Epigenetic regulation of lineage competence in human pluripotent stem cells
Epigenetic regulation of lineage competence in human pluripotent stem cells
批准号:
MR/V02969X/1
负责人:
Peter Rugg-Gunn
金额:
$85.54万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --
中文摘要
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英文摘要
The human body consists of more than 250 specialised cell types. During embryo development, this diversity originates from a small group of about 10-20 cells named "epiblast", which are initially equivalent, but will then continue development and form the whole body. This ability to produce all cells of the body is called "pluripotency". Pluripotent cells will take diverse pathways in order to eventually become different cell types (a process referred to as "differentiation"): neurons of the brain, heart muscle cells, among many others.All specialised cells (with very few exceptions) have the same genes, but only a specific subset of genes is active in each cell type - this is what makes the cells unique. There are special mechanisms to switch genes "on" and "off". Many of them are related to the fact that our genes are not simply naked DNA molecules, but rather represent DNA in complex with many different proteins. Specific molecular tags can be placed onto these proteins or onto DNA itself. These so-called "epigenetic" modifications do not alter our DNA sequence, they are reversible and employed to turn genes "on" and "off".One of the most fascinating questions in developmental biology is how pluripotent cells of an embryo make their first decisions what specialised cells to become. Remarkably, when the epiblast first emerges in the embryo, these cells are not sensitive to the signals that would induce them to specialise (we call this stage "naïve"). Only after 8-10 days, during which the embryo implants in the uterus, the epiblast cells will gain the capacity to respond to these signals ("primed" stage) and go on to develop further. Our project aims to understand the mechanism of how pluripotent cells become competent to differentiate.There are major limitations to study development of human embryos directly, due to ethical considerations. The solution in many cases is to use so called "pluripotent stem cells" (PSC), which are derived from embryos. Using special growth factors and chemicals allows for trapping PSC so that they remain very similar to epiblast cells. In these conditions, PSC can be grown in a dish practically indefinitely and remain unspecialised. If PSC are exposed to factors that stimulate development, they can produce mature cells as if they were in the embryo. Besides their use for fundamental research, PSC is a promising tool for regenerative medicine, as a source of mature cells for transplantation.Previously, we developed conditions in which human PSC reproduce development of the epiblast from the naïve to primed stage. This takes about 10 days, which is very similar to the length of this process in the actual embryo. We plan to use this unique model to understand the very beginnings of human embryo development. Our hypothesis is that epigenetic mechanisms operate not only simply to turn genes "on" and "off" but also before that, in order to prepare genes for activation. We predict that during transition from naive to primed pluripotency, some genes for differentiation become "pre-activated" by epigenetic modifications. This makes cells sensitive to differentiation signals. Once these signals appear, these genes will turn on and pluripotent cells will produce many different specialised cells.In this project, we will identify "pre-activated" genes and the epigenetic modifications that "pre-activate" them. Then, we will apply modern genetic engineering tools to understand which factors "pre-activate" the genes in the first place, and how these genes become activated later during differentiation. Altogether, our results will reveal how a small group of 10-20 epiblast cells make their first decisions in order to generate complex organisms like ourselves. Furthermore, this insight will advance our abilities to employ PSC for biomedical science and potential clinical application.
期刊论文(10)
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DOI:
10.1126/sciadv.adg1936
发表时间:
2023-09-29
期刊:
SCIENCE ADVANCES
影响因子:
13.6
作者:
[de Sousa, Joao Agostinho, Wong, Chee-Wai, Dunkel, Ilona, Owens, Thomas, Voigt, Philipp, Hodgson, Adam, Baker, Duncan, Schulz, Edda G., Reik, Wolf, Smith, Austin, Rostovskaya, Maria, von Meyenn, Ferdinand]
通讯作者:
von Meyenn, Ferdinand
DOI:
10.1093/nar/gkad029
发表时间:
2023-03-21
期刊:
Nucleic acids research
影响因子:
14.9
作者:
[]
通讯作者:
DOI:
10.1126/sciadv.abk0013
发表时间:
2022-03-25
期刊:
Science advances
影响因子:
13.6
作者:
[Collier AJ, Bendall A, Fabian C, Malcolm AA, Tilgner K, Semprich CI, Wojdyla K, Nisi PS, Kishore K, Roamio Franklin VN, Mirshekar-Syahkal B, D'Santos C, Plath K, Yusa K, Rugg-Gunn PJ]
通讯作者:
Rugg-Gunn PJ
DOI:
10.1242/dev.201155
发表时间:
2023-01-15
期刊:
Development (Cambridge, England)
影响因子:
--
作者:
[]
通讯作者:
DOI:
10.1016/j.stem.2022.03.014
发表时间:
2022-05-05
期刊:
CELL STEM CELL
影响因子:
23.9
作者:
[Rostovskaya, Maria, Andrews, Simon, Reik, Wolf, Rugg-Gunn, Peter J.]
通讯作者:
Rugg-Gunn, Peter J.
共 8 条
Defining the gene regulatory mechanisms controlling the entry of human cells into naïve pluripotency
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批准号:MR/T011769/1
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项目类别:Research Grant
-
资助金额:$71.06万
-
财政年份:2021
-
负责人:Peter Rugg-Gunn
-
依托单位:
US Partnering Award: Cellular heterogeneity, signalling and decision-making in human pluripotent stem cells
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批准号:BB/R021341/1
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项目类别:Research Grant
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资助金额:$6.14万
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财政年份:2018
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负责人:Peter Rugg-Gunn
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依托单位:
16ALERT: BD FACS-Aria Fusion - strengthening the cell sorting capabilities of Babraham Institute Flow Core to enrich world-class science
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批准号:BB/R00076X/1
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项目类别:Research Grant
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资助金额:$57.27万
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财政年份:2017
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负责人:Peter Rugg-Gunn
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依托单位:
Characterisation of a novel NANOG / KDM4B complex to regulate heterochromatin function and chromosome stability in pluripotent stem cells
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批准号:BB/M022285/1
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项目类别:Research Grant
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资助金额:$43.44万
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财政年份:2015
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负责人:Peter Rugg-Gunn
-
依托单位:
国内基金
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