MRI: Acquisition of an Upright Laser Scanning Confocal Microscope to Advance Research and Education at the University of California, Merced
MRI: Acquisition of an Upright Laser Scanning Confocal Microscope to Advance Research and Education at the University of California, Merced
批准号:
1625733
负责人:
Anand Subramaniam
金额:
$31.18万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-01 至 2020-08-31
中文摘要
凭借材料研究部(DMR)主要研究仪器(MRI)计划的这一奖项,加州大学默塞德分校将获得最先进的共聚焦激光扫描显微镜,作为生物材料研究和教学的主要工具。在共焦显微镜中,拒绝面外光的针孔允许以比通过传统光学显微镜可实现的更高的分辨率成像。这种光学切片允许从光学切片重建三维图像。 该显微镜将极大地增强加州大学默塞德现有的材料研究设施,特别是允许研究:a)细胞如何控制其膜中脂质结构域的大小,B)我们如何设计合成细胞,c)我们如何设计和表征用于能量和药物递送的纳米组装系统,d)机械力对干细胞分化的影响,e)亲水性聚合物对根际流体传输的影响,f)生物膜的短期和长期动力学,以及g)真菌和细菌之间的合作如何在混合生物膜中发生。研究活动和研究培训的显微镜,大量的学生来自不同背景的加州大学默塞德,少数民族服务机构,从这个奖项中受益。此外,教师对仪器的培训将增加大学前接触周围社区的科学和工程。该显微镜将允许PI和高级人员进行需要多模式成像能力的研究,例如高分辨率多通道(最多6个同时通道)荧光显微镜,激光反射显微镜,明场显微镜,光谱成像和高信噪比成像的组合。 该检测器具有线性扫描和上级信噪比,从而允许对暗淡和轻标记的样品进行定量成像。直立配置允许使用长工作距离物镜对表面上的半导体芯片、纳米膜和纳米颗粒进行反射成像。直立的配置也将允许研究的现象,其中方向性是重要的,如空气-水界面上的生物膜薄膜的形成,以及重力和毛细作用驱动的液体通过根际的运输。 该仪器还将允许学生接受关于使用和应用最先进的显微镜技术的实践培训;对于UC默塞德尤其重要,该大学是全国研究型大学第一代大学生入学率最高的大学之一。这一工具创造的教育机会将进一步通过投资机构资源,从代表性不足的社会和经济群体中招募和留住学生,促进大学对多样性的承诺。
英文摘要
With this award from the Division of Materials Research (DMR) Major Research Instrumentation (MRI) Program, the University of California, Merced will acquire a state-of-the-art confocal laser-scanning microscope to serve as primary tool for biomaterials-based research and teaching. In a confocal microscope, a pinhole that rejects out-of-plane light allows imaging at a higher resolution than achievable through conventional optical microscopy. This optical sectioning allows reconstruction of three-dimensional images from optical slices. This microscope will dramatically augment the materials research facilities existing at UC Merced, specifically allowing research into: a) how do cells control the size of lipid domains in their membranes, b) how do we engineer synthetic cells, c) how do we design and characterize nano-assembled systems for energy and drug delivery, d) what are the effects of mechanical forces on the differentiation of stem cells, e) what are the effects of hydrophilic polymers on fluid transport in the rhizosphere, f) what are the short- and long-term dynamics of biofilms, and g) how do cooperation between fungi and bacteria occur in mixed biofilms. Research activities and research training on the microscope, of a large number of students from diverse backgrounds at UC Merced, a minority serving institution, benefits from this award. Furthermore, teacher training on the instrument will increase pre-college exposure to science and engineering in the surrounding communities. The microscope will allow the PIs and senior personnel to conduct research requiring multi-modal imaging capabilities, such as a combination of high-resolution multichannel (up to six simultaneous channels) fluorescence microscopy, laser reflectance microscopy, bright-field microscopy, spectroscopic imaging, and high-signal-to-noise ratio imaging. The detectors feature linear scanning and superior signal-to-noise ratios thus allowing quantitative imaging of dim and lightly-labeled samples. The upright configuration allows reflective imaging of semiconductor chips, nanofilms, and nanoparticles on surfaces using long-working distance objectives. The upright configuration will also allow studies of phenomena where directionality is important, such as the formation of biofilm pellicles on air-water interfaces, and gravity and capillarity driven transport of liquids through the rhizosphere. This instrument will also allow students to receive hands on-training on the use and application of state-of-the-art microscopy techniques; particularly important for UC Merced, which has one of the nation's highest enrollment of first generation college students in a research university. The educational opportunities created by this instrument will further the university's commitment to diversity by investing institutional resources to recruit and retain students from underrepresented social and economic groups.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
Nanoscale Curvature Promotes High Yield Spontaneous Formation of Cell-Mimetic Giant Vesicles on Nanocellulose Paper
纳米级曲率促进纳米纤维素纸上仿细胞巨型囊泡的高产率自发形成
DOI:
10.1021/acsami.0c14485
发表时间:
2020
期刊:
ACS Applied Materials & Interfaces
影响因子:
9.5
作者:
[Pazzi, Joseph, Subramaniam, Anand Bala]
通讯作者:
Subramaniam, Anand Bala
CAREER: Understanding the fundamental mechanisms of vesiculation and solute encapsulation of smectic phospholipid films on cellulose
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批准号:1848573
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项目类别:Continuing Grant
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资助金额:$50.04万
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财政年份:2019
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负责人:Anand Subramaniam
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依托单位:
UNS: Density-based Biosensors
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批准号:1512686
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项目类别:Standard Grant
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资助金额:$32.68万
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财政年份:2015
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负责人:Anand Subramaniam
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依托单位:
海外基金