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中文摘要
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描述(由申请人提供):中脑尾侧分为菱形体(r)4-7的分割受旁核组1(PG 1)Hox蛋白的调节,但尚不清楚PG 1 Hox蛋白如何激活其靶基因以及这些基因随后如何相互作用以产生不同的菱形体。我们的初步研究结果表明,Hoxb 1b(斑马鱼PG 1 Hox蛋白)与Pbx蛋白和组蛋白脱乙酰酶(HDAC)形成抑制性复合物,并且需要Meis蛋白将Pbx:Hoxb 1b复合物转化为转录激活因子。我们还证明了Hoxb 1b调控r4(如hoxb 1a)和r5/r6(如瓦尔、vhnf 1)中几个基因的表达,但目前尚不清楚这些基因如何发挥作用,很可能存在其他hoxb 1b靶基因。我们假设Meis蛋白从Pbx:Hoxb 1b复合物中置换HDAC以激活一些靶基因的转录,这些靶基因反过来调节形成r4-r7所需的转录因子级联。我们的第一个目标是描绘Hoxb 1b调控的途径,控制R4-R6的形成。特别是,我们将确定vhnf 1,瓦尔和hoxb 1a的作用顺序以及它们的表达结构域如何被细化。我们还将探讨我们在r5/r6中发现的几个新基因的功能。我们的第二个目标是确定Meis和Pbx辅因子在Hoxb 1b功能调节中的作用。我们将探索Meis蛋白从Pbx中置换HDAC的机制,并测试Meis在体内激活Hoxb 1b靶基因期间是否以类似的方式置换HDAC。我们的实验之所以重要有几个原因。首先,后脑产生了几个基本结构-感觉神经节和鳃神经元,以及脊椎动物头部的骨骼,软骨和肌肉。发育中的后脑对各种因素(例如环境毒素、传染性病原体和遗传条件)的破坏很敏感,这些因素会导致一系列出生缺陷-运动控制问题,如共济失调,认知缺陷,如自闭症和颅面缺陷。此外,Hox蛋白和Hox辅因子调节神经发育的其他方面(例如神经管的背腹模式)和胚胎发生的其他方面(例如造血)。HOX、MEIS和PBX基因也是涉及白血病的原癌基因。因此,更好地了解Hox功能将适用于广泛的生物过程和人类疾病条件。胚胎后脑产生了许多基本结构-感觉神经节和神经系统的鳃神经元,以及头部的骨骼,软骨和肌肉。发育中的后脑对各种因素(例如环境毒素、传染性病原体和遗传条件)的破坏很敏感,这些因素会导致一系列出生缺陷-运动控制问题,如共济失调,认知缺陷,如自闭症和颅面缺陷。此外,在这项提案中研究的基因调节神经发育的其他方面(例如神经管的背腹图案)和胚胎发生的其他方面(例如造血)。这些基因也是参与白血病的原癌基因。因此,我们提出的实验结果将适用于广泛的生物过程和人类疾病条件。
英文摘要
DESCRIPTION (provided by applicant): Segmentation of the caudal hindbrain into rhombomeres (r) 4-7 is regulated by paralog group 1 (PG1) Hox proteins, but it is unclear how PG1 Hox proteins activate their target genes and how these genes subsequently interact to produce distinct rhombomeres. Our preliminary results indicate that Hoxb1b (a zebrafish PG1 Hox protein) forms repressive complexes with Pbx proteins and histone deacetylases (HDACs) and that Meis proteins are required to convert Pbx:Hoxb1b complexes into transcriptional activators. We have also demonstrated that Hoxb1b regulates the expression of several genes in r4 (e.g. hoxb1a) and r5/r6 (e.g. val, vhnf1), but it is unclear how these genes act and it is likely that additional hoxb1b target genes exist. We hypothesize that Meis proteins displace HDACs from Pbx:Hoxb1b complexes to activate transcription of a few target genes that in turn regulate a cascade of transcription factors required for formation of r4-r7. Our first aim is to delineate Hoxb1b-regulated pathways that control formation of r4-r6. In particular, we will establish in which order vhnf1, val and hoxb1a act and how their expression domains become refined. We will also explore the function of several novel genes we have identified in r5/r6. Our second aim is to determine the role of Meis and Pbx cofactors in modulation of Hoxb1b function. We will explore the mechanism whereby Meis proteins displace HDACs from Pbx and we will test whether Meis acts in a similar manner to displace HDACs during activation of Hoxb1b target genes in vivo. Our experiments are important for several reasons. First, the hindbrain gives rise to several essential structures - sensory ganglia and branchiomotor neurons, as well as bone, cartilage and muscle of the vertebrate head. The developing hindbrain is sensitive to disruptions by a variety of factors (e.g. environmental toxins, infectious agents and genetic conditions) that give rise to a range of birth defects - motor control problems such as ataxia, cognitive defects such as autism and craniofacial defects. In addition, Hox proteins and Hox cofactors regulate other aspects of neural development (e.g. dorsoventral patterning of the neural tube), and other aspects of embryogenesis (e.g. hematopoiesis). hox, meis and pbx genes are also proto-oncogenes involved in leukemia. A better understanding of Hox function will therefore be applicable to a broad set of biological processes and human disease conditions. The embryonic hindbrain gives rise to many essential structures - sensory ganglia and branchiomotor neurons of the nervous system, as well as bone, cartilage and muscle of the head. The developing hindbrain is sensitive to disruptions by a variety of factors (e.g. environmental toxins, infectious agents and genetic conditions) that give rise to a range of birth defects - motor control problems such as ataxia, cognitive defects such as autism and craniofacial defects. In addition, the genes studied in this proposal regulate other aspects of neural development (e.g. dorsoventral patterning of the neural tube), and other aspects of embryogenesis (e.g. hematopoiesis). These genes are also proto-oncogenes involved in leukemia. The results from our proposed experiments will therefore be applicable to a broad set of biological processes and human disease conditions.
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In vivo motif selectivity and functionality of TALE family TFs
  • 批准号:
    10583395
  • 项目类别:
  • 资助金额:
    $6.85万
  • 财政年份:
    2021
  • 负责人:
    Charles G Sagerstrom
  • 依托单位:
In vivo motif selectivity and functionality of TALE family TFs
  • 批准号:
    10463218
  • 项目类别:
  • 资助金额:
    $2.28万
  • 财政年份:
    2021
  • 负责人:
    Charles G Sagerstrom
  • 依托单位:
In vivo motif selectivity and functionality of TALE family TFs
  • 批准号:
    10597048
  • 项目类别:
  • 资助金额:
    $36.4万
  • 财政年份:
    2021
  • 负责人:
    Charles G Sagerstrom
  • 依托单位:
In vivo motif selectivity and functionality of TALE family TFs
  • 批准号:
    10726877
  • 项目类别:
  • 资助金额:
    $4.57万
  • 财政年份:
    2021
  • 负责人:
    Charles G Sagerstrom
  • 依托单位:
海外基金