In vivo characterisation of the lateral plate mesoderm giving rise to the haematopoietic stem cell lineage at a single cell resolution
In vivo characterisation of the lateral plate mesoderm giving rise to the haematopoietic stem cell lineage at a single cell resolution
批准号:
BB/S008144/1
负责人:
Catherine Porcher
金额:
$56.76万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --
中文摘要
造血干细胞(hsc)具有在一生中产生所有血细胞的能力。它们与临床高度相关,因为它们是骨髓移植中恢复白血病、贫血和淋巴瘤等血液病患者正常造血的必要成分。然而,尽管经过了半个多世纪的研究,造血干细胞的供应并不充足,也不能在骨髓外扩增。然而,最近的技术进步已经开启了通过多能干细胞(PSCs)生成造血干细胞来缓解造血干细胞短缺的可能性。然而,造血干细胞的体外生产一直具有挑战性,到目前为止,它只能通过强制表达潜在的有害基因来实现,这使得它们不适用于人体移植。因此,需要一种不使用这种基因操作而产生造血干细胞的方法。重要的是,肌肉、肾脏和其他组织的生成是通过模仿它们的胚胎发育实现的。因此,了解胚胎中引导造血干细胞生成的细胞和分子过程有可能为造血干细胞的高效生成提供基础知识。骨髓造血干细胞是在胚胎中通过一系列复杂的事件产生的,这些事件始于胚胎干区侧板中胚层(LPM)的形成。从历史上看,这些事件在低等脊椎动物模式生物(如青蛙)中得到了最好的研究。由于易于获得外部发育的胚胎以及造血干细胞产生过程的进化保守性,对青蛙胚胎血液发育的研究有助于我们理解这一过程中涉及的分化途径。通过一系列诱导事件,LPM首先产生最终的成血管细胞(DHs),然后是动脉内皮,造血内皮,最后是造血干细胞。体外造血干细胞的生成需要准确再现指导这些瞬时前体细胞生成的外部信号(细胞/分子)。这只有在我们知道所需信号的性质和时间要求的情况下才能实现。因此,充分了解造血干细胞的胚胎发育至关重要。重要的是,LPM最初是如何产生的,以及它如何获得DH的命运尚不清楚。如果我们要从造血干细胞中生成造血干细胞,这些信息是必不可少的。在爪蟾胚胎中,LPM中胚层来自32个细胞阶段胚胎的一个细胞,即卵裂球C3。因此,通过标记卵裂球C3,可以在中胚层前体及其衍生物成为DH之前进行分离。在这个项目中,我们将在从LPM产生到DHs出现的几个阶段分离c3来源的细胞,并对它们进行单细胞rna测序,目的是确定DH命运如何在新生LPM中建立。这也将允许鉴定新生LPM的标记基因,然后可用于优化其在PSC分化系统中的生成。目前,造血干细胞的分化是在有利于尾部中胚层形成而不是主干LPM的生长因子条件下实现的。因此,我们将操纵生长因子的数量来确定LPM产生的最佳条件。然后,利用从c3衍生细胞的单细胞rna测序中获得的知识,指示LPM生成DH。从造血干细胞中生成DH是临床应用造血干细胞的第一步,也是最重要的一步。
英文摘要
Haematopoietic stem cells (HSCs) have the capacity to produce all blood cells throughout life. They are highly relevant in the clinic as they are the essential components in bone marrow transplants that restore normal haemopoiesis in patients with blood diseases such as leukaemias, anaemias and lymphomas. Yet, despite over half a century of research, HSCs are not in sufficient supply and cannot be expanded outside the bone marrow. Recent technological advances, though, have opened the possibility of alleviating the HSC shortage through their generation from pluripotent stem cells (PSCs). However, in vitro production of HSCs has been challenging and, so far, it has only been achieved through forced expression of potentially harmful genes which makes them inadequate for transplantation in humans. Therefore, there is a need for a method to produce HSCs without the use of such genetic manipulation. Importantly, production of muscle, kidney and other tissues has been achieved by mimicking their embryonic development. Thus, understanding the cellular and molecular processes guiding the generation of HSCs in embryos has the potential to provide fundamental knowledge for their efficient generation from PSCs.Bone marrow HSCs are generated in the embryo through a complex sequence of events initiating with the formation of lateral plate mesoderm (LPM) in the trunk region of the embryo. Historically, these events have been best studied in lower vertebrate model organisms, such as frogs. Because of easy access to externally developing embryos and the evolutionary conservation of the processes giving rise to HSCs, studies of blood development in frog embryos have been instrumental for our understanding of the differentiation pathways involved in this process. Through sequential inductive events, LPM first produces definitive haemangioblasts (DHs) and then arterial endothelium, haemogenic endothelium and, finally, HSCs. Generation of HSCs in vitro will require the exact recapitulation of the extrinsic signals (cells/molecules) directing production of these transient precursor cells. This can only be achieved if we know the nature and temporal requirement of the signals needed. Full understanding of embryonic development of HSCs is therefore essential.Importantly, how the LPM is generated in the first place and how it acquires the DH fate is not known. This information is essential if we are to generate HSCs from PSCs. In Xenopus embryos, the LPM mesoderm derives from one cell, blastomere C3, of the 32-cell stage embryo. Therefore, by marking blastomere C3, mesodermal precursors and their derivatives can be isolated before they become DH. In this project, we will isolate C3-derived cells at several stages, from the generation of LPM up to the emergence of DHs, and subject them to single-cell RNA-sequencing, with the goal of establishing how the DH fate is established in nascent LPM. This will also allow the identification of marker genes for nascent LPM which can then be used to optimise its generation in PSC differentiation systems. Currently, blood cell differentiation from PSCs is achieved under growth factor conditions that favour tail mesoderm formation rather than trunk LPM. Therefore, we will manipulate the amount of growth factors to define optimal conditions for the generation of LPM. Then, using the knowledge generated from single-cell RNA-sequencing on C3-derived cells, LPM will be instructed to generate DH. The generation of DH from PSCs represents the first, and one of the most important steps in the generation of HSCs for clinical applications.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1016/j.semcdb.2022.01.008
发表时间:
2022-02
期刊:
Seminars in cell & developmental biology
影响因子:
7.3
作者:
[V. Ho;D. E. Grainger;H. Chagraoui;C. Porcher]
通讯作者:
V. Ho;D. E. Grainger;H. Chagraoui;C. Porcher
Transcriptional control of haematopoietic specification and differentiation
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批准号:MC_UU_00016/9
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项目类别:Intramural
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资助金额:$318.55万
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财政年份:2017
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负责人:Catherine Porcher
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依托单位:
Investigating Vegfa transcriptional regulation by co-repressors ETV6 and ETO2 in haematopoietic stem cell development
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批准号:BB/M001938/1
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项目类别:Research Grant
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资助金额:$43.66万
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财政年份:2015
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负责人:Catherine Porcher
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依托单位:
海外基金