ALTERED MECHANICAL LOADS AND SKELETAL MUSCLE PHENOTYPE
ALTERED MECHANICAL LOADS AND SKELETAL MUSCLE PHENOTYPE
批准号:
6649868
负责人:
RICHARD W TSIKA
金额:
$34.08万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-08-01 至 2005-07-31
关键词:
atrophy chloramphenicol acetyltransferase complementary DNA expression cloning gene induction /repression genetically modified animals laboratory mouse laboratory rat mechanical pressure muscle function myosins northern blottings phenotype polymerase chain reaction site directed mutagenesis striated muscles transcription factor
中文摘要
肌肉生物学中一个主要的突出问题涉及确定机械负荷变化导致肌肉纤维表型变化的分子机制。肌球蛋白重链(MyHC)是骨骼肌纤维表型和功能的典型标志,因为它是骨骼肌纤维最大空载缩短速度(Vmax)的主要决定因素。通过开发机械负荷降低的小鼠模型[后肢非负重(NWB)]来研究β - amyhc基因的转录调控,我们之前在体内发现了第一个NWB响应启动子区域(-450至-294)。我们还发现,NWB区域含有一个负元素(-332至-311,称为β - re -s),该负元素结合两种不同的蛋白质,仅在NWB-比罗鱼核提取物中发现。因此,本提案的主要重点是确定在NWB条件下转录抑制betaMyHC基因表达的核因子,并测试它们在纤维特异性表达(FSE)中的可能作用。在精细水平上提出的实验包括:1)利用表达克隆分离编码与β - re - s结合的核转录因子的cdna。Northern分析将确定核因子的发育、组织和FSE模式。总体水平涉及转基因小鼠的产生和分析:1)携带PCR位点定向突变的betanre - s元件的转基因,以确定其作为NWB-E的真实性。转基因启动子的活性将通过测定nwb -比目鱼肌提取物中氯霉素乙酰转移酶(CAT)的特异性活性和2)过表达编码特异性针对横纹肌的核因子的cDNA的转基因来测定。RNA和蛋白质分析将评估cDNA过表达对整个横纹肌表型的影响,这将与整个肌肉和单纤维功能分析相关。本实验将鉴定和测试参与NWB诱导的betaMyHC基因表达转录抑制及其可能的FSE的核因子和betaMyHC顺式元件的体内功能。体内核因子的过表达将确定其在调节其他肌肉基因、肌肉萎缩和发育中的潜在作用。这些实验有望确定潜在的DNA/蛋白质靶点,旨在提供对抗由疾病、太空飞行或长时间卧床休息引起的机械负荷改变引起的慢速肌肉表型和使人衰弱的姿势功能丧失的治疗措施。
英文摘要
One major outstanding question in muscle biology involves determining the molecular mechanisms by which alterations in mechanical load lead to changes in muscle fiber phenotype. A quintessential marker of myofiber phenotype and function is the myosin heavy chain (MyHC) since it is a major determinate of maximum unloaded velocity of shortening (Vmax) of skeletal muscle fibers. By developing a mouse model of decreased mechanical loading [hindlimb nonweight bearing (NWB)] to investigate transcriptional regulation of the betaMyHC gene we have previously identified in vivo the first NWB responsive promoter region (-450 to -294). We also showed that this NWB region contains a negative element (-332 to -311; termed dbetaNRE-S) that binds two different proteins identified ONLY in NWB-soleus nuclear extracts. Thus, the major focus of this proposal is to identify the nuclear factor(s) that transcriptional repress betaMyHC gene expression under NWB conditions, and to test their possible role in fiber-specific expression (FSE). Proposed experiments at the fine level involve: 1) isolating cDNAs encoding nuclear transcription factor(s) that bind the dbetaNRE-S using expression cloning. Northern analysis will determine developmental, tissue and FSE pattern of the nuclear factor(s). The gross level involves the generation and analyses of transgenic mice harboring: 1) a transgene carrying PCR site- directed mutation of the dbetaNRE-S element to determine its authenticity as an NWB-E. Transgene promoter activity will be measured by assaying for chloramphenicol acetyltransferase (CAT) specific activity in NWB-soleus muscle extract, and 2) transgenes overexpressing cDNA(s) encoding nuclear factor(s) specifically targeted to striated muscle. RNA and protein analyses will assess the impact of cDNA overexpression on whole striated muscle phenotype, which will be correlated to whole muscle and single fiber functional analysis. The proposed experiments will identify and test the in vivo function of nuclear factor(s) and betaMyHC cis-element(s) involved in NWB induced transcriptional repression of betaMyHC gene expression and possibly its FSE. In vivo overexpression of nuclear factor(s) will identify their potential roles in regulation of other muscle gene(s), muscle atrophy and development. These experiments are expected to identify potential DNA/protein targets for therapies aimed at providing counter-measures against the slow-to-fast muscle phenotype and debilitating loss of postural function induced by altered mechanical loads resulting from disease, space flight or extended bed rest.
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EXERCISE HYPERTROPHY AND CONTROL OF MYOSIN INDUCTION
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资助金额:$0.05万
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资助金额:$0.1万
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