在鸟类胚胎发育期间,下丘脑的光诱导的表观遗传修饰增强了表型可塑性
Joanna Bartman1, Tali Rosenberg1, Hadar Parnas1
1The Department of Animal Science, The Robert H. Smith Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, Rehovot, Israel.
Frontiers in cell and developmental biology
|July 11, 2025
概括
在化期的最后三天内,绿色单色照明主要用于肉和肉.
科学领域:
- 发育生物学是发展生物学.
- 动物科学动物科学
- 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
背景情况:
- 早期的大脑发育对环境线索敏感,影响表型.
- 在化期间暴露于光线可以塑造发育轨迹.
- 胎儿对光的反应可能会增强可塑性和适应性反应.
研究的目的:
- 为了研究绿色单色照明 (GMI) 对肉胚胎生成的影响.
- 确定光诱导发育编程的关键窗口.
- 阐明光线对化后表型的影响的分子和表观遗传机制.
主要方法:
- 肉蛋连续或在化期的最后3天内暴露在GMI中.
- 对照组在黑暗或白光中进行化.
- 使用了全基因组分析,表观遗传分析和免疫染色.
主要成果:
- 在最后3天的GMI (G3D) 诱导了下丘脑的显著转录变化 (生长,新陈代谢,食欲,免疫力).
- GMI增加了化CREB1的结合和染色质的可访问性,这表明了表观遗传编程.
- G3D小对化后的光,增长的改善和更好的食物转化比率 (FCR) 呈现出增强的下丘脑反应.
结论:
- 在胚胎发生过程中,特定的波长和光线暴露的时间形成了卵巢化后的表型.
- 潜伏期的最后3天是GMI干预的关键时间.
- 光诱导的下丘脑适应是由视网膜绿色光受体介导的,涉及表观遗传修饰.
相关概念视频
Background and Environment Affect Phenotype
6.7K
Although the genetic makeup of an organism plays a major role in determining the phenotype, there are also several environmental factors, such as temperature, oxygen availability, presence of mutagens, that can alter an organism’s phenotype.
An example of how genetic background affects phenotype can be seen in horses. The Extension gene in horses is responsible for their coat color. A wild-type gene (EE) produces black pigment in the coat, while a mutant gene (ee) produces red pigment. A...
An example of how genetic background affects phenotype can be seen in horses. The Extension gene in horses is responsible for their coat color. A wild-type gene (EE) produces black pigment in the coat, while a mutant gene (ee) produces red pigment. A...
6.7K
Chromatin Modification in iPS Cells
1.9K
Chromatin modification alters gene expression; therefore, scientists can add histone-modifying enzymes, histone variants, and chromatin remodeling complexes to somatic cells to aid reprogramming into pluripotent stem (iPS) cells.
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
1.9K
Epigenetic Regulation
3.1K
Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
X-chromosome...
3.1K
Position-effect Variegation
6.6K
In 1928, a German botanist Emil Heitz observed the moss nuclei with a DNA binding dye. He observed that while some chromatin regions decondense and spread out in the interphase nucleus, others do not. He termed them euchromatin and heterochromatin, respectively. He proposed that the heterochromatin regions reflect a functionally inactive state of the genome. It was later confirmed that heterochromatin is transcriptionally repressed, and euchromatin is transcriptionally active chromatin.
6.6K
Methods of Nuclear Reprogramming
1.9K
Nuclear reprogramming is a process of transforming one cell type into an unrelated cell type by epigenetic changes that alter the cell’s original gene expression pattern. Such epigenetic changes force cells to express a different set of genes, which play a significant role in inducing transformation into other cell types. Nuclear reprogramming offers applications in reproductive cloning for livestock propagation and regenerative medicine — developing patient-specific cells for...
1.9K


