Collaborative Research: IDR-Engineering of a Novel Nanostructure for Biomedical Sensing and Imaging

合作研究:用于生物医学传感和成像的新型纳米结构的 IDR 工程

基本信息

项目摘要

0933782/0933415/0933384Motamedi/Govorov/KotovImmunosenescence is the complex process of immune disregulation associated with advancing age. In humans, the compromised immunity with aging is realized in an increased susceptibility to viral and bacterial infections, reactivation of latent viruses, and decreased responses to vaccines. It is well known that the adaptive immune system such as T and B-cell progressively deteriorate with advancing age. Cytokines are secreted regulatory proteins and play vital roles in controlling cell survival, growth differentiation and function.The multi-disciplinary and tri-institutional "Linked Collaborative Research- Interdisciplinary Proposal" brings together several research groups with broad expertise and research interest to conduct experimental and theoretical studies aimed at engineering of novel nanostructures for sensing and high resolution imaging of cytokines. The group at the University of Michigan lead by Dr. Kotov will carry out the materials and nanotechnology aspect of this project, while the investigation at the University of Texas Medical Branch lead by Dr. Motamedi will concentrate on imaging and proteomics of this work. The experimental efforts of these groups will be complemented by the theoretical and modeling efforts of Dr. Govorov at Ohio University who will be developing models capable of predicting the response of the sensors. Specifically, they propose a novel sensing nanotechnology to image cytokines gradient of macrophages for the immunosenescence study of innate immune system. Successful demonstration of the versatile NW superstructure with cytokine-dependent frequency shift during the next three years allocated for this proposal will establish a concept and protocol for sensing and imaging of various cytokines while providing a unique opportunity to characterize the secretion of various cytokines from different age groups of macrophages, and developing the fundamental foundation for engineering of a new class of optical sensor for detection and imaging of various proteins.Broader ImpactThe proposed work is inherently multidisciplinary. The project combines expertise in new materials, imaging, bioengineering, biophysics and modeling as well as proteomics. From educational point of view, PIs, and graduate students will be immersed into a highly diverse environment, learning to interact and communicate effectively with professionals in several different fields of science and engineering. Special attention will be given to providing research opportunities to undergraduates and minority. The goals and scope of the interdisciplinary research (IDR) program at NSF appear to be an exact match for the proposed research. The joint efforts of the proposed multi-disciplinary team will create a powerful tool for the fundamental understanding of cell biology, characterization of proteomics of many diseases, clinical diagnosis of cell-secretion related diseases and the potential for rational control of cell differentiation in tissue engineering using novel optical sensors to detect and monitor the spatial and temporal distribution of small molecules such cytokines using high resolution imaging techniques. The proposed research combines the synergistic activities of a chemist and engineer with expertise in material sciences, nanotechnology, nanophotonics and sensing (Dr. Kotov, U of M), a bioengineering team specializing in cellular and biomedical imaging working with internationally known expert in the area of proteomics and inflammatory responses (Dr. Motamedi and his collaborators at UTMB) and a biophysicist and modeler with expertise in modeling of complex nanostructure and their behavior. The proposed joint efforts will significantly advance fundamental knowledge in multiple engineering and life science areas, including sensing, imaging and proteomics and if successful could have enormous long-term impact on health care and our national needs.
0933782/0933415/0933384Motamedi/Govorov/KotovImmunosenescence是与增龄相关的免疫失调的复杂过程。在人类中,随着年龄的增长,免疫力下降表现为对病毒和细菌感染的易感性增加,潜伏病毒重新激活,以及对疫苗的反应减少。众所周知,适应性免疫系统,如T细胞和B细胞,随着年龄的增长而逐渐退化。细胞因子是一种分泌的调节蛋白,在控制细胞的生存、生长、分化和功能方面起着至关重要的作用。多学科和三机构的联合协作研究-跨学科建议将几个具有广泛专业知识和研究兴趣的研究小组聚集在一起,进行旨在设计新型纳米结构的实验和理论研究,以用于细胞因子的传感和高分辨率成像。由科托夫博士领导的密歇根大学团队将开展该项目的材料和纳米技术方面的工作,而由莫塔梅迪博士领导的德克萨斯大学医学分部的研究将集中在这项工作的成像和蛋白质组学方面。这些小组的实验工作将得到俄亥俄大学戈沃洛夫博士的理论和建模工作的补充,戈沃罗夫博士将开发能够预测传感器反应的模型。具体地说,他们提出了一种新的传感纳米技术来成像巨噬细胞的细胞因子梯度,用于天然免疫系统的免疫衰老研究。在未来三年内成功展示多功能的NW超结构,其频率依赖于细胞因子的频移,这将为检测和成像各种细胞因子建立一个概念和方案,同时提供一个独特的机会来表征不同年龄组巨噬细胞分泌的各种细胞因子,并为设计一种用于检测和成像各种蛋白质的新型光学传感器奠定基础。该项目结合了新材料、成像、生物工程、生物物理学和建模以及蛋白质组学方面的专业知识。从教育的角度来看,PI和研究生将沉浸在一个高度多样化的环境中,学习与几个不同科学和工程领域的专业人员进行有效的互动和沟通。将特别重视为本科生和少数族裔提供研究机会。NSF的跨学科研究(IDR)计划的目标和范围似乎与拟议的研究完全匹配。拟议的多学科团队的共同努力将创造一个强大的工具,用于基本了解细胞生物学,描述许多疾病的蛋白质组学,临床诊断与细胞分泌相关的疾病,并利用新型光学传感器利用高分辨率成像技术检测和监测小分子(如细胞因子)的空间和时间分布,从而在组织工程中合理控制细胞分化。拟议的研究结合了以下人员的协同活动:一名具有材料科学、纳米技术、纳米光子学和传感专业知识的化学家和工程师(密歇根大学科托夫博士),一支专门从事细胞和生物医学成像的生物工程团队,与蛋白质组和炎症反应领域的国际知名专家(莫塔梅迪博士及其在UTMB的合作者)合作的生物工程团队,以及一名在复杂纳米结构及其行为建模方面专业的生物物理学家和建模师。拟议的联合努力将极大地促进多个工程和生命科学领域的基础知识,包括传感、成像和蛋白质组学,如果成功,可能对医疗保健和我们的国家需求产生巨大的长期影响。

