| Literature DB >> 25810901 |
Amanda Feeney1, Eric Nilsson1, Michael K Skinner1.
Abstract
Epigenetics provides a molecular mechanism of inheritance that is not solely dependent on DNA sequence and that can account for non-Mendelian inheritance patterns. Epigenetic changes underlie many normal developmental processes, and can lead to disease development as well. While epigenetic effects have been studied in well-characterized rodent models, less research has been done using agriculturally important domestic animal species. This review will present the results of current epigenetic research using farm animal models (cattle, pigs, sheep and chickens). Much of the work has focused on the epigenetic effects that environmental exposures to toxicants, nutrients and infectious agents has on either the exposed animals themselves or on their direct offspring. Only one porcine study examined epigenetic transgenerational effects; namely the effect diet micronutrients fed to male pigs has on liver DNA methylation and muscle mass in grand-offspring (F2 generation). Healthy viable offspring are very important in the farm and husbandry industry and epigenetic differences can be associated with production traits. Therefore further epigenetic research into domestic animal health and how exposure to toxicants or nutritional changes affects future generations is imperative.Entities:
Keywords: Environment; Epigenetics; Pig; Review; Transgenerational
Year: 2014 PMID: 25810901 PMCID: PMC4373098 DOI: 10.1186/2049-1891-5-48
Source DB: PubMed Journal: J Anim Sci Biotechnol ISSN: 1674-9782
Environmental epigenetics and epigenetic inheritance in domestic farm animals
| Environmental epigenetics and domestic farm animals | ||
|---|---|---|
| Bovine | Context | Ref. |
| Mammary gland-specific hypomethylation of Hpa II sites flanking the bovine alpha S1-casein gene. | Epigenetic regulation of lactation. | [ |
| DNA-remethylation around a STAT5-binding enhancer in the alphaS1-casein promoter is associated with abrupt shutdown of alphaS1-casein synthesis during acute mastitis. | Epigenetic regulation of lactation. | [ |
| Transcriptome profiling of Streptococcus uberis-induced mastitis reveals fundamental differences between immune gene expression in the mammary gland and in a primary cell culture model. | Epigenetic regulation of lactation. | [ |
| Conservation of methylation reprogramming in mammalian development: aberrant reprogramming in cloned embryos. | Epigenetic changes with assisted reproductive technologies | [ |
| DNA methylation events associated with the suppression of milk protein gene expression during involution of the bovine mammary gland. | Epigenetic regulation of lactation. | [ |
| Effect of maternal lactation during pregnancy | Epigenetic regulation of lactation. | [ |
| Large offspring syndrome in cattle and sheep. | Epigenetic changes with assisted reproductive technologies | [ |
| The production of unusually large offspring following embryo manipulation: Concepts and challenges. | Epigenetic changes with assisted reproductive technologies | [ |
| Postnatal characteristics of calves produced by nuclear transfer cloning. | Epigenetic changes with assisted reproductive technologies | [ |
| Epigenetic contribution to individual variation in response to lipopolysaccharide in bovine dermal fibroblasts. | Epigenetic role in immunity | [ |
| Occurrence, absorption and metabolism of short chain fatty acids in the digestive tract of mammals. | Epigenetic changes with regulation of nutrition | [ |
| Butyrate induces profound changes in gene expression related to multiple signal pathways in bovine kidney epithelial cells. | Epigenetic changes with regulation of nutrition | [ |
| Transcriptome Characterization by RNA-seq Unravels the Mechanisms of Butyrate-Induced Epigenomic Regulation in Bovine Cells. | Epigenetic changes with regulation of nutrition | [ |
| In vitro produced and cloned embryos: Effects on pregnancy, parturition and offspring. | Epigenetic changes with assisted reproductive technologies | [ |
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| Sulforaphane causes a major epigenetic repression of myostatin in porcine satellite cells. | Histone deacetylase inhibitor affects myostatin | [ |
| Maternal dietary protein affects transcriptional regulation of myostatin gene distinctively at weaning and finishing stages in skeletal muscle of Meishan pigs. | Maternal diet affects offspring epigenetics | [ |
| HOX10 mRNA expression and promoter DNA methylation in female pig offspring after in utero estradiol-17beta exposure. | Maternal steroid exposure affects offspring epigenetics | [ |
| Investigations on transgenerational epigenetic response down the male line in F2 pigs. | Paternal diet has transgenerational epigenetic effect | [ |
| Dietary Sulforaphane, a Histone Deacetylase Inhibitor for Cancer Prevention | Epigenetic changes with regulation of nutrition | [ |
| Neonatal estradiol exposure alters uterine morphology and endometrial transcriptional activity in prepubertal gilts. | Steroid exposure affects epigenetics | [ |
| Maternal dietary protein restriction and excess affects offspring gene expression and methylation of non-SMC subunits of condensin I in liver and skeletal muscle. | Maternal diet affects offspring epigenetics | [ |
| Diet, methyl donors and DNA methylation: interactions between dietary folate, methionine and choline. | Epigenetic changes with regulation of nutrition | [ |
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| Periconceptional nutrition and the early programming of a life of obesity or adversity. | Maternal diet affects offspring epigenetics | [ |
| The effect of maternal under-nutrition before muscle differentiation on the muscle fiber development of the newborn lamb. | Maternal diet affects offspring epigenetics | [ |
| Effect of maternal dietary restriction during pregnancy on lamb carcass characteristics and muscle fiber composition. | Maternal diet affects offspring epigenetics | [ |
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| Comparison of the Genome-Wide DNA Methylation Profiles between Fast-Growing and Slow-Growing Broilers. | Differences in epigenetics between breeds | [ |
| Insulin-like growth factor-1 receptor is regulated by microRNA-133 during skeletal myogenesis. | Epigenetic effects during muscle development | [ |
| Transgenerational epigenetic effects on innate immunity in broilers: An underestimated field to be explored? | Review on role of epigenetics in innate immunity | [ |
| DNMT gene expression and methylome in Marek's disease resistant and susceptible chickens prior to and following infection by MDV. | Epigenetic role in immunity | [ |
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| Investigations on transgenerational epigenetic response down the male line in F2 pigs. | Paternal diet has transgenerational epigenetic effect | [ |