AG百家乐大转轮-AG百家乐导航_怎么看百家乐走势_全讯网官网 (中国)·官方网站

Research News

The work of Professor Ding Junjun’s team from Zhongshan School of Medicine is published in Cell Stem Cell

Share
  • Updated: Jun 2, 2021
  • Written:
  • Edited:
Source: Zhongshan School of Medicine
Edited by: Tan Rongyu, Wang Dongmei

The eukaryotic three-dimensional (3D) genome is organized in a hierarchical order, mainly comprising compartments, topological-associated domains (TADs), and chromatin loops from large to small scales. 3D chromatin architectures are drastically altered during cell fate transitions, which plays an important role to promote cell fate transitions. TADs are usually considered to be stable among different cell types and species. However, recent studies have reported the loss of TADs during pluripotent stem cell (PSC) differentiation, indicating that they are likely to reorganize in these biological processes. Therefore, it is significant to clarify the relationship between TAD reorganization and cell fate transitions.

On 25 May 2021, the work of Professor Ding Junjun’s team entitled “Phase separation of OCT4 controls TAD reorganization to promote cell fate transitions” is published in Cell Stem Cell, which for the first time illuminates that phase separation promotes cell fate transitions via regulating higher-order chromatin 3D architectures.


Phase separation of OCT4 controls TAD reorganization to promote cell fate transitions

In this study, 3D genome, proteome, transcriptome and epigenome were integrated to map the dynamics of chromatin 3D architectures during somatic cell reprogramming. TAD reorganization was observed, which contributes largely to cell fate transitions. Moreover, the dynamics of OCT4-mediated chromatin loops promote TAD reorganization by regulating the binding of CTCF on TAD boundaries. Further, OCT4 phase-separated condensates which concentrate chromatin loops regulate TAD reorganization. Interestingly, manipulation of TAD reorganization or OCT4 phase separation can influence cell fate transitions. Finally, TAD reorganization-based new algorithm was developed to identify novel cell fate regulators, which were validated by functional study.

It is the first work to establish the regulatory network among phase separation, higher-order chromatin structures and cell fate transitions. New methods were set up to control cell fate transitions by manipulating TAD structures or phase separation. New algorithm was developed to precisely predict novel cell fate regulators.

Wang Jia, research fellow of Zhongshan School of Medicine, is the first author of the paper, Yu Haopeng and Ma Qian are co-first authors, Ding Junjun, Professor of Zhongshan School of Medicine at Sun Yat-sen University, is the only corresponding author.

Link to the paper: https://www.cell.com/cell-stem-cell/fulltext/S1934-5909(21)00181-8
TOP
澳门百家乐有没有假| 易胜博| 做生意的门市风水| 太阳城娱乐网sss977| A8百家乐官网娱乐场| bet365注册找谁| 老钱庄百家乐官网的玩法技巧和规则 | 德州扑克怎么玩的| 百家乐怎么玩高手| 圣淘沙百家乐官网娱乐城| 百家乐投注开户| 大发888是真的吗| 天博百家乐官网的玩法技巧和规则 | 百家乐官网真人斗地主| 二八杠高手| 电脑百家乐官网玩| 太阳城娱乐城官方网| 太阳城百家乐娱乐开户| 全讯网娱乐353788| 百家乐官网园试玩| 百家乐官网网站东方果博| 大发888娱乐场解码器| 百家乐有免费玩| 百家乐官网发牌器8副| 外围赌球| 威尼斯人娱乐城首选802com| 澳门百家乐技巧皇冠网| 新天地百家乐官网的玩法技巧和规则| 顶级赌场连环夺宝下载| 包赢百家乐的玩法技巧和规则| 24山向水法吉凶断| 百家乐官网赌博机怎么玩| 大发888游戏平台黄埔| 曼哈顿百家乐的玩法技巧和规则| 百家乐官网园天将| 查看百家乐官网赌博| OK娱乐城| 威尼斯人娱乐城赌博网站| 百家乐说明| 赌博百家乐官网秘笈| 黄冈市|