Diets rich in methyl-donating compounds, including folate, can provide protection against neural tube defects, but their role in preventing craniofacial defects is less clear. Mice deficient in Twisted gastrulation (TWSG1), an extracellular modulator of bone morphogenetic protein signaling, manifest both midline facial defects and jaw defects, allowing study of the effects of methyl donors on various craniofacial defects in an experimentally tractable animal model. The goal of this study was to examine the effects of maternal dietary supplementation with methyl donors on the incidence and type of craniofacial defects among Twsg1(-/-) offspring. Nulliparous and primiparous female mice were fed an NIH31 standard diet (control) or a methyl donor supplemented (MDS) diet (folate, vitamin B-12, betaine, and choline). Observed defects in the pups were divided into those derived mostly from the first branchial arch (BA1) (micrognathia, agnathia, cleft palate) and midline facial defects in the holoprosencephaly spectrum (cyclopia, proboscis, and anterior truncation). In the first pregnancy, offspring of mice fed the MDS diet had lower incidence of BA1-derived defects (12.8% in MDS vs. 32.5% in control; P = 0.02) but similar incidence of midline facial defects (6.4% in MDS vs. 5.2% in control; P = 1.0). Increased maternal parity was independently associated with increased incidence of craniofacial defects after adjusting for diet (from 37.7 to 59.5% in control, P = 0.04 and from 19.1 to 45.3% in MDS, P = 0.045). In conclusion, methyl donor supplementation shows protective effects against jaw defects, but not midline facial defects, and increased parity can be a risk factor for some craniofacial defects.
Billington, C.J., Jr., et al., Maternal Diet Supplementation with Methyl Donors and Increased Parity Affect the Incidence of Craniofacial Defects in the Offspring of Twisted gastrulation Mutant Mice. J Nutr, 2013
Tuesday, January 29, 2013
Thursday, January 24, 2013
Effects of dietary supplementation with betaine on a nonalcoholic steatohepatitis (NASH) mouse model.
The effects of betaine supplementation on non-alcoholic
steatohepatitis (NASH) model mice were examined by measuring the accumulation
of fat in the livers of NASH model mice compared to a control. Betaine from
sugar beets was provided to the model mice as a dietary supplement. After 3 wk
of dietary supplementation. there were no significant differences in body
weight or liver weight between the groups. However, the liver to body weight
ratio in the high-fat diet with betaine (HM) group was significantly higher
than that in the high-fat diet (HF) group. There were no differences in scrum
triglyceride (TG) concentrations. AST and ALT activities, or hepatic
glutathione concentrations between the groups. Hepatic TG level in the Ha group
was significantly lower than that in the HF group. Hepatic cells obtained from
the HF group showed increased occurrence of explosive puff and necrosis as
compared with those in the HFB group. Betaine supplementation had an inhibitory
effect on fat accumulation in the liver: the Oil red-positive area in the Ha
group (0.82 +/- 0.85%) was significantly smaller than that in the HF group
(9.06 +/- 2.24%). These results indicate the potential of betaine to serve as
an agent for amelioration of hepatic steatosis in NASH model mice.
Tuesday, January 15, 2013
Higher plasma betaine in children is associated with better language score
Choline is an essential nutrient that is found in many food sources and plays a critical role in the development of the central nervous system. Animal studies have shown that choline status pre- and postnatally can have long-lasting effects on attention and memory; however, effects in human subjects have not been well studied. The aim of the present study was to examine the association between plasma concentrations of free choline and its related metabolites in children and their neurodevelopment in the Seychelles Child Development Nutrition Study, an ongoing longitudinal study assessing the development of children born to mothers with high fish consumption during pregnancy. Plasma concentrations of free choline, betaine, dimethylglycine (DMG), methionine and homocysteine and specific measures of neurodevelopment were measured in 210 children aged 5 years. The children's plasma free choline concentration (9.17 (sd 2.09) mumol/l) was moderately, but significantly, correlated with betaine (r 0.24; P= 0.0006), DMG (r 0.15; P= 0.03), methionine (r 0.24; P= 0.0005) and homocysteine (r 0.19; P= 0.006) concentrations. Adjusted multiple linear regression revealed that betaine concentrations were positively associated with Preschool Language Scale - total language scores (beta = 0.066; P= 0.04), but no other associations were evident. We found no indication that free choline concentration or its metabolites, within the normal physiological range, are associated with neurodevelopmental outcomes in children at 5 years of age. As there is considerable animal evidence suggesting that choline status during development is associated with cognitive outcome, the issue deserves further study in other cohorts.
