亚洲综合另类小说色区丨三级特黄60分钟在线观看丨131美女mm爱做爽爽爽视频丨成人无码一区二区三区网站丨免费人成小说在线观看网站

熱門搜索:A549    293T 金黃色葡萄球菌 大腸桿菌 AKK菌
購物車 1 種商品 - 共0元
當前位置: 首頁 > 行業資訊 > Landmark study signals shift in thinking about stem cell dif

Landmark study signals shift in thinking about stem cell dif

 Date:

June 20, 2019
Source:
Florida State University
Summary:

Researchers found that embryonic stem cells commit to a cell fate far more rapidly than anticipated.

A pioneering new study led by Florida State University biologists could fundamentally change our understanding of how embryonic stem cells differentiate into specific cell types.

The research, published today in the journal Stem Cell Reports, calls into question decades of scientific consensus about the behavior of embryonic stem cells as they transition to endoderm, a class of cell in animal embryos that gives rise to the digestive and respiratory systems.

David M. Gilbert, the J. Herbert Taylor Distinguished Professor of Molecular Biology in FSU's Department of Biological Science, said the study upends well-established notions of when embryonic stem cells chart their unalterable courses toward a fixed endoderm lineage -- in this case, their eventual fate as specific digestive or respiratory cells.

"This paper challenges the longstanding assumption that embryonic stem cells remain quite plastic and malleable during the earliest stages of cell commitment," Gilbert said. "We show that human embryonic stem cells can commit irreversibly to endoderm lineages -- liver and pancreas cells, for example -- very quickly."

The findings represent a new chapter in the study of embryonic stem cell differentiation, a field that could be key to helping scientists and clinicians unlock improved therapies for a range of diseases.

Using a sophisticated protocol developed by the San Diego-based regenerative medicine firm ViaCyte, Gilbert and his collaborators exposed a sample of embryonic stem cells to culture conditions engineered to nudge the cells into the definitive endoderm stage, a fast lane to specialized cell development. The team then quickly returned the cells to a bath of treatment factors designed to restore them to an embryonic state.

Based on previous studies, the researchers presumed it would take days in the endoderm culture, or at least a full cell division cycle, for the cells to commit to a developmental track.

"In fact, we found that after only a few hours exposure to the endoderm cocktail -- a fraction of a cell division cycle -- the cells could be returned to the stem cell cocktail and continue to go through the same series of gene expression changes as the control cells that remained in the endoderm cocktail."

In other words, after a remarkably short soak in the endoderm culture, the cells had committed full bore to a specific cellular program.

"Prior to the experiments reported here, there was no expectation that early stem cell lineage commitment would be so rapid and irreversible," Gilbert and his co-authors wrote in their paper.

This wasn't the only entrenched assumption challenged by the team's study. Scientists long believed the 3D organization of chromosomes in the nucleus to be both exceptionally rigid and closely linked to replication timing -- the order in which segments of DNA are copied before cell division. It was thought that the only way to reconfigure that architecture was to crack open a cell's nucleus when its chromosomes were being delivered to its daughter cells.

It turns out those assumptions may have been misguided as well.

"We show that chromosome architecture can be remodeled locally and rapidly without dismantling the entire cell nucleus -- akin to changing the scaffolding of a building without tearing it down -- which was quite unexpected," Gilbert said. "We also show that these changes in chromosome architecture occur dynamically and immediately upon stimulation of stem cells to become endoderm. This finding demonstrates that replication and architecture do not always go hand in hand, they can be what we call 'uncoupled.'"

The researchers' work delinking replication timing from chromosome architecture and showing the ability to surgically remodel that architecture could help refine scientists' understanding of embryonic stem cell behavior. Along with the discovery that stem cell lineage commitment occurs more rapidly and irreversibly than expected, Gilbert said the findings raise critical questions about the basic nature of stem cells and the barriers to turning one cell into another.

If researchers can harness these newly acquired insights, they could begin unraveling the mysteries of how and why stem cells commit to their developmental tracks and why certain cells are especially difficult to reprogram.

That information could inform the creation of new, powerful tools to combat disease and allay human suffering.

"The fact that large changes in genome organization and their temporal order of replication can be remodeled so easily, and that this is correlated with irreversible commitment so quickly in a cell culture system in the laboratory, means that we might be able to use this system to get at the mechanisms that represent irreversible commitment," Gilbert said. "We never anticipated that -- we expected irreversible commitment to take a lot more work, time and expense."

Scientists from ViaCyte, Emory University and the University of Georgia contributed to this study. The research was funded by the National Institutes of Health.

Story Source:

Materials provided by Florida State UniversityNote: Content may be edited for style and length.


Journal Reference:

  1. Vishnu Dileep, Korey A. Wilson, Claire Marchal, Xiaowen Lyu, Peiyao A. Zhao, Ben Li, Axel Poulet, Daniel A. Bartlett, Juan Carlos Rivera-Mulia, Zhaohui S. Qin, Allan J. Robins, Thomas C. Schulz, Michael J. Kulik, Rachel Patton McCord, Job Dekker, Stephen Dalton, Victor G. Corces, David M. Gilbert. Rapid Irreversible Transcriptional Reprogramming in Human Stem Cells Accompanied by Discordance between Replication Timing and Chromatin CompartmentStem Cell Reports, 2019; DOI: 10.1016/j.stemcr.2019.05.021
主站蜘蛛池模板: 麻豆丰满少妇chinese| 无码人妻精品一区二区三区久久久 | 国产精品无码aⅴ嫩草| 亚洲综合天堂一区二区三区| 国产情侣疯狂作爱系列| 色两性网欧美| 波多野结衣不打码视频| 日韩成人无码| 国产免费午夜福利蜜芽无码| 国产免费久久久久久无码| 青青草国产精品亚洲专区无码| 中文在线www天堂网| 成 人 网 站不卡在线观看| 亚洲 欧美 自拍 小说 图片| 久久婷婷国产剧情内射白浆| 在线成年视频人网站观看| 麻花传媒mv一二三区别在哪里看| 国产午夜a理论毛片| 狠狠婷婷综合久久久久久| 国产av成人精品播放| 永久免费观看国产裸体美女| 亚洲精品1卡2卡3卡| 国产激情视频一区二区三区| 精品视频无码一区二区三区| 欧美成人乱码一二三四区| 思热99re视热频这里只精品| 久久综合色_综合色88| 国产专业剧情av在线| 国产美女裸体无遮挡免费视频| 无码专区—va亚洲v天堂| 欧美高清性色生活片免费观看 | 久久女人天堂精品av影院麻| 国产欧美在线亚洲一区| 午夜理论无码片在线观看免费| 大伊香蕉在线精品视频75| 久久av无码精品人妻系列果冻| 特级a欧美做爰片第一次| 亚洲最大成人av在线天堂网| 国产亚洲欧美日韩在线三区| 亚洲 欧美 日本 国产 高清| 国产精品久久久久aaaa|