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Regulation of thymic epithelial cell differentiation

Regulation of thymic epithelial cell differentiation
胸腺上皮细胞分化的调节
批准号:
7188077
负责人:
Nancy R Manley
金额:
$31.4万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-03-01 至 2009-02-28

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中文摘要
翻译
描述(由申请人提供):我们正在研究控制胸腺上皮细胞(TECs)分化的分子机制,这是促进胸腺内t细胞发育所必需的。最初的TEC分化依赖于Foxn1的功能,Foxn1编码叉头转录因子基因,为研究Foxn1的功能提供了独特的资源。Foxn1纯合子缺失小鼠(裸小鼠)在功能上是胸腺发育的,在非常早期的阶段就阻止了TEC分化。利用基因靶向技术,我们为Foxn1生成了一个新的等位基因,命名为Foxn1/delta。该等位基因编码一个截断的蛋白质,其中DNA结合和激活结构域是完整的,但n端结构域的一部分被删除。成年Foxn1delta/delta小鼠胸腺小,胸腺细胞发育有特异性缺陷,包括胸腺细胞数量减少40倍,胸腺细胞发育有特异性缺陷。Foxn1delta/nu小鼠,有一个delta和一个null等位基因,有更严重的缺陷。这些缺陷与Kit和IL-7信号突变的小鼠相似,Kit配体(Kit - i)的RT-PCR显示Foxn1delta/delta胸腺中几乎完全没有Kit - i信息。令人惊讶的是,Foxn1delta/delta和Foxn1delta/nu表型是胸腺特异性的,具有明显正常的皮肤和毛发发育,这表明Foxn1 n端具有胸腺特异性活性,而Foxn1 n端以前没有已知的功能。Foxn1delta/delta、Foxn1delta/nu和Foxn1nu/nu构成Foxn1基因的等位基因系列,为研究Foxn1的功能提供了独特的资源。我们提出了Foxn1等位基因系列的4个特定目标,为研究Foxn1功能提供了独特的资源。我们提出了4个特定的目标来验证Foxn1delta突变编码一个半形等位基因的假设,该等位基因允许TEC分化和胸腺器官发生的正常启动,但破坏了随后TEC分化所需的胸腺特异性功能域。检验Foxn1?突变编码一个半胚等位基因,该等位基因允许TEC分化和胸腺器官发生的正常启动,但破坏了随后TEC分化所需的胸腺特异性功能域。我们的目标是:1)确定Foxn1delta/delta和Foxn1delta/nu胚胎中胸腺发育受影响的最早阶段;2)鉴定Foxn1delta/delta和Foxn1delta/nu小鼠在胎儿和出生后发育过程中特异性胸腺细胞和TEC缺陷;3)检测kit - 1和il7信号通路是否作用于Foxn1的下游;4)确定Foxn1 n端结构域是否作为胸腺特异性蛋白-蛋白相互作用结构域。通过这些方法,我们将首次能够研究Foxn1在胸腺器官发生初始阶段以外的TEC发育和功能中的作用。此外,我们对n端结构域的新功能的鉴定可能对其他叉头家族转录因子的功能结构域具有启示意义。
英文摘要
DESCRIPTION (provided by the applicant): We are studying the molecular mechanisms that control the differentiation of thymic epithelial cells (TECs), which are required to promote T-cell development within the thymus. Initial TEC differentiation depends on the function of Foxn1, which encodes a forkhead transcription factor gene, providing a unique resource to investigate Foxn1 function. Foxn1 homozygous null mice (nude mice) are functionally athymic, arresting TEC differentiation at a very early stage. Using gene targeting we have generated a new allele for Foxn1, denoted Foxn1/delta. This allele encodes a truncated protein in which the DNA binding and activation domains are intact, but a portion of the N-terminal domain is deleted. Adult Foxn1delta/delta mice have small thymi with specific defects in thymocyte development, including a 40-fold drop in thymocyte number and specific defects in thymocyte development. Foxn1delta/nu mice, with one delta and one null allele, have even more severe defects. These defects are similar to those seen in mice with mutations in Kit and IL-7 signaling, and RT-PCR for kit ligand (kit-I) showed a near total absence of kit-I message in Foxn1delta/delta thymus. Surprisingly, the Foxn1delta/delta and Foxn1delta/nu phenotypes are thymus-specific, with apparently normal skin and hair development, identifying a thymus-specific activity for the Foxn1 N-terminus, which previously had no known function. Foxn1delta/delta, Foxn1delta/nu, and Foxn1nu/nu therefore constitute an allelic series for the Foxn1 gene, providing a unique resource to investigate Foxn1 function. We propose 4 specific aims to allelic series for the Foxn1 gene, providing a unique resource to investigate Foxn1 function. We propose 4 specific aims to test the hypothesis that the Foxn1delta mutation encodes a hypomorphic allele that allows normal initiation of TEC differentiation and thymus organogenesis, but disrupts a thymus-specific functional domain required for subsequent TEC differentiation. test the hypothesis that the Foxn1? mutation encodes a hypomorphic allele that allows normal initiation of TEC differentiation and thymus organogenesis, but disrupts a thymus-specific functional domain required for subsequent TEC differentiation. Our aims are :1) to determine the earliest stage at which thymus development is affected in Foxn1delta/delta and Foxn1delta/nu embryos; 2) to identify the specific thymocyte and TEC defects during fetal and post-natal development in Foxn1delta/delta and Foxn1delta/nu mice; 3) to test whether the Kit-l andIL7 signaling pathways act downstream of Foxn1; and 4) to determine whether the Foxn1 N-terminal domain acts as a thymus-specific protein-protein interaction domain. Through these approaches, we will for the first time be able to study the role of Foxn1 in TEC development and function beyond the initial stages of thymus organogenesis. Further, our identification of a new function for the N-terminal domain may have implications for functional domains in other forkhead family transcription factors.
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iTEC as a new experimental system for TEC biology
  • 批准号:
    10373479
  • 项目类别:
  • 资助金额:
    $22.65万
  • 财政年份:
    2021
  • 负责人:
    Nancy R Manley
  • 依托单位:
iTEC as a new experimental system for TEC biology
  • 批准号:
    10493405
  • 项目类别:
  • 资助金额:
    $18.88万
  • 财政年份:
    2021
  • 负责人:
    Nancy R Manley
  • 依托单位:
Project 2 - The role of Foxn1 in controlling the transition from thymus expansion to homeostasis
Project 2 - The role of Foxn1 in controlling the transition from thymus expansion to homeostasis
海外基金