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利用 DNA-PAINT 技术绘制纳米粒子表面抗体结构域的暴露情况。

Mapping Antibody Domain Exposure on Nanoparticle Surfaces Using DNA-PAINT.

机构信息

Department of Biomedical Engineering, Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, 5612 AZ Eindhoven, The Netherlands.

Molecular Cell Biology and Immunology, Amsterdam UMC, Vrije Universiteit Amsterdam, De Boelelaan 1117, 1081 HV Amsterdam, The Netherlands.

出版信息

ACS Nano. 2023 Jun 27;17(12):11665-11678. doi: 10.1021/acsnano.3c02195. Epub 2023 Jun 7.

Abstract

Decorating nanoparticles with antibodies (Ab) is a key strategy for targeted drug delivery and imaging. For this purpose, the orientation of the antibody on the nanoparticle is crucial to maximize fragment antibody-binding (Fab) exposure and thus antigen binding. Moreover, the exposure of the fragment crystallizable (Fc) domain may lead to the engagement of immune cells through one of the Fc receptors. Therefore, the choice of the chemistry for nanoparticle-antibody conjugation is key for the biological performance, and methods have been developed for orientation-selective functionalization. Despite the importance of this issue, there is a lack of direct methods to quantify the antibodies' orientation on the nanoparticle's surface. Here, we present a generic methodology that enables for multiplexed, simultaneous imaging of both Fab and Fc exposure on the surface of nanoparticles, based on super-resolution microscopy. Fab-specific Protein M and Fc-specific Protein G probes were conjugated to single stranded DNAs and two-color DNA-PAINT imaging was performed. Hereby, we quantitatively addressed the number of sites per particle and highlight the heterogeneity in the Ab orientation and compared the results with a geometrical computational model to validate data interpretation. Moreover, super-resolution microscopy can resolve particle size, allowing the study of how particle dimensions affect antibody coverage. We show that different conjugation strategies modulate the Fab and Fc exposure which can be tuned depending on the application of choice. Finally, we explored the biomedical importance of antibody domain exposure in antibody dependent cell mediated phagocytosis (ADCP). This method can be used universally to characterize antibody-conjugated nanoparticles, improving the understanding of relationships between structure and targeting capacities in targeted nanomedicine.

摘要

用抗体(Ab)修饰纳米颗粒是靶向药物输送和成像的关键策略。为此,抗体在纳米颗粒上的取向对于最大限度地增加抗体片段结合(Fab)的暴露从而最大程度地结合抗原至关重要。此外,Fc 结构域的暴露可能会通过其中一种 Fc 受体引发免疫细胞的参与。因此,纳米颗粒-抗体缀合的化学选择对于生物性能至关重要,并且已经开发了用于定向功能化的方法。尽管这个问题很重要,但缺乏直接定量纳米颗粒表面上抗体取向的方法。在这里,我们提出了一种通用方法,该方法基于超分辨率显微镜,可实现纳米颗粒表面上 Fab 和 Fc 暴露的多重同时成像。Fab 特异性蛋白 M 和 Fc 特异性蛋白 G 探针与单链 DNA 缀合,并进行双色 DNA-PAINT 成像。通过这种方法,我们定量地确定了每个颗粒上的位点数量,并突出了抗体取向的异质性,并将结果与几何计算模型进行了比较,以验证数据解释。此外,超分辨率显微镜可以分辨颗粒尺寸,从而可以研究颗粒尺寸如何影响抗体覆盖率。我们表明,不同的缀合策略会调节 Fab 和 Fc 的暴露,这可以根据选择的应用进行调整。最后,我们探索了抗体结构域暴露在抗体依赖性细胞介导的吞噬作用(ADCP)中的生物医学重要性。该方法可普遍用于表征抗体偶联的纳米颗粒,从而提高对靶向纳米医学中结构与靶向能力之间关系的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0d5/10311592/36955eec9ee5/nn3c02195_0001.jpg

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