MRI: Acquisition of a Fluorescence Microscopy System for Research and Teaching at Kettering University
MRI: Acquisition of a Fluorescence Microscopy System for Research and Teaching at Kettering University
批准号:
1828246
负责人:
Ronald Kumon
金额:
$25.13万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-01 至 2023-08-31
中文摘要
该奖项是为凯特琳大学购买先进的荧光显微镜系统。该系统将能够在微观尺度上对细胞进行高分辨率的三维成像。这些能力使有潜力加强疾病治疗的分子和纳米颗粒能够相对于细胞的不同部分进行跟踪。该系统将支持研究细胞过程的跨学科研究,目标是改善癌症和其他疾病的治疗。该系统将为学生提供极好的培训机会,为他们毕业后进入研究生院或在科学领域就业做好准备。该系统还将通过大学预科项目和本科生暑期研究体验,以科学为导向接触女性和其他代表性不足的少数族裔。此外,该仪器将用于为教师提供专业发展,并通过对大学的实地考察和互联网远程显微镜演示,加强弗林特及其周边地区服务不足的学生的科学教育。该仪器将包括一个带有荧光元件和光源的倒置显微镜、一个电子倍增器CCD相机和一个共聚焦激光扫描系统,所有这些都对分子和纳米颗粒的定位和传输研究至关重要。第一个项目将研究超声介导的荧光剂在微泡存在的情况下向细胞传递的机制,从而潜在地实现对药物传递的更好的非侵入性时空控制。第二个项目将研究真核细胞在荧光染料运动过程中的对称性破坏机制,从而有助于更好地理解转移。第三个项目将用磁学和超声方法研究荧光磁性纳米颗粒在癌细胞和球体中的摄取和分布。这些磁性纳米颗粒可以通过感应加热用于非侵入性热疗癌症。第四个项目将研究荧光银纳米颗粒对酵母的生物毒性,作为治疗感染性真菌的模型。第五个项目将测试荧光金纳米簇作为一种手段来成像β-淀粉样聚集体,并研究β-淀粉样斑块的形成过程,以更好地了解阿尔茨海默病。最后的项目将开发荧光量子点,并表征它们在高温期间在细胞内外环境中充当纳米温度计的能力。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
This award is to purchase an advanced fluorescence microscopy system for Kettering University. The system will enable high-resolution, three-dimensional imaging of cells on a microscopic scale. These capabilities allow molecules and nanoparticles that have potential for enhancing disease treatments to be tracked relative to various parts of the cell. The system will support interdisciplinary research in studying cellular processes with the goal of improving treatment of cancer and other diseases. The system will provide excellent training opportunities for students to prepare them for graduate school or employment in scientific fields after graduation. The system will also enable science-oriented outreach to women and other underrepresented minorities via pre-college programs and summer research experiences for undergraduates. Furthermore, the instrument will be used to provide professional development for teachers and enhance science education of under-served students in Flint and surrounding areas via field trips to the university and Internet-enabled remote microscopy demonstrations.This instrument will include an inverted microscope with epifluorescence components and light source, an electron-multiplier CCD camera, and a confocal laser scanning system, all of which are critical for the study of the localization and transport of molecules and nanoparticles. The first project will study the mechanisms of ultrasound-mediated delivery of fluorescent agents to cells in the presence of microbubbles, thereby potentially enabling better non-invasive spatiotemporal control of drug delivery. The second project will study the symmetry-breaking mechanisms of eukaryotic cells during movement with fluorescent dyes, thereby contributing to an improved understanding of metastasis. The third project will study the uptake and distribution of fluorescent magnetic nanoparticles in cancerous cells and spheroids with magnetic and ultrasonic methods. These magnetic nanoparticles can be used for noninvasive hyperthermic cancer treatment via induction heating. The fourth project will study the biotoxicity of fluorescent silver nanoparticles on yeast as a model for treating infectious fungi. The fifth project will test fluorescent gold nanoclusters as a means to image beta-amyloid aggregates and study the process of beta-amyloid plaque formation towards a better understanding of Alzheimer's disease. The final project will develop fluorescent quantum dots and characterize their ability to act as nanothermometers in the intra- and extracellular environment during hyperthermia.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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