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In vitro modelling of biliary development and diseases

In vitro modelling of biliary development and diseases
胆道发育和疾病的体外建模
批准号:
MR/L016761/1
负责人:
Fotios Sampaziotis
金额:
$28.42万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --

项目摘要

项目成果

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中文摘要
翻译
胆汁是肝脏中产生的有毒液体,并通过称为胆管的管状结构转移到肠道,在那里它有助于脂肪吸收。在胆管疾病(胆管病)中,胆管不能有效地容纳和转移胆汁。因此,有毒胆汁从胆管中泄漏出来并积聚在肝脏中,造成严重损害。不幸的是,我们对导致胆道疾病的确切机制的理解非常有限。由于在实验室中获得和保持活胆管样本的技术困难以及缺乏忠实再现该疾病的动物模型,该领域的研究受到阻碍。然而,破译疾病机制,开发新的诊断测试和治疗方案的需求非常紧迫。胆管疾病占所有肝脏疾病的主要比例,具有显著的死亡率。唯一可用的治疗方法是肝移植,这是一种挽救生命但昂贵且具有挑战性的手术,需要终身药物治疗和随访,并且由于全国缺乏肝脏供体而变得复杂。Alagille综合征(AGS)是一种遗传性疾病。虽然它涉及多个器官,但妊娠和早期胆道发育不良引起的胆道疾病构成了最常见的临床表现。肝移植仍然是唯一的治疗选择。与其他胆管疾病相比,AGS的研究有两个重要的优势:首先,疾病机制并不完全未知,因为引起它的遗传突变已经被描述。其次,鉴于AGS和胆管发育之间的密切联系,阐明疾病机制将提供有关胆管正常发育的重要信息。胆管发育在某种程度上与导致儿科肝移植的所有儿童胆道疾病有关。因此,研究AGS可能会提高我们对整个胆道疾病的认识。本项目的目的是开发一种新的方法,在实验室中产生大量的功能齐全的胆管复制品。由此产生的管道将提供一个很好的模型来研究任何胆道疾病,测试和开发新的治疗方法。我建议应用这种方法来生成第一个AGS原理验证疾病模型,并阐明疾病机制。我已经在实现这一目标方面取得了重大进展。利用干细胞技术,我已经成功地从健康人的皮肤样本开始创建了功能性胆管复制品。我打算使用相同的方法来生成和研究AGS患者的胆管。一旦这些导管形成,我将使用尖端技术来破译导致AGS的一系列事件,并试图通过干预和改变这些事件来“拯救”患病的导管。这个项目将揭示驱动AGS的机制,促进开发新的检测方法来识别早期疾病,预测其病程的新标志物和替代肝移植的新治疗方案。最终,它将有助于改善患者的生活质量,减轻移植等待名单上的压力,并将AGS从无法治疗的疾病转变为可管理的疾病。此外,所描述的平台具有从患有任何胆道疾病的患者产生大量胆管复制品的潜力。因此,它将为任何从事胆管研究的研究小组提供一个强大的新型疾病建模工具,克服与缺乏胆管组织相关的困难,并为未来理解和治疗胆道疾病铺平道路。
英文摘要
Bile is a toxic fluid produced in the liver and transferred through tubular structures known as bile ducts to the gut, where it helps with fat absorption. In bile duct disorders (cholangiopathies), the bile ducts fail to contain and transfer bile effectively. As a result, toxic bile leaks out of the ducts and accumulates in the liver causing significant damage. Unfortunately, our understanding of the exact mechanisms leading to biliary disease is very limited. Research in the field is hindered by technical difficulties in obtaining and maintaining live bile duct samples in the laboratory and the lack of animal models faithfully reproducing the disease. Nevertheless, the need to decipher the disease mechanisms, towards developing new diagnostic tests and treatment options is very pressing. Bile duct disorders account for a major proportion of all liver disease, carrying significant mortality. The only available treatment is liver transplantation, a lifesaving but expensive and challenging operation, requiring lifelong medication and follow-up and complicated by the national shortage of liver donors.Alagille syndrome (AGS) is an inherited disorder. Although it involves multiple organs, biliary disease caused by poor bile duct development in pregnancy and early life constitutes the most common clinical manifestation. Liver transplantation remains the only treatment option. Compared to other bile duct disorders the study of AGS has two important advantages: Primarily, the disease mechanism is not completely unknown, as the hereditary mutation causing it has already been described. Secondarily, in view of the close association between AGS and bile duct development, elucidating the disease mechanism will provide significant information on how bile ducts normally develop. Duct development is implicated to some extent in all childhood biliary disorders leading to paediatric liver transplantation. Therefore, studying AGS may advance our knowledge on a whole group of biliary diseases.The aim of this project is to develop