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Gold-silica plasmonic nanobones with tunable size and optical bimodality for bioimaging. / Смирнов, Алексей Николаевич; Шевчук, Алиса Игоревна; Волкова, Анна Валериевна; Калганов, Владимир Дмитриевич; Соловьева, Елена Викторовна.

In: Colloids and Surfaces A: Physicochemical and Engineering Aspects, Vol. 684, 133115, 05.03.2024.

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@article{8caa145faa964f17ba666276838df093,
title = "Gold-silica plasmonic nanobones with tunable size and optical bimodality for bioimaging",
abstract = "Silica-coated gold nanotags were developed for multimodal Raman and fluorescent imaging. These nanotags, shaped like bones, offer significant absorption at 700 nm, aligning with the first window of tissue transparency. Gold nanobones were modified with cyanine 5.5 and 7 dyes and a silica shell for stability and biocompatibility via a modified Stober method involving tetraethoxysilane hydrolysis. Folic acid was attached on outer surface of nanotags to serve as a model delivery vector. The nanotags were characterized by dynamic light scattering, transmission electron microscopy, and spectroscopy. These methods showed that a thickness of the silica shell can be precisely controlled via a concentration of tetraethoxysilane. Surface-enhanced Raman scattering and emission spectra were registered and demonstrated the intensity dependent on the distance between the dye and core. Raman mapping of cell samples highlighted the nanotags bioimaging potential and revealed the partial nanotags agglomeration post-cell uptake accompanied by formation of optical hot-spots. Cell viability assays with HeLa and HEP 2G cell lines suggested the nanotags safety below 0.2 mg/L concentration. These findings highlight the benefits of silica-coated gold nanotags and open the doors in advanced medical imaging.",
keywords = "gold, tag, fluorescence, SERS, cyanine, Stober",
author = "Смирнов, {Алексей Николаевич} and Шевчук, {Алиса Игоревна} and Волкова, {Анна Валериевна} and Калганов, {Владимир Дмитриевич} and Соловьева, {Елена Викторовна}",
note = "2. Aleksei N. Smirnov, Alisa I. Shevchuk, Anna A. Volkova, Vladimir D. Kalganov, Elena V. Solovyeva, Gold-silica plasmonic nanobones with tunable size and optical bimodality for bioimaging, Colloids Surfaces A, 2024, 684, 133115. https://doi.org/10.1016/j.colsurfa.2023.133115.",
year = "2024",
month = mar,
day = "5",
doi = "10.1016/j.colsurfa.2023.133115",
language = "English",
volume = "684",
journal = "Colloids and Surfaces A: Physicochemical and Engineering Aspects",
issn = "0927-7757",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Gold-silica plasmonic nanobones with tunable size and optical bimodality for bioimaging

AU - Смирнов, Алексей Николаевич

AU - Шевчук, Алиса Игоревна

AU - Волкова, Анна Валериевна

AU - Калганов, Владимир Дмитриевич

AU - Соловьева, Елена Викторовна

N1 - 2. Aleksei N. Smirnov, Alisa I. Shevchuk, Anna A. Volkova, Vladimir D. Kalganov, Elena V. Solovyeva, Gold-silica plasmonic nanobones with tunable size and optical bimodality for bioimaging, Colloids Surfaces A, 2024, 684, 133115. https://doi.org/10.1016/j.colsurfa.2023.133115.

PY - 2024/3/5

Y1 - 2024/3/5

N2 - Silica-coated gold nanotags were developed for multimodal Raman and fluorescent imaging. These nanotags, shaped like bones, offer significant absorption at 700 nm, aligning with the first window of tissue transparency. Gold nanobones were modified with cyanine 5.5 and 7 dyes and a silica shell for stability and biocompatibility via a modified Stober method involving tetraethoxysilane hydrolysis. Folic acid was attached on outer surface of nanotags to serve as a model delivery vector. The nanotags were characterized by dynamic light scattering, transmission electron microscopy, and spectroscopy. These methods showed that a thickness of the silica shell can be precisely controlled via a concentration of tetraethoxysilane. Surface-enhanced Raman scattering and emission spectra were registered and demonstrated the intensity dependent on the distance between the dye and core. Raman mapping of cell samples highlighted the nanotags bioimaging potential and revealed the partial nanotags agglomeration post-cell uptake accompanied by formation of optical hot-spots. Cell viability assays with HeLa and HEP 2G cell lines suggested the nanotags safety below 0.2 mg/L concentration. These findings highlight the benefits of silica-coated gold nanotags and open the doors in advanced medical imaging.

AB - Silica-coated gold nanotags were developed for multimodal Raman and fluorescent imaging. These nanotags, shaped like bones, offer significant absorption at 700 nm, aligning with the first window of tissue transparency. Gold nanobones were modified with cyanine 5.5 and 7 dyes and a silica shell for stability and biocompatibility via a modified Stober method involving tetraethoxysilane hydrolysis. Folic acid was attached on outer surface of nanotags to serve as a model delivery vector. The nanotags were characterized by dynamic light scattering, transmission electron microscopy, and spectroscopy. These methods showed that a thickness of the silica shell can be precisely controlled via a concentration of tetraethoxysilane. Surface-enhanced Raman scattering and emission spectra were registered and demonstrated the intensity dependent on the distance between the dye and core. Raman mapping of cell samples highlighted the nanotags bioimaging potential and revealed the partial nanotags agglomeration post-cell uptake accompanied by formation of optical hot-spots. Cell viability assays with HeLa and HEP 2G cell lines suggested the nanotags safety below 0.2 mg/L concentration. These findings highlight the benefits of silica-coated gold nanotags and open the doors in advanced medical imaging.

KW - gold, tag, fluorescence, SERS, cyanine, Stober

UR - https://www.mendeley.com/catalogue/4300a4ce-69b4-3f1c-9b59-c6507e431bc6/

U2 - 10.1016/j.colsurfa.2023.133115

DO - 10.1016/j.colsurfa.2023.133115

M3 - Article

VL - 684

JO - Colloids and Surfaces A: Physicochemical and Engineering Aspects

JF - Colloids and Surfaces A: Physicochemical and Engineering Aspects

SN - 0927-7757

M1 - 133115

ER -

ID: 115625153