Post transcriptional Regulation of Oscillatory clock gene expression during somitogenesis
Post transcriptional Regulation of Oscillatory clock gene expression during somitogenesis
批准号:
MR/X018423/1
负责人:
Jacqueline Dale
金额:
$120.99万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
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英文摘要
This project aims to investigate the regulatory mechanisms responsible for the segmentation of the developing embryo. These segments go on to form the bones and muscles of the skeleton and increased knowledge of this process is essential for the understanding of developmental diseases such as scoliosis as well as certain cancers.During embryonic development cells need to differentiate to generate all the different cell types that the embryo requires. This is achieved by a set of very complicated processes which are dependent on a high level of co-ordination between the different cells. One such process is segmentation which results in formation of segments called somites, distinct groups of cells that will form the bones and muscles of the skeleton. This process is driven by a molecular clock termed the segmentation clock which activates expression of a set of genes in a cyclic manner. These genes need to be switched on and off in a timely fashion to generate the correctly timed waves of clock gene expression. Together, these regulate the timing of the formation of the segments. If the segmentation clock genes are not switched on and off at the correct times this results in bigger or smaller segments which can lead to birth defects such as scoliosis.Regulation of gene expression occurs at several different levels. When genes are activated a copy is made of the desired gene: the messenger RNA, which then subsequently gets translated into the protein that is required. For the segmentation clock a lot is known about how genes are activated but our knowledge on how activity levels and stability of these messengers are regulated is very limited. Accurate regulation of messenger activity and stability are critical to determine the timing and the amount of the proteins that will be made and are essential for successful segmentation and embryonic survival. This process has been shown to be of critical importance for other oscillatory processes such as the circadian clock but has been woefully understudied for the segmentation clock. The proposed research adds a new, critically important and innovative aspect to our knowledge of the segmentation clock. It takes an unbiassed holistic approach to identify the regulatory processes governing regulation of messenger activity and stability of these critical genes.We will use two stem cell derived model systems that facilitate research into the development of human embryogenesis without the use of human or animal embryos. 1) Human induced pluripotent stem cells will be differentiated into the cells that form somites: presomitic mesoderm. These show clock gene expression via a fluorescent protein. 2) We will use the same cells and produce axioloids: 3D structures that form somite-like cell blocks. Using these model systems, we can analysis the effects of perturbing the function of candidate regulators on clock gene oscillations and somite formation. When regulation of the timing and the amount of key regulatory proteins produced by a cell is deregulated this is a hallmark of many diseases including many cancers. Clock genes are activated by signalling pathways which are all tightly associated with cancers if they are aberrantly regulated. Thus, a greater understanding of the mechanisms regulating the correct amount of the messengers and proteins made by clock genes will inform our understanding of how misregulation of those processes may contribute to certain cancers. The aim of this project is to discover the regulatory mechanism for all clock gene messengers that we can detect and to link that to the signalling pathways that control the segmentation process. It will provide a very detailed analysis of clock gene regulation which will provide a much better understanding of the segmentation process and will contribute to our knowledge regarding developmental disorders such as scoliosis as well as several cancers that are linked with misexpression of the genes involved in segmentation.
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依托单位:
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