Mohamed Amin R, Naval-Sanchez Marina, Menzies Moira, Evans Bradley, King Harry, Reverter Antonio, Kijas James W
CSIRO Agriculture and Food, Queensland Bioscience Precinct, St Lucia, Brisbane, QLD, 4067, Australia.
Present Address: Zoology Department, Faculty of Science, Benha University, Benha, Egypt.
BMC Genomics. 2022 Jun 1;23(1):413. doi: 10.1186/s12864-022-08514-8.
Despite sexual development being ubiquitous to vertebrates, the molecular mechanisms underpinning this fundamental transition remain largely undocumented in many organisms. We designed a time course experiment that successfully sampled the period when Atlantic salmon commence their trajectory towards sexual maturation.
Through deep RNA sequencing, we discovered key genes and pathways associated with maturation in the pituitary-ovarian axis. Analyzing DNA methylomes revealed a bias towards hypermethylation in ovary that implicated maturation-related genes. Co-analysis of DNA methylome and gene expression changes revealed chromatin remodeling genes and key transcription factors were both significantly hypermethylated and upregulated in the ovary during the onset of maturation. We also observed changes in chromatin state landscapes that were strongly correlated with fundamental remodeling of gene expression in liver. Finally, a multiomic integrated analysis revealed regulatory networks and identified hub genes including TRIM25 gene (encoding the estrogen-responsive finger protein) as a putative key regulator in the pituitary that underwent a 60-fold change in connectivity during the transition to maturation.
The study successfully documented transcriptome and epigenome changes that involved key genes and pathways acting in the pituitary - ovarian axis. Using a Systems Biology approach, we identified hub genes and their associated networks deemed crucial for onset of maturation. The results provide a comprehensive view of the spatiotemporal changes involved in a complex trait and opens the door to future efforts aiming to manipulate puberty in an economically important aquaculture species.
尽管性发育在脊椎动物中普遍存在,但在许多生物体中,支撑这一基本转变的分子机制在很大程度上仍未得到充分记录。我们设计了一个时间进程实验,成功地采样了大西洋鲑鱼开始性成熟轨迹的时期。
通过深度RNA测序,我们发现了与垂体 - 卵巢轴成熟相关的关键基因和途径。对DNA甲基化组的分析揭示了卵巢中甲基化偏向于高甲基化,这涉及到与成熟相关的基因。DNA甲基化组和基因表达变化的联合分析表明,在成熟开始时,染色质重塑基因和关键转录因子在卵巢中均显著高甲基化且上调。我们还观察到染色质状态景观的变化与肝脏中基因表达的基本重塑密切相关。最后,多组学综合分析揭示了调控网络并鉴定出枢纽基因,包括TRIM25基因(编码雌激素反应性指蛋白),该基因在向成熟转变过程中连接性发生了60倍的变化,被认为是垂体中的一个关键调控因子。
该研究成功记录了涉及垂体 - 卵巢轴中关键基因和途径的转录组和表观基因组变化。使用系统生物学方法,我们鉴定出了对成熟开始至关重要的枢纽基因及其相关网络。这些结果提供了一个复杂性状所涉及的时空变化的全面视图,并为未来旨在操纵一种具有重要经济价值的水产养殖物种青春期的研究打开了大门。