项目成果

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Massoud Motamedi其他文献

Effects of 5-aminolaevulinic acid on human ovarian cancer cells and human vascular endothelial cells in vitro.
5-氨基乙酰丙酸对人卵巢癌细胞和人血管内皮细胞的体外影响。
Dynamics of tissue optics during laser heating of turbid media.
激光加热混浊介质期间组织光学的动力学。
  • DOI:
    10.1364/ao.35.003413
  • 发表时间:
    1996
  • 期刊:
  • 影响因子:
    1.9
  • 作者:
    Wei;Massoud Motamedi;Ashley J. Welch
  • 通讯作者:
    Ashley J. Welch
Experimental evaluation of mathematical models for predicting the thermal response of tissue to laser irradiation.
用于预测组织对激光照射的热响应的数学模型的实验评估。
  • DOI:
    10.1364/ao.32.000597
  • 发表时间:
    1993
  • 期刊:
  • 影响因子:
    1.9
  • 作者:
    Jorge H. Torres;Massoud Motamedi;John A. Pearce;Ashley J. Welch
  • 通讯作者:
    Ashley J. Welch
Light and temperature distribution in laser irradiated tissue: the influence of anisotropic scattering and refractive index.
激光照射组织中的光和温度分布:各向异性散射和折射率的影响。
  • DOI:
  • 发表时间:
    1989
  • 期刊:
  • 影响因子:
    1.9
  • 作者:
    Massoud Motamedi;S. Rastegar;G. LeCarpentier;Ashley J. Welch
  • 通讯作者:
    Ashley J. Welch
Serum amyloid A and mitochondrial DNA in extracellular vesicles are novel markers for detecting traumatic brain injury in a mouse model
血清淀粉样蛋白 A 和细胞外囊泡中的线粒体 DNA 是检测小鼠模型创伤性脑损伤的新标记物
  • DOI:
    10.1016/j.isci.2024.108932
  • 发表时间:
    2024
  • 期刊:
  • 影响因子:
    5.8
  • 作者:
    Tony Z. Tang;Yingxin Zhao;D. Agarwal;Aabila Tharzeen;I. Patrikeev;Yuanyi Zhang;Jana DeJesus;Stefan H. Bossmann;Balasubramaniam Natarajan;Massoud Motamedi;B. Szczesny
  • 通讯作者:
    B. Szczesny

Massoud Motamedi的其他文献

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{{ truncateString('Massoud Motamedi', 18)}}的其他基金

Collaborative Research: A Point-of-Care Device for Diagnosis and Management of Pulmonary Diseases
合作研究:用于肺部疾病诊断和管理的即时护理设备
  • 批准号:
    1804422
  • 财政年份:
    2018
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant
EAGER:Nanoimaging for Molecular Diagnosis of Retina
EAGER:用于视网膜分子诊断的纳米成像
  • 批准号:
    1053978
  • 财政年份:
    2010
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant
SGER: Biophotonics: Nano-based Contrast Agent for Molecular Optical-based Imaging of Prostate Cancer
SGER:生物光子学:用于前列腺癌分子光学成像的纳米造影剂
  • 批准号:
    0632281
  • 财政年份:
    2006
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant
Biophotonics: Collaborative Research: Photo-activated Coupling of Nanoparticle Multilayers and Nerve Cells
生物光子学:合作研究:纳米粒子多层和神经细胞的光激活耦合
  • 批准号:
    0119544
  • 财政年份:
    2001
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant
Conference entitled "Future Directions for Lasers in Medicine and Surgery III"
题为“激光在医学和外科领域的未来方向 III”的会议
  • 批准号:
    9222398
  • 财政年份:
    1993
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant
Studies on Dynamics of High Power Laser Beam Propagation in Biological Media
高功率激光束在生物介质中传播的动力学研究
  • 批准号:
    9110257
  • 财政年份:
    1991
  • 资助金额:
    $ 34.97万
  • 项目类别:
    Standard Grant

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    2007
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  • 项目类别:
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