reference Yang, Q. H., Botto, L. D., Gallagher, M., Friedman, J. M., Sanders, C. L., Koontz, D., et al. (2008). Prevalence and effects of gene-gene and gene-nutrient interactions on serum folate and serum total homocysteine concentrations in the United States: Findings from the third national health and nutrition examination survey DNA Bank. The American Journal of Clinical Nutrition, 88(1), 232–246.PubMed Yang, Q. H., Botto, L. D., Gallagher, M., Friedman, J. M., Sanders, C. L., Koontz, D., et al. (2008). Prevalence and effects of gene-gene and gene-nutrient interactions on serum folate and serum total homocysteine concentrations in the United States: Findings from the third national health and nutrition examination survey DNA Bank. The American Journal of Clinical Nutrition, 88(1), 232–246.PubMed
go back to reference Yang, Y., Chen, J., Wang, B., Ding, C., & Liu, H. (2015). Association between MTHFR C677T polymorphism and neural tube defect risks: A comprehensive evaluation in three groups of NTD patients, mothers, and fathers. Birth Defects Research. Part A, Clinical and Molecular Teratology, 103(6), 488–500.CrossRef Yang, Y., Chen, J., Wang, B., Ding, C., & Liu, H. (2015). Association between MTHFR C677T polymorphism and neural tube defect risks: A comprehensive evaluation in three groups of NTD patients, mothers, and fathers. Birth Defects Research. Part A, Clinical and Molecular Teratology, 103(6), 488–500.CrossRef
go back to reference Zappacosta, B., Mastroiacovo, P., Persichilli, S., Pounis, G., Ruggeri, S., Minucci, A., et al. (2013). Homocysteine lowering by folate-rich diet or pharmacological supplementations in subjects with moderate hyperhomocysteinemia. Nutrients, 5(5), 1531–1543.CrossRefPubMedPubMedCentral Zappacosta, B., Mastroiacovo, P., Persichilli, S., Pounis, G., Ruggeri, S., Minucci, A., et al. (2013). Homocysteine lowering by folate-rich diet or pharmacological supplementations in subjects with moderate hyperhomocysteinemia. Nutrients, 5(5), 1531–1543.CrossRefPubMedPubMedCentral
go back to reference Zhang, T., Lou, J., Zhong, R., Wu, J., Zou, L., Sun, Y., et al. (2013). Genetic variants in the folate pathway and the risk of neural tube defects: a meta-analysis of the published literature. PloS One, 8(4), e59570.CrossRefPubMedPubMedCentral Zhang, T., Lou, J., Zhong, R., Wu, J., Zou, L., Sun, Y., et al. (2013). Genetic variants in the folate pathway and the risk of neural tube defects: a meta-analysis of the published literature. PloS One, 8(4), e59570.CrossRefPubMedPubMedCentral
go back to reference Zintzaras, E. (2006). Methylenetetrahydrofolate reductase gene and susceptibility to breast cancer: A meta-analysis. Clinical Genetics, 69(4), 327–336.CrossRefPubMed Zintzaras, E. (2006). Methylenetetrahydrofolate reductase gene and susceptibility to breast cancer: A meta-analysis. Clinical Genetics, 69(4), 327–336.CrossRefPubMed
Metadata
Title
MTHFR: Addressing Genetic Counseling Dilemmas Using Evidence-Based Literature
Authors
Brooke Levenseller Levin
Elizabeth Varga
Publication date
01-10-2016
Publisher
Springer US
Published in
Journal of Genetic Counseling / Issue 5/2016
Print ISSN: 1059-7700
Electronic ISSN: 1573-3599
DOI
https://doi.org/10.1007/s10897-016-9956-7

Other articles of this Issue 5/2016

Journal of Genetic Counseling 5/2016 Go to the issue