Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs
Ivan Vaskan
1
,
Veronika Dimitreva
1, 2
,
Maxim Petoukhov
3, 4
,
Eleonora Shtykova
3
,
Nicolai Bovin
1
,
Alexander Tuzikov
1
,
Marina Tretyak
1
,
Vladimir OLEINIKOV
1, 2
,
Anton Zalygin
1, 2
2
3
A.V. Shubnikov Institute of Crystallography of Federal Scientific Research Centre “Crystallography and Photonics” of the Russian Academy of Sciences, Moscow, 119333, Russia
|
Publication type: Journal Article
Publication date: 2024-01-01
scimago Q1
wos Q2
SJR: 1.215
CiteScore: 11.4
Impact factor: 5.7
ISSN: 20474830, 20474849
PubMed ID:
38180048
General Materials Science
Biomedical Engineering
Abstract
Biomolecular corona is the major obstacle to the clinical translation of nanomedicines. Since corona formation is governed by molecular interactions at the nano–bio interface, nanoparticle surface properties such as topography, charge and surface chemistry can be tuned to manipulate biomolecular corona formation. To this end, as the first step towards a deep understanding of the processes of corona formation, it is necessary to develop nanoparticles employing various biocompatible materials and characterize their surface structure and dynamics at the molecular level. In this work, we applied molecular dynamics simulation to study the surface structure of organic core–shell nanoparticles formed by the self-assembly of synthetic molecules composed of a DOPE lipid, a carboxymethylglycine spacer and biotin. Lipid moieties form the hydrophobic core, spacer motifs serve as a hydrophilic shell and biotin residues function as a targeting ligand. By mixing such function–spacer–lipid, spacer–lipid and lipid-only constructs at various molar ratios, densities of the ligand and spacer on the nanoparticle surface were modified. For convenient analysis of the structure and dynamics of all regions of the nanoparticle surface, we compiled topography maps based on atomic coordinates. It was shown that an increase in the density of the shell does not reduce exposure of the core, but increases shell average thickness. Biotin, due to its alkyl valeric acid chain and spacer flexibility, is localized primarily near the hydrophobic core and its partial presentation on the surface occurs only in nanoparticles with higher ligand densities. However, an increase in biotin density leads to its clustering. In turn, ligand clustering diminishes the stealth properties of the shell and targeting efficiency. Based on nanoparticle surface structures, we determined the optimal density of biotin. Experimental studies reported in the literature confirm these conclusions. We also suggest design tips to achieve the preferred biotin presentation. Simulation results are consistent with the synchrotron SAXS profile. We believe that such studies will contribute to a better understanding of nano–bio interactions towards the rational design of efficient drug delivery systems.
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Total citations:
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Citations from 2025:
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(66.67%)
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Vaskan I. et al. Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs // Biomaterials Science. 2024. Vol. 12. No. 3. pp. 798-806.
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Vaskan I., Dimitreva V., Petoukhov M., Shtykova E., Bovin N., Tuzikov A., Tretyak M., OLEINIKOV V., Zalygin A. Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs // Biomaterials Science. 2024. Vol. 12. No. 3. pp. 798-806.
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RIS
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TY - JOUR
DO - 10.1039/d3bm01704d
UR - https://xlink.rsc.org/?DOI=D3BM01704D
TI - Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs
T2 - Biomaterials Science
AU - Vaskan, Ivan
AU - Dimitreva, Veronika
AU - Petoukhov, Maxim
AU - Shtykova, Eleonora
AU - Bovin, Nicolai
AU - Tuzikov, Alexander
AU - Tretyak, Marina
AU - OLEINIKOV, Vladimir
AU - Zalygin, Anton
PY - 2024
DA - 2024/01/01
PB - Royal Society of Chemistry (RSC)
SP - 798-806
IS - 3
VL - 12
PMID - 38180048
SN - 2047-4830
SN - 2047-4849
ER -
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BibTex (up to 50 authors)
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@article{2024_Vaskan,
author = {Ivan Vaskan and Veronika Dimitreva and Maxim Petoukhov and Eleonora Shtykova and Nicolai Bovin and Alexander Tuzikov and Marina Tretyak and Vladimir OLEINIKOV and Anton Zalygin},
title = {Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs},
journal = {Biomaterials Science},
year = {2024},
volume = {12},
publisher = {Royal Society of Chemistry (RSC)},
month = {jan},
url = {https://xlink.rsc.org/?DOI=D3BM01704D},
number = {3},
pages = {798--806},
doi = {10.1039/d3bm01704d}
}
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MLA
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Vaskan, Ivan, et al. “Effect of ligand and shell densities on surface structure of core-shell nanoparticles self-assembled from function-spacer-lipid constructs.” Biomaterials Science, vol. 12, no. 3, Jan. 2024, pp. 798-806. https://xlink.rsc.org/?DOI=D3BM01704D.