Strain, J.J., et al., Choline status and neurodevelopmental outcomes at 5 years of age in the Seychelles Child Development Nutrition Study. Br J Nutr, 2013: p. 1-7.
Strain, J.J., et al., Choline status and neurodevelopmental outcomes at 5 years of age in the Seychelles Child Development Nutrition Study. Br J Nutr, 2013: p. 1-7.
Tuesday, January 8, 2013
Betaine: a promising antioxidant agent for enhancement of broiler meat quality
1. Antioxidant and methyl donor effects of betaine in experimental animal models have recently been demonstrated. The present study was therefore designed to examine the antioxidant effects of betaine on the antioxidant status and meat quality of breast muscles in broilers.
2. Cobb broilers were randomly divided into Control, Methionine low, Methionine low plus betaine, and Betaine groups.
3. The activity of the main antioxidant enzyme (glutathione peroxidase) in the Betaine and the Methionine low plus betaine groups significantly increased compared to the Methionine low and Control groups. Catalase and superoxide dismutase activities were significantly higher in the Betaine group compared to the Methionine low group, and lipid peroxidation was significantly higher in the Control and the Methionine low groups.
4. The present study indicates that adding betaine (1 g/kg) to a diet deficient in methionine can significantly improve antioxidant defences and meat quality, decreasing lipid peroxidation in the breast muscles of broiler chickens.
Alirezaei, M., et al., Betaine: a promising antioxidant agent for enhancement of broiler meat quality. British Poultry Science, 2012. 53(5): p. 699-707
2. Cobb broilers were randomly divided into Control, Methionine low, Methionine low plus betaine, and Betaine groups.
3. The activity of the main antioxidant enzyme (glutathione peroxidase) in the Betaine and the Methionine low plus betaine groups significantly increased compared to the Methionine low and Control groups. Catalase and superoxide dismutase activities were significantly higher in the Betaine group compared to the Methionine low group, and lipid peroxidation was significantly higher in the Control and the Methionine low groups.
4. The present study indicates that adding betaine (1 g/kg) to a diet deficient in methionine can significantly improve antioxidant defences and meat quality, decreasing lipid peroxidation in the breast muscles of broiler chickens.
Alirezaei, M., et al., Betaine: a promising antioxidant agent for enhancement of broiler meat quality. British Poultry Science, 2012. 53(5): p. 699-707
Thursday, December 27, 2012
Nutrients related to one-carbon metabolism and risk of renal cell cancer
Purpose - Folate, vitamins B6 and B12, methionine, choline, and betaine are nutrients related to one-carbon metabolism and have been hypothesized to decrease cancer risk. Few studies have evaluated dietary intakes of these nutrients in relation to renal cell cancer (RCC).
Methods - We conducted prospective follow-up studies of women in the Nurses’ Health Study and men in the Health Professionals Follow-up Study. Diet was assessed repeatedly using a validated semi-quantitative food-frequency questionnaire in both studies.
Results - During follow-up of 24 years among 77,208 women (918,891 person-years) and 22 years among 47,886 men (1,731,752 person-years), we accrued 436 cases of RCC (225 women and 211 men). Intakes of folate, vitamins B6 and B12, methionine, and betaine were not found to be related to RCC risk. Higher intake of free choline, but not other forms of choline, was associated with reduced RCC risk. The results were similar in men and women.
Conclusions - We found little evidence that higher intakes of nutrients related to one-carbon metabolism lower RCC risk. One-carbon metabolism may have little influence on renal carcinogenesis.
Cho, E., E. Giovannucci, and H.-K. Joh, Nutrients related to one-carbon metabolism and risk of renal cell cancer. Cancer Causes & Control 2012: p. 1-10
Methods - We conducted prospective follow-up studies of women in the Nurses’ Health Study and men in the Health Professionals Follow-up Study. Diet was assessed repeatedly using a validated semi-quantitative food-frequency questionnaire in both studies.
