Mechanisms of Heat Shock Protein Regulation and Function in Muscles of a Model Teleost
Mechanisms of Heat Shock Protein Regulation and Function in Muscles of a Model Teleost
批准号:
1457368
负责人:
Eric Shelden
金额:
$36.83万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-08-15 至 2021-07-31
中文摘要
肌肉细胞表达许多小的应激反应蛋白,称为小的热休克蛋白,已知其对细胞存活、生长和修复至关重要。然而,这些蛋白质如何完成它们的任务尚不清楚。拟议的研究将检查这些蛋白质在肌肉细胞中对受伤、运动和冬眠期间发生的低氧条件的反应的调节和功能。这项工作将使用斑马鱼幼虫作为模型系统进行,因为它们可以用于研究活组织中荧光标记蛋白质的组织和功能。从这些研究中获得的数据有望为肌肉细胞如何应对压力的机制提供新的见解。这些见解对于理解或修改各种生物体中肌肉性能、工程、适应和修复的限制具有意义。除了产生新的信息外,该项目还将通过促进教学、培训和学习以及扩大代表性不足的群体对科学的参与来造福社会。将通过开展斑马鱼幼体的实践研究项目,发展和加强与地区高中的外联教育讲习班。学生的概念理解将通过使用前和讲习班后的评价进行评估。还将为高中生创造机会,让他们参观华盛顿州立大学和邻近的爱达荷州大学的活跃研究人员的实验室并在那里工作。暑期实习将每年提供给地区高中科学教师,他们将学习适用于K-12教室环境的斑马鱼饲养和斑马鱼胚胎发育分析方法。研究的总体目标是测试热休克诱导转录因子HSF 1调节小热休克蛋白表达的假设,其在缺氧肌肉细胞中以磷酸化依赖性方式与细胞骨架丝动态结合以保持细胞骨架完整性和肌肉功能。该提案包括三个具体目标。首先,将评估HSF 1在调节响应于缺氧的肌肉特异性小热休克蛋白表达中的作用。为了实现这一点,转录因子HSF 1的功能将被操纵和缺氧诱导的小热休克蛋白表达的影响进行了分析。还将进行小的热休克蛋白启动子的诱变以鉴定缺氧诱导表达所需的基序。其次,在缺氧肌肉细胞中,将分析小热休克蛋白与细胞骨架的磷酸化依赖性相互作用动力学。将进行丝氨酸/苏氨酸残基的诱变,并确定对缺氧诱导磷酸化的影响。将在对照和缺氧肌肉中检查野生型和磷酸化位点突变的热休克蛋白与细胞骨架和彼此之间的动态相互作用。最后,小的热休克蛋白的表达将在肌肉中改变,和细胞结构和功能的肌肉细胞响应缺氧将进行评估。为了实现这一目标,将创建骨骼肌中过表达和低表达小热休克蛋白的斑马鱼品系。将在对照条件下和暴露于低氧水平后,对幼虫和成虫的肌细胞结构和功能进行测定。
英文摘要
Muscle cells express a number of small stress responsive proteins called small heat shock proteins that are known to be critical to cell survival, growth, and repair. However, how these proteins accomplish their tasks is not understood. Proposed studies will examine the regulation and function of these proteins in muscle cells responding to low oxygen conditions that occur during injury, exercise and hibernation. The work will be conducted using zebrafish larvae as a model system because they can be used to study the organization and function of fluorescently labeled proteins in living tissues. Data resulting from these studies are expected to provide novel insight into the mechanisms underlying how muscle cells respond to stress. Such insights have implications for understanding or modifying the limits of muscle performance, engineering, adaptation and repair in a wide variety of organisms. In addition to the new information generated, the project will also benefit society by promoting teaching, training and learning, and by broadening the participation of underrepresented groups in science. Outreach educational workshops with area high schools will be developed and strengthened through conducting hands-on research projects with zebrafish larvae. Student conceptual understanding will be assessed through the use of pre-and post-workshop evaluations. Opportunities will also be created for high school students to visit and work in laboratories of active investigators at Washington State University and the neighboring University of Idaho. A summer internship will be provided annually to area high school science teachers who will learn methods for zebrafish husbandry and analysis of zebrafish embryonic development applicable to a K-12 classroom environment.The overall goal of the studies is to test the hypothesis that the heat shock inducible transcription factor, HSF1, regulates expression of small heat shock proteins, which dynamically associate with cytoskeletal filaments in a phosphorylation-dependent manner in hypoxic muscle cells to preserve cytoskeletal integrity and muscle function. The proposal includes three specific aims. First the role of HSF1 in regulating muscle specific small heat shock protein expression in response to hypoxia will be assessed. To accomplish this, the function of transcription factor HSF1 will be manipulated and effects on hypoxia inducible small heat shock protein expression analyzed. Mutagenesis of small heat shock protein promoters will also be conducted to identify motifs required for hypoxia-induced expression. Second, phosphorylation-dependent interaction kinetics of small heat shock proteins with the cytoskeleton will be analyzed in hypoxic muscle cells. Mutagenesis of serine/threonine residues will be conducted and effects on hypoxia inducible phosphorylation established. Dynamic interactions of wild-type and phosphorylation site mutant heat shock proteins with the cytoskeleton and each other will be examined in control and hypoxic muscles. Finally, small heat shock protein expression will be altered in muscles, and cytoarchitecture and function of muscle cells responding to hypoxia will be assessed. To accomplish this aim, zebrafish lines that over-, and under-express small heat shock proteins in skeletal muscle will be created. Muscle cell architecture and function will be assayed in larvae and adults under control conditions and after exposure to low oxygen levels.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
A Virtual Laboratory on Cell Division Using a Publicly-Available Image Database
使用公开图像数据库的细胞分裂虚拟实验室
DOI:
10.24918/cs.2019.15
发表时间:
2019
期刊:
CourseSource
影响因子:
--
作者:
[Shelden, Eric A., Offerdahl, Erika G., Johnson, Graham T.]
通讯作者:
Johnson, Graham T.
Regulation and Function of Hsp27 in Zebrafish
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批准号:0818993
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项目类别:Continuing Grant
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资助金额:$33.38万
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财政年份:2008
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负责人:Eric Shelden
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依托单位:
国内基金
海外基金
环路热管(Loop Heat Pipe)两相传热机理的理论与实验研究
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批准号:50676006
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项目类别:面上项目
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资助金额:30.0万元
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批准年份:2006
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负责人:林贵平
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依托单位: