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Sanchez-Baizan, N.

Publications and source records attributed to Sanchez-Baizan, N..

2 recordsLinked to original sources

Epigenetic Regulation of Visual System Remodeling During Flatfish Metamorphosis: DNA Methylation Dynamics in Ocular Migration and Visual Adaptation

Flatfish metamorphosis is characterized by extensive tissue remodeling, associated with a transition from pelagic to benthic lifestyle, being the migration of one eye the most dramatic change. Epigenetic mechanisms exert a pivotal role in developmental programs. This study investigates the DNA methylation profiles of migrating and non-migrating eyes using reduced-representation bisulfite sequencing (RRBS) during three developmental stages of turbot: pre-metamorphosis, climax and post-metamorphosis. Over 31% of all identified regions were hypermethylated during climax stage in both eyes, coinciding with elevated expression of the dnmt3a gene, responsible for de novo methylation. Additionally, transcription factors crucial for retinal ganglion cells (RGCs) development, including the eomesa and tbr1b, exhibited differential methylation and expression between the migrating and non-migrating eye during the climax phase. These findings underscore the significance of DNA methylation in the intricate remodeling of the visual system during turbot metamorphosis, particularly regarding RGC-mediated ocular migration and the transmission of visual signals.

molecular biology↗

Epigenetic Regulation During Flatfish Metamorphosis: Integrative Omics Analysis of DNA Methylation and Gene Expression in Turbot Brain

The regulation of gene expression plays a pivotal role in the complex metamorphic process of flatfishes, which oversees the dynamic alterations that occur during their transition from a pelagic to a benthic way of life. Flatfish metamorphosis is characterized by substantial modifications in both form and function, which are initiated by thyroid hormones. Epigenetic mechanisms play a vital role in the regulation of gene expression during this transformative process. This study examines the molecular mechanisms underlying flatfish metamorphosis by integrating multi-omics data that provide information on chromatin status, DNA methylation profile, and gene expression at three key stages (pre-metamorphosis, climax and post-metamorphosis) in the turbot (Scophthalmus maximus) brain, a complex organ that plays a critical role in the regulation of this intricate process. The analysis of DNA methylation patterns revealed major epigenetic dynamic changes during the different metamorphosis stages. Specifically, the methylation levels exhibited a typical bimodal distribution in the pre-metamorphic stage, transitioned to intermediate levels of methylation (around 50%) during the climax stage, and reverted to a bimodal distribution in the post-metamorphic stage. Notably, DMRs were identified in regions of open chromatin that colocalized with CpG islands. Moreover, our results indicate an inverse relationship between DNA methylation and transcriptional activity in regions near the transcription start sites (TSSs), where high levels of methylation correspond to low expression and low levels of methylation corresponds to high gene transcription. This study thereby elucidates the regulatory impact of methylation on gene expression during the metamorphosis process in the flatfish brain.

molecular biology↗