Folate promotes S-adenosyl methionine reactions and the microbial methylation cycle and boosts ruminants production and reproduction

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作者
Imtiaz Hussain Raja Abbasi
Farzana Abbasi
Lamei Wang
Mohamed E. Abd El Hack
Ayman A. Swelum
Ren Hao
Junhu Yao
Yangchun Cao
机构
[1] Northwest A&F University,Department of Animal Nutrition and Feed Science, College of Animal Science and Technology
[2] Southwest University of Science and Technology,School of Life Science and Engineering
[3] Zagazig University,Department of Poultry, Faculty of Agriculture
[4] King Saud University,Department of Animal Production, College of Food and Agriculture Sciences
来源
AMB Express | / 8卷
关键词
Epigenetic; DNA stability; Folate; Microbial methylation; Ruminants; Vitamin B;
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摘要
Folate has gained significant attention due to its vital role in biological methylation and epigenetic machinery. Folate, or vitamin (B9), is only produced through a de novo mechanism by plants and micro-organisms in the rumen of mature animals. Although limited research has been conducted on folate in ruminants, it has been noted that ruminal synthesis could not maintain folate levels in high yielding dairy animals. Folate has an essential role in one-carbon metabolism and is a strong antiproliferative agent. Folate increases DNA stability, being crucial for DNA synthesis and repair, the methylation cycle, and preventing oxidation of DNA by free radicals. Folate is also critical for cell division, metabolism of proteins, synthesis of purine and pyrimidine, and increasing the de novo delivery of methyl groups and S-adenosylmethionine. However, in ruminants, metabolism of B12 and B9 vitamins are closely connected and utilization of folate by cells is significantly affected by B12 vitamin concentration. Supplementation of folate through diet, particularly in early lactation, enhanced metabolic efficiency, lactational performance, and nutritional quality of milk. Impaired absorption, oxidative degradation, or deficient supply of folate in ruminants affects DNA stability, cell division, homocysteine remethylation to methionine, de novo synthesis of S-adenosylmethionine, and increases DNA hypomethylation, uracil misincorporation into DNA, chromosomal damage, abnormal cell growth, oxidative species, premature birth, low calf weight, placental tube defects, and decreases production and reproduction of ruminant animals. However, more studies are needed to overcome these problems and reduce enormous dietary supplement waste and impaired absorption of folate in ruminants. This review was aimed to highlight the vital role of folic acid in ruminants performance.
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