a novel method for generating large amounts of fully functional bile duct replicas in the laboratory. The resulting ducts will provide an excellent model to study any biliary disease, test and develop new therapies. I propose applying this method for generating the first proof-of-principle disease model for AGS and elucidating the disease mechanism. I have already made significant progress towards achieving this goal. Using the technology of stem cells, I have successfully created functional bile duct replicas, starting from healthy individuals' skin samples. I intend to use the same approach to generate and study bile ducts from AGS patients. Once the ducts have been created, I will use cutting edge technology to decipher the series of events leading to AGS and attempt to 'rescue' the diseased ducts by intervening and altering these events.This project will shed light on the mechanisms driving AGS, facilitating the development of new tests for identifying the disease in early stages, new markers for predicting its course and new treatment options alternative to liver transplantation. Ultimately, it will contribute to improving the patients' quality of life, reducing pressure on the transplant waiting list and changing AGS from an untreatable disease to a manageable condition. Furthermore, the platform described has the potential to generate large amounts of bile duct replicas from patients with any biliary disorder. Therefore, it will provide a powerful novel disease modelling tool for the benefit of any research group working on bile ducts, overcoming the difficulties related to lack of biliary tissue and paving the road towards understanding and treating biliary disease in the future.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1089/scd.2014.0512
发表时间: 2015-07-15
期刊: Stem cells and development
影响因子: 4
作者: [Hannan NR, Sampaziotis F, Segeritz CP, Hanley NA, Vallier L]
通讯作者: Vallier L
DOI: 10.1242/dev.138081
发表时间: 2016-12-01
期刊: Development (Cambridge, England)
影响因子: --
作者: [Bertero A, Pawlowski M, Ortmann D, Snijders K, Yiangou L, Cardoso de Brito M, Brown S, Bernard WG, Cooper JD, Giacomelli E, Gambardella L, Hannan NR, Iyer D, Sampaziotis F, Serrano F, Zonneveld MC, Sinha S, Kotter M, Vallier L]
通讯作者: Vallier L
Optimized inducible shRNA and CRISPR/Cas9 platforms for $\textit{in vitro}$ studies of human development using hPSCs
优化诱导型 shRNA 和 CRISPR/Cas9 平台,用于使用 hPSC 进行人类发育的 $ extit{体外}$ 研究
DOI: 10.17863/cam.6765
发表时间: 2016
期刊:
影响因子: --
作者: [Bertero A]
通讯作者: Bertero A
DOI: 10.1038/nbt.3275
发表时间: 2015-08
期刊: Nature biotechnology
影响因子: 46.9
作者: [Sampaziotis F, de Brito MC, Madrigal P, Bertero A, Saeb-Parsy K, Soares FAC, Schrumpf E, Melum E, Karlsen TH, Bradley JA, Gelson WT, Davies S, Baker A, Kaser A, Alexander GJ, Hannan NRF, Vallier L]
通讯作者: Vallier L
A platform facilitating research on human organs maintained ex-vivo.
  • 批准号:
    MR/X01228X/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $30.58万
  • 财政年份:
    2022
  • 负责人:
    Fotios Sampaziotis
  • 依托单位:
Regenerative medicine applications of cholangiocyte organoids
  • 批准号:
    MR/V023004/1
  • 项目类别:
    Fellowship
  • 资助金额:
    $195.01万
  • 财政年份:
    2021
  • 负责人:
    Fotios Sampaziotis
  • 依托单位:
国内基金
海外基金
Improving modelling of compact binary evolution.
  • 批准号:
    10903001
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    20.0万元
  • 批准年份:
    2009
  • 负责人:
    史蒂芬
  • 依托单位: