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Multicolor Super-Resolution Microscopy of Protein Corona on Single Nanoparticles

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Abstract

Nanoparticles represent a promising class of material for nanomedicine and molecular biosensing. The formation of a protein corona due to nonspecific particle-protein interactions is a determining factor for the biological fate of nanoparticles in vivo and strongly impacts the performance of nanoparticles when used as biosensors. Nonspecific interactions are usually highly heterogeneous, yet little is known about the heterogeneity of the protein corona that may lead to inter- and intraparticle differences in composition and protein distribution. Here, we present a super-resolution microscopic approach to study the protein corona on single silica nanoparticles and subsequent cellular interactions using multicolor stimulated emission depletion (STED) microscopy. We demonstrate that STED resolves structural features of protein corona on single particles including the distribution on the particle surface and the degree of protein internalization in porous particles. Using multicolor measurements of multiple labeled protein species, we determine the composition of the protein corona at the single-particle level. We quantify particle-to-particle differences in the composition and find that the composition is considerably influenced by the particle geometry. In a subsequent cellular uptake measurement, we demonstrate multicolor STED of protein corona on single particles internalized by cells. Our study shows that STED microscopy opens the window toward mechanistic understanding of protein coronas and aids in the rational design of nanoparticles as nanomedicines and biosensors.

Original languageEnglish
Pages (from-to)37345-37355
Number of pages11
JournalACS Applied Materials and Interfaces
Volume14
Issue number33
DOIs
Publication statusPublished - 24 Aug 2022

Funding

Y.W. acknowledges support from ICMS-IBEC partnership and ICMS microscopy facilities. P.E.D.S.R. acknowledges Juan de la Cierva “formación” program 2016 FJCI-2016-29512 of the Spanish Ministry of Economy. L.A. and L.W. acknowledge the financial support by the Horizon 2020 (ERC-StG-757397) and by the NWO through the VIDI Grant 192.028. S.S. thanks the CERCA program by the Generalitat de Catalunya, and the “Centro de Excelencia Severo Ochoa”, funded by Agencia Estatal de Investigación (CEX2018-000789-S). This project has received also funding from the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (grant agreement No 866348; i-NanoSwarms) and from “la Caixa” Foundation under the grant agreement LCF/PR/HR21/52410022 (BLADDEBOTS project). J.S. was funded by the CERCA Program and by the Commission for Universities and Research of the Department of Innovation, Universities, and Enterprise of the Generalitat de Catalunya (2017-SGR-1079). Also, Samitier was supported by the Biomedical Research Net-working Center (CIBER), Spain. CIBER is an initiative funded by the VI National R&D&i Plan 2008-2011, Iniciativa Ingenio 2010, Consolider Program, CIBER Actions, and the Instituto de Salud Carlos III (RD16/0006/0012; RD16/0011/0022), with the support of the European Regional Development Fund (ERDF).

FundersFunder number
European Union's Horizon 2020 - Research and Innovation Framework ProgrammeLCF/PR/HR21/52410022, 757397, 866348
European Union's Horizon 2020 - Research and Innovation Framework Programme
Nederlandse Organisatie voor Wetenschappelijk Onderzoek192.028
Institute of Health Carlos IIIRD16/0011/0022, RD16/0006/0012
European Regional Development Fund

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 3 - Good Health and Well-being
      SDG 3 Good Health and Well-being

    Keywords

    • multicolor microscopy
    • nanoparticles
    • protein corona
    • quantification
    • STED microscopy

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