Control of Shh Activity and Signaling in the Neural Tube
Control of Shh Activity and Signaling in the Neural Tube
批准号:
6615520
负责人:
CHIN CHIANG
金额:
$30.2万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-08-01 至 2005-07-31
关键词:
biological signal transduction cell differentiation central neural pathway /tract cholesterol developmental neurobiology embryo /fetus protein gene expression genetic regulation genetic regulatory element genetically modified animals immunocytochemistry laboratory mouse nerve /myelin protein neural plate /tube neurogenesis neurogenetics posttranslational modifications protein localization protein structure function reporter genes retinoate tissue /cell culture transcription factor vertebrate embryology western blottings
中文摘要
描述(由申请人提供):在本申请中,我们的目标是定义
胆固醇和Gli3在Shh活性和信号转导中的作用
在神经管里。Shh基因编码的分泌分子已经被
被证明在脊椎动物中枢神经的发育中起着关键作用
系统。Shh的活性被认为是受胆固醇控制的
在其N端共价连接,但这种脂质的确切功能
对神经元构型的修饰还不清楚。对Shh的回应是
已知依赖于Gli家族的转录因子,但详细的
机制还不清楚。我们的基因研究表明,在缺乏
在Shh中,Gli3以剂量依赖的方式抑制腹侧神经细胞的命运。
而Shh突变胚胎在几类中间神经元中表现出减少
完全没有运动神经元的情况下,这些细胞类型在
Shh/Gli3双突变体。这些观察表明,Shh被要求
拮抗Gli3,否则会抑制腹侧神经细胞的命运。这个
Shh/Gli3双突变体产生运动神经元和中间神经元的能力
强烈表明,除了Shh,S还参与了
这些腹侧神经元的产生。我们的建议旨在测试
以下假设:(L)胆固醇修饰的Shh对正常是必不可少的
中枢神经系统腹侧神经元细胞类型的分化。(2)Shh中和作用
Gli3抑制因子在腹侧神经前体细胞生成中的作用
通过控制Gli3的加工。(3)Gli3抑制因子干扰RA信号转导
在腹侧神经管里。为了实现这些目标,我们产生了五个
具有内源性Shh基因座改变的强大嵌合小鼠,旨在表达
依赖Cre重组酶中不含胆固醇加合物(Shh-N)的ShH
举止。Shh-N的细胞分布和神经元构型活性
将在生殖系传播时确定。我们还将确定Gli3
使用我们产生的N-末端Gli3特异性抗体和
分析具有功能丧失和功能获得的突变体的基因表达模式
在嘘信号里。我们还将利用Rare-LacZ报告小鼠,RAR拮抗剂
和神经外植体,以确定Gli3抑制物与RA的关系。
这些研究将加深我们对Shh在神经管中功能的理解,
为神经管相关畸形的病因提供了新的线索。
人类。
英文摘要
DESCRIPTION (provided by applicant): In this application, our goal is to define
the role of cholesterol and Gli3 in the control of Shh activity and signaling
in the neural tube. The secreted molecule encoded by the Shh gene has been
shown to play a key role in the development of the vertebrate central nervous
system. The activity of Shh is thought to be controlled by cholesterol
covalently linked at its N-terminus, but the precise function of this lipid
modification in neuronal patterning is not understood. The response to Shh is
known to depend on transcription factors of the Gli family, but the detailed
mechanism is not understood. Our genetic studies indicated that in the absence
of Shh, Gli3 represses ventral neuronal cell fates in a dose-dependent manner.
Whereas Shh mutant embryos show reduction in several classes of interneurons
and a complete absence of motor neurons, these cell types are rescued in
Shh/Gli3 double mutants. These observations indicate that Shh is required to
antagonize Gli3, which would otherwise repress ventral neuronal cell fates. The
ability of Shh/Gli3 double mutants to generate motor neurons and interneurons
strongly suggests that factor(s), in addition to Shh, is involved in the
generation of these ventral neurons. Our proposal is aimed at testing the
following hypotheses:(l) Cholesterol-modified Shh is essential for normal
differentiation of ventral neuronal cell types in the CNS. (2) Shh counteracts
Gli3 repressor function in the generation of ventral neuronal progenitor cells
by controlling Gli3 processing. (3) Gli3 repressor interferes with RA signaling
in the ventral neural tube. To accomplish these aims, we have generated five
strong chimeric mice with an altered endogenous Shh locus, designed to express
Shh without the cholesterol adduct (Shh-N) in a Cre recombinase-dependent
manner. The cellular distribution and neuronal patterning activities of Shh-N
will be determined upon germline transmission. We will also determine Gli3
processing using N-terminal Gli3-specific antibody that we generated and
analyze patterns of gene expression in mutants with loss-and gain-of-function
in Shh signaling. We will also utilize RARE-lacZ reporter mice, RAR antagonist
and neural explants to define the relationship between Gli3 repressor and RA.
These studies will deepen our understanding of Shh function in the neural tube,
and shed new light on the etiology of neural tube-associated anomalies in
humans.
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