Single-Particle Characterization of Nanoparticle Bioconjugates
Single-Particle Characterization of Nanoparticle Bioconjugates
批准号:
9888384
负责人:
Kathryn Mayer
金额:
$14.7万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-05-01 至 2021-03-31
关键词:
AdherenceAntibodiesAstronomyBiomedical TechnologyContrast MediaCountryDataDevelopmentDrug Delivery SystemsEngineeringEnzymesEpidermal Growth Factor ReceptorExposure toFluorescence MicroscopyGoalsGoldHealth SciencesHeterogeneityHispanic-serving InstitutionIgG1ImageIndividualInstitutionLabelLocationMeasuresMethodsMusOpticsPhysicsPlayPolymersPolystyrenesPopulationPreparationProceduresProcessQuality ControlRattusResearchResolutionRoleSamplingSourceSpatial DistributionSurfaceSystemTechniquesTexasTrainingUniversitiesVariantWorkantibody conjugatebasecancer biomarkerscontrast imagingdensitydesigndoctoral studentimprovednanonanoparticleparticlephotothermal therapyphysical sciencepreservationsingle molecule
中文摘要
纳米颗粒在生物医学技术中发挥着多种作用,包括作为成像造影剂、热
用于光热治疗的光源以及作为药物递送载体。在许多这些应用中,纳米颗粒
用特异性抗体功能化以用于靶向目的。理想情况下,抗体会分布在
制剂中纳米粒子之间均匀,并均匀分布在每个纳米粒子的表面;
然而,这是一种过于简单化的情况。事实上,在数量上可能会有变化。
每个纳米颗粒的抗体,它们在表面上的空间分布,以及它们在表面上的分布程度。
功能被保留。
为了表征纳米颗粒生物缀合物,并设计改进的纳米颗粒生物缀合物,
必须更好地理解表面官能化。以下两个目标将为此铺平道路
目标. (1)纳米颗粒制剂内每个纳米颗粒的抗体数量的分布将
使用微孔阵列分析在单颗粒水平上测量金和聚苯乙烯
纳米粒子(2)抗体在单个纳米颗粒表面上的空间排列将是
使用亚衍射极限荧光显微镜成像。将优化制备方法,
产生在纳米粒子的数量和空间分布方面具有均匀官能化的纳米粒子,
分子在表面。表征和优化表面功能化对于制备纳米材料具有重要意义。
纳米粒子疗法的发展。提高抗体的均一性和质量
官能化将导致改进的靶向。
该项目将在德克萨斯大学物理和天文学系进行,
圣安东尼奥,这是全国最大的指定西班牙裔服务机构之一。一个重要组成部分
这个SCORE项目的一部分将是培养博士。历史上代表性不足的群体的学生,
物理和健康科学,以及这个不断发展的机构的研究水平。
英文摘要
Nanoparticles play several roles in biomedical technology, including as imaging contrast agents, heat
sources for photothermal therapy, and as drug delivery vehicles. In many of these applications, nanoparticles
are functionalized with specific antibodies for targeting purposes. Ideally, antibodies would be distributed
equally among the nanoparticles in a preparation and evenly distributed on each nanoparticle’s surface;
however, this is an overly simplistic picture. In reality, there are likely to be variations in the number of
antibodies per nanoparticle, their spatial distribution on the surface, and the degree to which their
function is preserved.
In order to characterize nanoparticle bioconjugates, and to design improved ones, the details of the
surface functionalization must be better understood. The following two aims will pave the way towards this
goal. (1) The distributions of the number of antibodies per nanoparticle within a nanoparticle preparation will
be measured at the single-particle level using microwell array analysis, for both gold and polystyrene
nanoparticles. (2) The spatial arrangement of antibodies on the surfaces of individual nanoparticles will be
imaged using sub-diffraction-limited fluorescence microscopy. The preparation methods will be optimized to
produce nanoparticles with uniform functionalization in terms of the number and spatial distribution of
molecules on the surface. Characterizing and optimizing the surface functionalization is important for the
development of nanoparticle-based therapies. Improving the uniformity and quality of antibody
functionalization will lead to improved targeting.
The project will be carried out in the Department of Physics and Astronomy at the University of Texas at
San Antonio, which is one of the country’s largest designated Hispanic Serving Institutions. An important part
of this SCORE project will be the training of Ph.D. students from groups historically underrepresented in
the physical and health sciences, and the elevation of research at this growing institution.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1088/1361-6528/abe823
发表时间:
2021-03-09
期刊:
Nanotechnology
影响因子:
3.5
作者:
[Abdul-Moqueet MM, Tovias L, Lopez P, Mayer KM]
通讯作者:
Mayer KM
DOI:
10.1021/acs.jpcc.0c02443
发表时间:
2020-08-06
期刊:
The journal of physical chemistry. C, Nanomaterials and interfaces
影响因子:
--
作者:
[Manrique-Bedoya S, Abdul-Moqueet M, Lopez P, Gray T, Disiena M, Locker A, Kwee S, Tang L, Hood RL, Feng Y, Large N, Mayer KM]
通讯作者:
Mayer KM
海外基金