课题基金 / 基金详情

Magnetic Particle Microscopy of Living Organisms

Magnetic Particle Microscopy of Living Organisms
活体磁粉显微镜
批准号:
1310657
负责人:
Pallavi Dhagat
金额:
$45.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-01 至 2018-08-31

项目摘要

项目成果

Pallavi Dhagat的其他基金

相似基金

相关文献

中文摘要
翻译
该项目的目标是开发一种新的三维成像技术,使用磁性纳米颗粒示踪剂,在活体、组织和细胞培养中观察和研究细胞和亚细胞水平的生物过程。智力优势:光学显微镜和成像的进步改变了生物学。然而,由于光在组织内的散射和吸收,光学显微镜的穿透深度是有限的。因此,在所需的高强度照明下以高分辨率和最小的光损伤来询问超过(0.5到0.8)mm的组织和3D细胞培养一直是具有挑战性的。相比之下,磁场可以穿透生物样品,而不会对细胞造成散射或伤害,这为本文提出的磁性纳米颗粒显微镜的新成像方式提供了机会。细胞和细胞器可以用磁性纳米粒子示踪剂标记,然后可以高对比度和分辨率进行成像。磁性纳米颗粒显微镜是基于磁粒子成像(MPI)的原理。简而言之,建立了一个磁场分布,使得样品中除小场自由点以外的所有示踪剂粒子都是磁饱和的。因此,当施加交流激励场时,仅从无场点内的纳米粒子引发响应。通过扫描样品内的场自由点来空间选择纳米颗粒并感应地测量它们的响应,构建了纳米颗粒浓度的3D图像。对MPI的研究集中在开发毫米级分辨率扫描仪,其视野覆盖整个人类或小动物身体。这项拟议的研究转而寻求通过磁粒子成像来实现亚细胞分辨率。实验目标是在相关的生物样本中演示25微米。将安装一个磁场组件,以提供近两个数量级的精细分辨率所需的高磁场梯度。系统硬件将采用低噪声电子设备设计,以确保最大的信噪比。此外,定制尺寸的纳米粒子示踪剂和生物兼容涂层将进行精密设计,以满足成像要求。模块化的合成方法将允许核心和生物相容涂层独立和系统地定制,并具有精致的控制。成像能力将在斑马鱼胚胎中进行演示,并通过并行光学显微镜进行验证。为使磁性纳米粒子成像合格而提出的实验还将推动正在进行的研究,以确定影响其摄取的纳米粒子的物理和化学性质,从而提供对其毒性的洞察。广泛影响:该项目建立了跨学科和机构间的合作,架起了工程学、化学和生物学的桥梁,以满足对成像技术的需求,以探索微生物学和医学的新科学前沿。细胞和亚细胞分辨率的成功展示将建立一种新的显微镜手段,使用磁性纳米颗粒示踪剂来研究光学不透明的活组织中的细胞行为。除了基础生物学,这项工作将推进精确工程纳米颗粒的合成技术,并为纳米颗粒与生命系统的相互作用带来新的见解。此外,它还将为临床皮肤和乳腺癌筛查的医学成像方面的应用奠定基础。PIS将涉及2名研究生和4名本科生进行研究。参与的学生将获得全面的技术教育,不仅获得各自专业领域的专门知识,而且还获得互补研究领域的方法和材料知识。项目内的适当分主题将纳入由专业督导教授的跨学科和特定学科的课程中。研究成果将发表在相关的高影响力期刊上,并在区域、国家和国际技术会议上介绍。此外,如数据管理计划所述,最终数据将存档并向公众提供。PIs将通过与小学、初中和高中科学教师合作开发年级级适当的教学材料,为K-12教育服务。PIs还将参加Science Pubs,这是一项非正式的科学教育计划,旨在让公众参与讨论纳米粒子在医学和生物学中的合成、应用和影响。
英文摘要
The goal of this project is to develop a new three-dimensional imaging technique, using magnetic nanoparticle tracers, to observe and study biological processes at the cellular and sub-cellular level in live organisms, tissue and cell cultures.Intellectual Merit:Advances in optical microscopy and imaging have transformed biology. However, the penetration depth of optical microscopy is limited due to the scattering and absorption of light within tissue. Thus, interrogating tissue and 3D cell cultures beyond (0.5 to 0.8) mm with high resolution and minimal photodamage from the required high-intensity illumination has been challenging. Magnetic fields, in contrast, penetrate biological samples without scattering or harm to the cells, providing the opportunity for a new imaging modality from magnetic nanoparticle microscopy as proposed here. Cells and cellular organelles may be labeled with magnetic nanoparticle tracers, which can then be imaged with high contrast and resolution. Magnetic nanoparticle microscopy is based on the principles of magnetic particle imaging (MPI). Briefly, a magnetic field distribution is established such that tracer particles everywhere within the sample except a small field free point are magnetically saturated. As a result, when an ac excitation field is applied, a response is elicited only from nanoparticles within the field free point. A 3D image of the nanoparticle concentration is constructed by scanning the field free point within the sample to spatially select the nanoparticles and measure their response inductively. Research on MPI has focused on the development of millimeter-scale resolution scanners with a field of view encompassing the whole human or small animal body. The proposed research seeks instead to scale magnetic particle imaging for sub cellular resolution. The experimental goal is to demonstrate 25 µm in a relevant biological specimen. A magnet field assembly will be implemented to provide the high field gradient needed for nearly two orders of magnitude finer resolution. The system hardware will be designed with low noise electronics to ensure maximal signal-to-noise ratio. Further, nanoparticle tracers of custom size and biocompatible coatings will be precision engineered with to meet the imaging requirements. A modular