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Chaulot-Talmon, A.

Publications and source records attributed to Chaulot-Talmon, A..

3 recordsLinked to original sources

Heat Stress Induces Locus-Specific DNA Hypomethylation Linked to Immune Regulation in Lactating Holstein Cows

Epigenetics may play a crucial role in livestock adaptation to environmental challenges like heat stress. In recent years, a growing number of studies have investigated the epigenetic mechanisms underlying dairy cow adaptation to heat stress. However, there is still limited knowledge about the effects of heat stress on immune cells and immune-related phenotypes. Herein we aim to identify heat-stress induced DNA methylation variations on blood methylome potentially affecting regulatory regions and associated phenotypes. Blood samples were collected and peripheral blood mononuclear cell (PBMC) isolated from four cows before (D0) and after (D14) a 14-d heat stress challenge (cyclical THI 72-82) and, from four cows kept in thermoneutral conditions (THI 61-64). Heat-stressed cows had ad libitum access to diets supplemented with adequate levels of vitamin D and Ca (12,000 IU/kg of vitamin D and 0.73% Ca, respectively). To eliminate confounding effects due to differences in nutrient intake, cows maintained under thermoneutral conditions were pair-fed (PF) to their heat-stressed counterparts and received adequate concentrations of vitamin D and Ca as well. Reduced representation bisulphite sequencing (RRBS) was used to profile PBMCs methylome. Differential methylation analysis was performed using methylKit and DSS softwares ({Delta}meth [&ge;] 25%, adjusted p-value < 0.01), retaining only commonly detected differentially methylated cytosines (DMCs). A total of 2,908 DMCs were identified when comparing pre- and post-heat stress samples. After excluding 649 DMCs that were also detected under thermoneutral conditions, as these changes were likely associated with feed restriction inherent to the pair-feeding design rather than with heat stress per se, 2,259 heat stress-specific DMCs remained, predominantly hypomethylated. About half of the DMCs are annotated in intronic and intergenic regions; known to harbor regulatory elements. By intersecting the DMRs with publicly available functional annotation data, we observed hypomethylation on regulatory regions putatively affecting cows immune system. As an example, we identified a loss of methylation within an enhancer region of the MSN gene, which is involved in lymphocyte homeostasis, and a loss of methylation in the promoter region of MECP2, a well-established epigenetic regulator with a central role in chromatin organization and gene expression. These findings highlight the impact of heat stress on dairy cow immunity and provide new insights into its epigenetic regulation under environmental stress. Interpretative summaryThis study examined DNA methylation changes induced by heat stress in dairy cows to elucidate epigenetic mechanisms of thermal adaptation. Using RRBS on PBMCs, 2,259 heat stress-specific differentially methylated cytosines were identified, predominantly hypomethylated and enriched in regulatory regions. Functional annotation highlighted immune-related pathways, including hypomethylated regulatory regions near genes (e.g., MSN, ZBTB33, SLC25A5, GNAS, FAM3A, and MECP2) associated with immune function. These findings indicate that heat stress induces targeted epigenetic modifications potentially affecting immune regulation in dairy cows.

genomics↗

The RUMIGEN EpiChip: a versatile, medium density DNA methylation Beadchip for large scale population studies in cattle

BackgroundDNA methylation contributes to the elaboration of phenotypes and is hypothesized to account for interindividual variations in farm animals. Currently, methodologies available to investigate DNA methylation in cattle rely on high throughput sequencing, which cannot be applied to large cohorts. To enable large scale DNA methylation analysis, we developed the RUMIGEN EpiChip, the first DNA methylation array specifically designed for cattle. ResultsManufactured by Illumina, the EpiChip contains 43,317 CpG markers allowing analysis of phenotypes of agronomical interest as well as the study of regulatory processes. The assay design drew on data from numerous studies achieved by the scientific community, and includes CpGs where methylation varies with health status, physiological stage, fertility, and environmental challenges, as well as CpGs located in functional genomic elements (promoters, CTCF binding sites, expression quantitative trait loci). The technical performances of the EpiChip were tested on several semen and blood DNA samples and in two laboratories, showing excellent repeatability, accuracy and interoperability. Methylation values were also concordant with those obtained by reduced representation bisulfite sequencing. The EpiChip has demonstrated a good ability to explore biological processes such as genomic imprinting and differences between cell types, opening the possibility of inferring blood cell composition. Finally, analysis of longitudinal ear biopsies allowed accurate age prediction, suggesting the potential of the array to refine epigenetic clocks. ConclusionsThe RUMIGEN EpiChip is a cost-effective and versatile resource that opens new opportunities for the study of regulatory mechanisms underlying phenotypic variation and for large-scale association analyses in cattle.

genomics↗

The effect of environmental enrichment on immune cell DNA methylation profiles depends on the parity of sows.

The aim of this study was to identify epigenetic markers that reflected positive affective states in multiparous pregnant sows. The animals were housed during gestation in either a conventional (C) environment (2.4 m{superscript 2} per sow), featuring a concrete slatted floor and minimal enrichment, or in an enriched (E) environment (3.5 m{superscript 2} per sow) with deep straw bedding. Peripheral blood mononuclear cells (PBMCs) were isolated at day 98 of gestation (G98) and day 12 of lactation (L12) for genomic DNA extraction and reduced representation bisulfite sequencing (RRBS). Significant effects of individual class of parity (low-parity (LP) versus high-parity (HP)) were observed with the identification of 1,358 and 680 differentially methylated cytosines (DMCs) at G98 and L12, respectively. Interestingly, some of them are organized into differentially methylated regions (DMRs). Some DMRs colocalized with or near a gene and displayed a continuous methylation distribution (44 at G98 and 15 at L12 including 4 in common): 5 targeted genes are related to epigenetic regulation (DNMT3A, KDM8, HDAC4, SIRT2 and U2) and 12 to immune function (CD2, CD5, CAMK4, SECTM1, URODL1, CMIP, SEC14L1, SKI, TNFRSF1B, CCND3, SGK1, PACS1). These results suggested a true epigenetic impact of parity class on individual immunity. Considering the two parity classes separately, a minor effect of environmental enrichment was observed (at G98: 60 and 42 DMCs; at L12: 35 and 81 DMCs, in the LP and HP groups, respectively). Remarkably, some DMC-associated genes had previously been linked to affective states in humans. In conclusion, unexpected DNA methylation changes associated with parity class were identified, suggesting a genome adaptation during reproductive life and modifying the response to housing conditions. Furthermore, specific CpG sites emerged as potential biomarkers of positive affective states in pigs. HighlightsO_LIThis study revealed a substantial impact of the genetic background of sows on DNA methylation patterns, emphasizing the need to account for genetic factors when analysing epigenetic data. C_LIO_LIParity, which was confounded with the age of the sows in this study, significantly influenced DNA methylation, even among multiparous sows, highlighting the importance of this factor in modulating epigenetic mechanisms in immune cells. C_LIO_LIWe observed minor differences in the effects of environmental enrichment on DNA methylation profiles, which differed depending on the parity group. C_LIO_LIWe suggest a short list of possible biomarkers with biological meaning responding to environmental enrichment. C_LI

genomics↗