Confocal Laser Scanning Biological Microscope Olympus Fv1000
Confocal Laser Scanning Biological Microscope Olympus Fv1000
批准号:
7595715
负责人:
SHU CHIEN
金额:
$45.95万
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:
2009-04-01 至 2010-03-31
关键词:
AddressAdhesionsArtsAtherosclerosisBiologicalBiomedical EngineeringCardiovascular systemCartilageCellsClinicalData SetDegenerative polyarthritisDiagnosisDiagnosticDiseaseEquipmentFacultyFluorescence Resonance Energy TransferFoundationsGoalsGrantHealthHeart DiseasesHypertensionImageInvestigationKnowledgeLaser Scanning Confocal MicroscopyLasersLifeMalignant NeoplasmsMicrocirculationMicroscopeMicroscopicMolecularOrganismPathogenesisPreventionProteinsRegenerative MedicineResearchResearch PersonnelResearch Project GrantsResolutionScanningSignal TransductionSignaling MoleculeStem cellsStructureSystemTechnologyTherapeuticTimeTissue EngineeringTissuesWorkbody systemdesignfluorophorefrontierinnovationinstrumentinstrumentationmeetingsmembernervous system disorderneuron developmentnovelnovel strategiesprogramspublic health relevanceresearch studystem cell biologytooltrafficking
中文摘要
描述(由申请人提供):显微技术的最新进展为可视化和量化活细胞中的分子和细胞动力学提供了强大的工具。这种新颖的微观工具是研究人员在生物工程前沿进行创新项目所必需的。在这份共享仪器资助的提案中,十位加州大学圣地亚哥分校生物工程学院的教职员工集体要求购买一台奥林巴斯FV1000共聚焦激光扫描生物显微镜系统,用于他们的15个项目的共享使用,以便用最先进的设备有效地开展他们的研究,以实现这些资助的研究目标。这15个项目的研究方向是四个重要领域:(a)分子和细胞信号,(b)干细胞生物工程,(c)组织工程和重塑,(d)系统生物工程。这些研究项目是在综合生物工程的总体主题下。因此,我们共同的科学目标是综合生物工程,共同的技术需求是激光扫描共聚焦显微镜系统。加州大学圣地亚哥分校生物工程学院目前使用的共聚焦显微镜是14年前购买的;它不仅没有功能,而且还缺乏项目pi所需要的新系统的特征,以解决他们研究计划中的关键问题并发起创新调查。在拟议的奥林巴斯FV1000系统中,对多个活细胞成像的长延时功能将最大限度地减少长时间实验的激光损伤,并且多个激光激发波长可以获取多个荧光团的大型数据集。3D结构分辨率和时间动态允许高质量成像,包括基质,细胞和组织结构的研究,以及标记分子的细胞内定位和运输。FV1000的FRET、FRAP、FLIM和TIRFM功能对于信号分子和粘附蛋白/基质相互作用的动态研究至关重要。使用这种新的share仪器进行的研究不仅将提高我们对健康生命系统结构和功能的生物工程基础的认识,而且还将为许多健康问题的诊断、治疗和预防提供新的方法,例如心脏病、高血压、动脉粥样硬化、骨关节炎、神经系统疾病和癌症。公共卫生相关性:拟议的仪器将用于研究分子和细胞动力学在几个身体系统与综合的方法。这项工作将涉及生物工程研究的前沿问题,包括再生医学、干细胞生物学、心血管动力学、微循环、软骨移植设计和神经元发育。该仪器系统使研究产生的信息成为可能,将产生关于疾病发病机制的新知识,并有助于为许多重要的临床病症开发治疗和诊断工具。
英文摘要
DESCRIPTION (provided by applicant): Recent advances in microscopic technologies provide powerful tools to visualize and quantify the molecular and cellular dynamics in living cells. Such novel microscopic tools are necessary for researchers to pursue their innovative projects at the frontier of bioengineering. In this proposal of Shared Instrumentation Grant, ten UCSD Bioengineering faculty members collectively request the purchase of an Olympus FV1000 Confocal Laser Scanning Biological Microscope System for the shared usage in their 15 projects in order to effectively carry out their research with state-of-the-art equipment to meet the research objectives in these grants. The research of the 15 projects is directed at four important fields: (a) Molecular and Cellular Signaling, (b) Stem Cells Bioengineering, (c) Tissue Engineering and Remodeling, and (d) Systems Bioengineering. These research projects are under the overarching theme of Integrative Bioengineering. Thus, our common scientific goal is integrative bioengineering, and the common technological need is the laser scanning confocal microscopy system. The current confocal microscope in UCSD Bioengineering was purchased 14 years ago; it is not only non-functional, but also lacks the features of the new system that are needed by the Project PIs to address the critical questions in their research programs and to initiate innovative investigations. In the Proposed Olympus FV1000 system, the long-time-lapse function of imaging multiple live cells will minimize laser damage for longer duration experiments and the multiple laser excitation wavelengths enable the acquisition of large data sets of multiple fluorophores. The 3D structural resolutions and temporal dynamics allow for high- quality imaging, including studies of the structures of matrices, cells, and tissues, as well as intracellular localization of marker molecules and trafficking. The FRET, FRAP, FLIM and TIRFM functions of the FV1000 are critical for dynamic studies of signaling molecules and adhesion proteins/matrix interactions. The research to be carried out with the use of this new share instrumentation will not only enhance our knowledge on the bioengineering foundation of structure and function of living systems in health, but also generate new approaches for the diagnosis, treatment and prevention of many health problems, such as cardiac diseases, hypertension, atherosclerosis, osteoarthritis, neurological diseases, and cancer. PUBLIC HEALTH RELEVANCE: The proposed instrument will be used to study the molecular and cellular dynamics in several body systems with an integrative approach. The work will address frontier problems in bioengineering research, including regenerative medicine, stem cell biology, cardiovascular dynamics, microcirculation, cartilage graft designs and neuronal development. The information generated from the research made possible by this instrument system will yield new knowledge on the pathogenesis of diseases and help to develop therapeutic and diagnostic tools for many important clinical conditions.
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