synthetic approach will allow the core and biocompatible coatings to be independently and systematically tailored, with exquisite control. Imaging capabilities will be demonstrated in embryonic zebrafish and verified via concurrent optical microscopy. Experiments proposed to qualify magnetic nanoparticle imaging will also advance ongoing research in identifying physical and chemical properties of nanoparticles that influence their uptake and thereby provide insight to their toxicity.Broader Impact: This project forges an interdisciplinary and inter-institutional collaboration, bridging engineering, chemistry and biology, to meet the need for an imaging technology to explore new scientific frontiers in microbiology and medicine. The successful demonstration of cellular and sub cellular resolution will establish a new means of microscopy, using magnetic nanoparticle tracers, to investigate cell behavior in optically opaque, living tissue. Beyond fundamental biology, this effort will advance synthesis techniques for precisely engineered nanoparticles and bring new insight to nanoparticle interactions with living systems. Further, it will lay the foundation for applications envisioned in medical imaging of clinical skin and breast cancer screening. The PIs will involve 2 graduate and 4 undergraduate students in research. The participating students will gain a well-rounded technical education acquiring not only expertise in their respective areas of specialization but also knowledge of methods and materials in complementary areas of research. Suitable sub-topics within the project will be integrated in to cross disciplinary and discipline-specific courses taught by the PIs. The research findings will be published in relevant high-impact journals and presented at regional, national and international technical meetings. In addition, as discussed in the data management plan, final data will be archived and made available to the public. The PIs will serve K-12 education by developing grade-level appropriate instruction materials in collaboration with elementary, middle and high school science teachers. The PIs will also participate in Science Pubs, an informal science education program to engage the public in discussion on the synthesis, applications and implications of nanoparticles in medicine and biology.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
NSF Engines Development Award: Advancing semi-conductor technologies in the Northwest (OR, ID, WA)
  • 批准号:
    2303099
  • 项目类别:
    Cooperative Agreement
  • 资助金额:
    $100.0万
  • 财政年份:
    2023
  • 负责人:
    Pallavi Dhagat
  • 依托单位:
MRI: Development of Joint-use Ultra-fast Pump-probe Instrument for Thin-films Experimental Research
  • 批准号:
    1920368
  • 项目类别:
    Standard Grant
  • 资助金额:
    $96.93万
  • 财政年份:
    2019
  • 负责人:
    Pallavi Dhagat
  • 依托单位:
GOALI: Collaborative Research: 3D Printed Graded-Index Magnetodielectric Devices
  • 批准号:
    1611601
  • 项目类别:
    Standard Grant
  • 资助金额:
    $29.51万
  • 财政年份:
    2016
  • 负责人:
    Pallavi Dhagat
  • 依托单位:
MRI: Acquisition of a High Field, Wide Temperature Range Electrical, Magnetic and Thermal Properties Measurement System
  • 批准号:
    1532287
  • 项目类别:
    Standard Grant
  • 资助金额:
    $54.41万
  • 财政年份:
    2015
  • 负责人:
    Pallavi Dhagat
  • 依托单位:
国内基金
海外基金
环形等离子体中的离子漂移波不稳定性和湍流的保结构Particle-in-Cell模拟
  • 批准号:
    11905220
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    25.0万元
  • 批准年份:
    2019
  • 负责人:
    肖建元
  • 依托单位:
基于多禁带光子晶体微球构建"Array on One Particle"传感体系
  • 批准号:
    21902147
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    27.0万元
  • 批准年份:
    2019
  • 负责人:
    崔杰铖
  • 依托单位:
空气污染(主要是diesel exhaust particle,DEP)和支气管哮喘关系的研究
  • 批准号:
    30560052
  • 项目类别:
    地区科学基金项目
  • 资助金额:
    20.0万元
  • 批准年份:
    2005
  • 负责人:
    元熙哲
  • 依托单位: