New Toolkit for Imaging and Controlling Early Ciliogenesis
New Toolkit for Imaging and Controlling Early Ciliogenesis
批准号:
8621325
负责人:
Derek K. Toomre
金额:
$24.98万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-07-01 至 2016-06-30
关键词:
AcuteAffectBiological AssayBlindnessBrainBreastCell ShapeCell surfaceCellsChemicalsCiliaDataDiabetes MellitusDiseaseEnvironmentFoundationsFunctional disorderFutureGeometryGoalsHairHeart DiseasesHereditary DiseaseHumanHuman GeneticsHuntington DiseaseImageImageryJoubert syndromeKidney DiseasesLifeLightLinkLocationMalignant NeoplasmsMammalian CellMechanicsMembraneMembrane Protein TrafficMetabolismMethodologyMethodsMicroscopeMolecularObesityOdorsOpticsOrganellesPancreasPatternPharmaceutical PreparationsPhosphatidylinositolsPhosphoric Monoester HydrolasesPhysiologicalPolycystic Kidney DiseasesPositioning AttributeProcessResolutionRetinal DegenerationRoleShapesStagingStimulusStructureSurfaceSyndromeTestingTherapeuticTimeTotal Internal Reflection FluorescentTranslatingbaseciliopathycilium biogenesiscongenital heart disorderdeafnessdesignextracellularhuman diseaseinnovationinterestnoveloptogeneticspublic health relevancescreeningsensorsoundtooltraffickingtumorigenesis
中文摘要
描述(由申请人提供):该项目的主要目标是开发新的使能方法来可视化和控制初级纤毛形成的早期阶段。我们的长期目标是开发基于定量图像的高内容筛选,用于治疗原发性纤毛功能障碍引起的人类疾病。大多数细胞具有初级纤毛,这是一种从表面延伸的单个细长突起的细胞器。在过去的十年中,初级纤毛被认为是一种重要的细胞天线,对光,声音,气味,化学物质和机械刺激做出反应。不能正确地形成或维持初级纤毛导致许多人类疾病,包括多囊肾病、视网膜变性、各种人类综合征(例如Bardet-Biedl、Meckel、Alstrom、MORM和Joubert),并且最近与几种侵袭性癌症相关。目前研究纤毛发生的方法时空分辨率差,对纤毛的形成过程控制不足。因此,标准方法并不稳健,并且如我们的初步数据所示,无法区分纤毛形成的极其重要的阶段-最明显的是纤毛是在细胞内还是在表面,因为纤毛的生长是在细胞内的。
纤毛的位置将极大地影响其感知细胞外环境的能力。事实上,对纤毛发生的动态过程及其通过囊泡运输的重塑的理解仍然是初步的,尽管初级纤毛在大多数哺乳动物细胞中的重要性和发生,但实际上这些关键步骤没有可视化。这些主要障碍阻碍了理解纤毛发生的细胞和分子机制以及识别影响纤毛发生的药物的能力。为了克服这一长期存在的障碍,我们将利用我们在两个高度创新的特定目标中的膜交通成像方面的专业知识。首先,我们将开发一种新的基于图像的早期纤毛发生的屏幕使用新的探针兼容超分辨率成像。其次,我们将实施图案化的微阵列和光遗传学方法来控制纤毛发生的位置和时间。我们将验证的方法,并将其应用于测试的外囊和磷酸肌醇的初级纤毛的出现中的作用的假设。后者与疾病高度相关,因为MORM和Joubert综合征是由于磷酸肌醇5-磷酸酶的功能障碍,并且光遗传学将能够直接测试磷酸肌醇代谢如何影响纤毛发生。该工具包将
建立一个新的基础,研究早期纤毛发生,并帮助建立一个阶段,为未来筛选治疗睫状体疾病。
英文摘要
DESCRIPTION (provided by applicant): The major objective of this project is to develop new enabling methods to visualize and control early stages of primary cilia formation. Our long-term goal is to develop quantitative image-based high content screens for therapeutics to human diseases resulting from primary cilium dysfunction. Most cells possess a primary cilium, an organelle that extends as a single long slender protrusion from the surface. Long ignored, in the last decade the primary cilium has been recognized as an essential cellular antenna that responds to light, sound, odors, chemicals and mechanical stimuli. The inability to correctly form or maintain a primary cilium causes numerous human diseases including polycystic kidney disease, retinal degeneration, a gamut of human syndromes (e.g. Bardet- Biedl, Meckel, Alstrom, MORM and Joubert) and has recently been correlated with several aggressive cancers. Current methods to study ciliogenesis have poor spatial-temporal resolution and afford little control over the process of cilia formation. Per consequence, standard methods are not robust and, as shown in our preliminary data, fail to discriminate between extremely important stages of cilia formation - most notably if the cilium is inside the cell or on the surface, as the
location of the cilia will greatly affect its ability to sense the extracellular environment. Indee, the understanding of the dynamic process of ciliogenesis and its remodeling by vesicular traffic is still rudimentary and despite the importance and occurrence of primary cilia in most mammalian cells there is practically no visualization of these key steps. These major roadblocks hamper the ability to understand the cellular and molecular mechanisms of ciliogenesis and identify drugs that influence it. To overcome this longstanding barrier we will leverage our expertise in imaging of membrane traffic in two highly innovative Specific Aims. Firstly, we will develop a new image-based screen of early ciliogenesis using novel probes compatible with super-resolution imaging. Secondly, we will implement patterned microarrays and optogenetics approaches to control where and when ciliogenesis occurs. We will validate the methods and apply them to test hypotheses about roles of the exocyst and phosphoinositides in the emergence of the primary cilium. The latter is highly relevant to disease as MORM and Joubert syndromes are due to dysfunction of a phosphoinositides 5-phosphatase and optogenetics will enable directly testing of how phosphoinositides metabolism affects ciliogenesis. This toolkit will
establish a new foundation to study early ciliogenesis and help set the stage for future screening of therapeutics to ciliary diseases.
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会议论文
Dynamics of exocyst recruitment and assembly
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批准号:8725193
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项目类别:
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资助金额:$34.97万
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财政年份:2013
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负责人:Derek K. Toomre
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依托单位:
Dynamics of exocyst recruitment and assembly
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批准号:8502796
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项目类别:
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资助金额:$34.97万
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财政年份:2013
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负责人:Derek K. Toomre
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依托单位:
Dynamics of exocyst recruitment and assembly
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批准号:8911333
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项目类别:
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资助金额:$34.97万
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财政年份:2013
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负责人:Derek K. Toomre
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依托单位:
Super-Resolution Structured Illumination Microscope (SIM)
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批准号:7793345
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项目类别:
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资助金额:$49.68万
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财政年份:2010
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负责人:Derek K. Toomre
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依托单位:
Novel TIRF microscopy analyzing trafficking & signaling at the cell cortex
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批准号:7892704
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项目类别:
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资助金额:$5.05万
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财政年份:2009
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负责人:Derek K. Toomre
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依托单位:
Novel TIRF microscopy analyzing trafficking & signaling at the cell cortex
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批准号:7432044
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项目类别:
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资助金额:$248.13万
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财政年份:2007
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负责人:Derek K. Toomre
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依托单位:
海外基金