A broadly accessible facility microscope to probe nanoscale cellular dynamics by combined live cell super-resolution microscopy and photomanipulation
A broadly accessible facility microscope to probe nanoscale cellular dynamics by combined live cell super-resolution microscopy and photomanipulation
批准号:
BB/W020300/1
负责人:
Seamus Holden
金额:
$93.27万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
已结题
起止时间:
2022 至 --
中文摘要
显微镜是现代生物学研究的基石,因为它可以在亚细胞水平上可视化生命的动态。显微镜技术在生物学的各个领域都取得了突破,但它一直受到衍射极限的限制,这是一个250纳米分辨率的障碍,直到最近才被认为是不可逾越的。在过去的几十年里,超分辨率显微镜技术已经发展起来,使我们能够看到远远超出衍射极限的细胞及其内部运作。超分辨率显微镜可以在纳米尺度上观察细胞组织和动力学,并揭示了细菌、植物和动物中生物学上至关重要的、以前看不见的细胞组织。在华威大学,我们拥有世界一流的研究人员,研究对我们未来的经济和健康至关重要的领域,如抗生素耐药性、食品安全和老龄化。由于细胞是高度动态的,直接在活细胞中进行高速超分辨率测量的能力是前沿细胞生物学研究的重要工具。华威大学目前缺乏这种关键能力。我们已经定义了几个互补的活细胞超分辨率显微镜功能,这将增强华威大学大量研究小组的研究能力:-以100纳米或更高分辨率成像的能力,因为许多细胞成分,如细胞骨架元件或细胞器,都是在这个尺度上组织的。-能够高速成像以捕捉动态过程,因为细胞中的分子和细胞器的运动可以非常快。-在低激光照射下成像细胞的能力-大多数细胞具有高度光敏性。显微镜实验中过量的光剂量会损害细胞——就像人类晒伤一样——并且由于激活不必要的细胞反应而使实验混乱。-在受控区域选择性地对荧光蛋白进行光电操纵的能力。细胞是一个密集、拥挤的环境,阻碍了追踪特定蛋白质或细胞结构的能力。光电操纵技术使我们能够在密集的细胞环境中通过高亮或光漂白来分离特定的蛋白质。然后,在密集区域内突出显示的蛋白质的运动可以随着时间的推移被揭示和跟踪。我们请求资金购买具有所有这些功能的蔡司晶格结构照明显微镜(SIM^2)系统。我们将在华威大学生命科学学院成像设施建立这台仪器。我们将为广泛的本地用户群提供用户友好的访问,并为全国用户提供对该系统的访问。所提出的显微镜将解决我们目前在活细胞超分辨率显微镜方面的能力差距,并为我们提供联合晶格sim成像和光电操纵的国内独特能力。该系统还将增强英国的生物科学研究能力,因为我们将提供和促进国家获取该仪器。
英文摘要
Microscopy is a cornerstone of modern biological research because it enables visualisation of the dynamics of life at the subcellular level. Microscopy has led to breakthroughs in every area of biology, but it has traditionally been constrained by the diffraction limit, a 250 nm resolution barrier that was until recently thought insurmountable. Over the past few decades, super-resolution microscopy techniques have been developed that allow us to visualise cells and their inner workings far beyond the diffraction limit. Super-resolution microscopes allow observation of cellular organization and dynamics at the nanometre scale, and have revealed biologically critical, previously invisible, cellular organization in bacteria, plants and animals. At the University of Warwick, we have world class researchers across the institution investigating areas pivotal for the future of our economy and health, such as antibiotic resistance, food security and aging. As cells are highly dynamic, the ability to perform high speed super-resolution measurements directly in live cells is an essential tool in cutting edge cell biology research. This critical capability is currently lacking at the University of Warwick. We have defined several complementary live cell super-resolution microscopy capabilities which would enhance the research capabilities of a large number of groups at University of Warwick: - The ability to image at a resolution of 100 nm or better, because many cellular components, such as cytoskeletal elements or cellular organelles, are organized on this scale. - The ability to image at high speed to capture dynamic processes, as the movements of molecules and organelles in the cell can be extremely fast. - The ability to image cells with low laser illumination - most cells are highly photosensitive. Excessive light dose in microscopy experiments damages cells - just like sunburn in humans - and confounds experiments due to activation of unwanted cellular responses. - The ability to selectively photomanipulate fluorescent proteins in a controlled region. The cell is a dense, crowded environment which hampers the ability to track specific proteins or cellular structures. Photomanipulation techniques enable us to isolate specific proteins within the dense cellular environment by either highlighting them or photobleaching their surroundings. The movement of highlighted proteins within dense regions can then be revealed and followed over time. We request funds to purchase a Zeiss Lattice Structured Illumination Microscope (SIM^2) system with all these capabilities. We will establish this instrument at the University of Warwick School of Life Sciences Imaging Facility. We will provide user-friendly access to a wide local user base, as well as providing national access to the system. The proposed microscope will address our current capabilities gap in live cell super-resolution microscopy and give us nationally unique capabilities for joint lattice-SIM imaging and photomanipulation. The system will also enhance UK bioscience research capabilities as we will provide and promote national access to this instrument.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1038/s41564-024-01650-9
发表时间:
2024-03-13
期刊:
NATURE MICROBIOLOGY
影响因子:
28.3
作者:
[Whitley,Kevin D., Grimshaw,James, Holden,Seamus]
通讯作者:
Holden,Seamus
EVALUATING ELONGASOME TUG-OF-WAR AS A KEY REGULATOR OF BACTERIAL CELL WALL SYNTHESIS
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批准号:BB/X001482/1
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项目类别:Research Grant
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资助金额:$47.88万
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财政年份:2023
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负责人:Seamus Holden
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依托单位:
A single cell, single molecule microscopy platform for antibiotics research
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批准号:BB/T017570/1
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项目类别:Research Grant
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资助金额:$51.34万
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财政年份:2020
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负责人:Seamus Holden
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依托单位:
海外基金