Results - During follow-up of 24 years among 77,208 women (918,891 person-years) and 22 years among 47,886 men (1,731,752 person-years), we accrued 436 cases of RCC (225 women and 211 men). Intakes of folate, vitamins B6 and B12, methionine, and betaine were not found to be related to RCC risk. Higher intake of free choline, but not other forms of choline, was associated with reduced RCC risk. The results were similar in men and women.
Conclusions - We found little evidence that higher intakes of nutrients related to one-carbon metabolism lower RCC risk. One-carbon metabolism may have little influence on renal carcinogenesis.
Cho, E., E. Giovannucci, and H.-K. Joh, Nutrients related to one-carbon metabolism and risk of renal cell cancer. Cancer Causes & Control 2012: p. 1-10
Betaine stabilizes cell volume and protects against apoptosis in human corneal epithelial cells under hyperosmotic stress
Elevated tear osmolarity is one of the key pathological factors in dry eye leading to ocular discomfort associated with damage to the ocular surface and inflammation. The aim of this study was to determine the capacity of the organic osmolyte, betaine, to act as an osmoprotectant against hypertonic stress-induced human corneal epithelial cell shrinkage and apoptosis using in vitro cell culture models. Human corneal limbal epithelial (HCLE) cells exposed to culture medium for 16 h at 300 mOsm (isotonic) or 500 mOsm (hyperosmotic) in the presence or absence of betaine (5 or 10 mM) were evaluated for cell volume changes; cell viability; and apoptosis. Betaine (10 mM) ameliorated hyperosmotically induced reduction of cell volume (from 27% reduction to 11%) and resulted in increased mitochondrial activity (by 17%) and an increase in viable cell numbers (by 12%) compared to controls (exposure to hyperosmotic medium without betaine). Hyperosmotically shocked HCLE cells in the presence of betaine (10 mM) halved the number of damaged cells (apoptotic/necrotic) compared to cells in the absence of betaine. The presence of betaine (at 5 or 10 mM) significantly reduced the activity of caspase-8, -9 and -3/7 and release of TNF-α was also reduced by 34% or 55% after exposure of HCLE to 500 mOsm in the presence of 5 or 10 mM betaine, respectively. Using polyclonal antibody against Betaine/GABA transporter 1 (BGT-1), we detected the presence of BGT-1 in HCLE. We demonstrated that the transport of betaine was facilitated by increased osmolarity. In conclusion, betaine stabilized corneal epithelial cell volume under hyperosmotic stress and limited hyperosmotic stress-induced HCLE apoptosis.
Garrett, Q., et al., Betaine stabilizes cell volume and protects against apoptosis in human corneal epithelial cells under hyperosmotic stress. Experimental Eye Research, 2013
Garrett, Q., et al., Betaine stabilizes cell volume and protects against apoptosis in human corneal epithelial cells under hyperosmotic stress. Experimental Eye Research, 2013
The nutritional burden of methylation reactions
Purpose of review: Methyl group metabolism is a metabolically demanding process that has significant nutritional implications. Methionine is required not only for protein synthesis but also as the primary source of methyl groups. However, demethylated methionine can be remethylated by methyl groups from methylneogenesis (via folate) and betaine (synthesized from choline). This review discusses the impact of methylation precursors and products on the methionine requirement. Recent findings: Recent evidence has clearly demonstrated that transmethylation reactions can consume a significant proportion of the flux of methionine. In particular, synthesis of creatine and phosphatidylcholine consume most methyl groups and their dietary provision could spare methionine. Importantly, methionine can become limiting for protein and phosphatidylcholine synthesis when creatine synthesis is upregulated. Other research has shown that betaine and choline seem to be more effective than folate at reducing hyperhomocysteinemia and impacting cardiovascular outcomes suggesting they may be limiting. Summary: It appears that methyl groups can become limiting when dietary supply is inadequate or if transmethylation reactions are upregulated. These situations can impact methionine availability for protein synthesis, which can reduce growth. The methionine requirement can likely be spared by methyl donor and methylated product supplementation.
Bertolo, R.F. and L.E. McBreairty, The nutritional burden of methylation reactions. Current Opinion in Clinical Nutrition & Metabolic Care, 2013. 16(1): p. 102-8.
Bertolo, R.F. and L.E. McBreairty, The nutritional burden of methylation reactions. Current Opinion in Clinical Nutrition & Metabolic Care, 2013. 16(1): p. 102-8.
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