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Understanding Cellular Interactions with Nanomaterials: Towards a Rational Design of Medical Nanodevices

Overview
Journal Nanotechnology
Specialty Biotechnology
Date 2019 Nov 27
PMID 31770746
Citations 49
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Abstract

Biomedical applications increasingly require fully characterized new nanomaterials. There is strong evidence showing that nanomaterials not only interact with cells passively but also actively, mediating essential molecular processes for the regulation of cellular functions, but we are only starting to understand the mechanisms of those interactions. Systematic studies about cell behavior as a response to specific nanoparticle properties are scarce in the literature even when they are necessary for the rational design of medical nanodevices. Information in the literature shows that the physicochemical properties determine the bioactivity, biocompatibility, and safety of nanomaterials. The information available regarding the interaction and responses of cells to nanomaterials has not been analyzed and discussed in a single document. Hence, in this review, we present the latest advances about cellular responses to nanomaterials and integrate the available information into concrete considerations for the development of innovative, efficient, specific and, more importantly, safe biomedical nanodevices. We focus on how physicochemical nanoparticle properties (size, chemical surface, shape, charge, and topography) influence cell behavior in a first attempt to provide a practical guide for designing medical nanodevices, avoiding common experimental omissions that may lead to data misinterpretation. Finally, we emphasize the importance of the systematic study of nano-bio interactions to acquire sufficient reproducible information that allows accurate control of cell behavior based on tuning of nanomaterial properties. This information is useful to guide the design of specific nanodevices and nanomaterials to elicit desired cell responses, like targeting, drug delivery, cell attachment, differentiation, etc, or to avoid undesired side effects.

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References
1.
Salatin S, Dizaj S, Khosroushahi A . Effect of the surface modification, size, and shape on cellular uptake of nanoparticles. Cell Biol Int. 2015; 39(8):881-90. DOI: 10.1002/cbin.10459. View

2.
Chugh H, Sood D, Chandra I, Tomar V, Dhawan G, Chandra R . Role of gold and silver nanoparticles in cancer nano-medicine. Artif Cells Nanomed Biotechnol. 2018; 46(sup1):1210-1220. DOI: 10.1080/21691401.2018.1449118. View

3.
Shang L, Nienhaus K, Jiang X, Yang L, Landfester K, Mailander V . Nanoparticle interactions with live cells: Quantitative fluorescence microscopy of nanoparticle size effects. Beilstein J Nanotechnol. 2015; 5:2388-97. PMC: 4273230. DOI: 10.3762/bjnano.5.248. View

4.
Walker D, Leitsch E, Nap R, Szleifer I, Grzybowski B . Geometric curvature controls the chemical patchiness and self-assembly of nanoparticles. Nat Nanotechnol. 2013; 8(9):676-81. DOI: 10.1038/nnano.2013.158. View

5.
Peiris P, He F, Covarrubias G, Raghunathan S, Turan O, Lorkowski M . Precise targeting of cancer metastasis using multi-ligand nanoparticles incorporating four different ligands. Nanoscale. 2018; 10(15):6861-6871. PMC: 5908762. DOI: 10.1039/c8nr02513d. View