Analysis of Hair Cell Regeneration in Zebrafish
Analysis of Hair Cell Regeneration in Zebrafish
批准号:
7933796
负责人:
Tatjana Piotrowski
金额:
$17.23万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-17 至 2011-05-31
关键词:
AdultAgeAgingAmphibiaAntibiotic TherapyAutomobile DrivingBehaviorBindingBioinformaticsBiological ModelsBirdsCandidate Disease GeneCell DeathCell LineageCell MaintenanceCell ProliferationCellsCochleaComplexCoupledDevelopmentDissectionEarFishesFoundationsGene Expression ProfileGenesGeneticGoalsHair CellsHomeostasisHumanInner Supporting CellLaboratoriesLabyrinthLarvaLife Cycle StagesLocationMammalsMethodsMicroarray AnalysisModelingMolecularMusNatural regenerationNoiseOrganPathway interactionsPlatyhelminthsPopulation DynamicsProcessPromoter RegionsRegulationSamplingSensorySensory HairSignal TransductionStagingStem cellsSupporting CellSystemTechniquesTestingTimeTissuesVertebratesZebrafishbasecell typecohortcostdeafnessdisabilitygene functiongene repressionhair cell regenerationinsightlateral lineneuromastnovelpublic health relevanceresearch studytherapeutic developmenttooltranscription factor
中文摘要
描述(由申请人提供):耳聋的一个突出原因是由于年龄,噪音或抗生素治疗引起的毛细胞损失。与哺乳动物的毛细胞不同,鱼类、鸟类和两栖动物的毛细胞在毛细胞死亡后不断翻转和再生。目的是利用斑马鱼的侧线来定义和表征毛细胞再生过程中发生的分子和细胞相互作用,其长期目标是激活哺乳动物中的这些途径。为了揭示驱动毛细胞再生的机制,选择斑马鱼侧线作为实验范例,因为1)斑马鱼支持细胞再生毛细胞的能力; 2)侧线毛细胞与内耳毛细胞之间的功能和形态相似性; 3)其在整个发育过程中可直接观察和操作;和4)快速和经济有效地分离参与毛细胞再生的特定细胞类型的能力,在经典模型系统中难以进行的实验,例如,老鼠和小鸡这两个实验室正在采取以下策略,以确定毛细胞死亡后在支持细胞中转录的最早基因。首先,将确定正常和再生神经瘤中干细胞和周围小生境细胞的位置和群体动态,这对于确定干细胞维持和激活所需的信号至关重要。其次,纯化的支持细胞的转录组将使用微阵列分析来定义。为了系统地分析所有候选基因,一种新的和强大的生物信息学方法将被用来识别由相同的转录因子共调控的基因。确定这些重要的转录因子将是至关重要的,我们了解再生是如何在低等脊椎动物中触发。结合起来,这两种方法将发现关键的毛细胞再生基因,并为系统地剖析这一复杂问题奠定基础,为开发哺乳动物毛细胞再生疗法提供信息。
公共卫生相关性:干细胞对成人组织的稳态和再生至关重要。斑马鱼侧线是一个很好的模型,以阐明控制干细胞和感觉毛细胞再生的遗传途径。我们的研究结果将有助于鉴定哺乳动物耳中的干细胞,并有助于开发哺乳动物毛细胞再生的治疗策略。
英文摘要
DESCRIPTION (provided by applicant): A prominent cause of deafness is loss of hair cells due to age, noise or antibiotic treatments. In contrast to mammalian hair cells, fish, bird and amphibian hair cells are constantly turning over and regenerate following hair cell death. The aim is to take advantage of the lateral line of zebrafish to define and characterize the molecular and cellular interactions occurring during hair cell regeneration with the long-term goal of activating these pathways in mammals. To uncover the mechanisms driving hair cell regeneration, the lateral line of the zebrafish was chosen as an experimental paradigm because of 1) the ability of zebrafish support cells to regenerate hair cells; 2) the functional and morphological similarity between the lateral line hair cells and the hair cells of the inner ear; 3) its accessibility to direct observation and manipulation throughout development; and 4) the ability to rapidly and cost-effectively isolate specific cell types involved in hair cell regeneration, experiments that are difficult to perform in the classical model systems, e.g., mouse and chick. The two laboratories are pursuing the following strategy to identify the earliest genes that are transcribed in support cells subsequent to hair cell death. First, the location and population dynamics of stem cells and surrounding niche cells in normal and regenerating neuromasts will be determined, which is essential for determining the signals required for stem cell maintenance and activation. Secondly, the transcriptome of purified support cells will be defined using microarray analyses. To systematically analyze all candidate genes identified, a novel and powerful bioinformatics approach will be employed to identify genes co-regulated by the same transcription factors. Identifying these important transcription factors will be crucial for our understanding of how regeneration is triggered in lower vertebrates. Combined, these two approaches will discover key hair cell regeneration genes and set the stage for a systematic dissection of this complex problem to inform the development of therapeutics to regenerate hair cells in mammals.
PUBLIC HEALTH RELEVANCE: Stem cells are crucial for adult tissue homeostasis and regeneration. The zebrafish lateral line is an excellent model to elucidate the genetic pathways controlling stem cells and sensory hair cell regeneration. Results from our studies will aid in the identification of stem cells in the mammalian ear and in the development of therapeutic strategies to regenerate hair cells in mammals.
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Zebrafish sensory hair cell regeneration
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批准号:9889942
-
项目类别:
-
资助金额:$35.06万
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财政年份:2017
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负责人:Tatjana Piotrowski
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依托单位:
Zebrafish sensory hair cell regeneration
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批准号:9309976
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项目类别:
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资助金额:$35.06万
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财政年份:2017
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负责人:Tatjana Piotrowski
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依托单位:
Analysis of Hair Cell Regeneration in Zebrafish
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批准号:7827478
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项目类别:
-
资助金额:$42.73万
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财政年份:2009
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负责人:Tatjana Piotrowski
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依托单位:
Analysis of Hair Cell Regeneration in Zebrafish
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批准号:8278079
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项目类别:
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资助金额:$23.85万
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财政年份:2009
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负责人:Tatjana Piotrowski
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依托单位:
Zebrafish Development and Genetics Conference
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批准号:10469107
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项目类别:
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资助金额:$1.38万
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财政年份:2000
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负责人:Tatjana Piotrowski
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依托单位:
International Zebrafish Conference
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批准号:10682995
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项目类别:
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资助金额:$1.7万
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财政年份:2000
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负责人:Tatjana Piotrowski
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依托单位:
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