Analysis of the in Vitro Nanoparticle-Cell Interactions via a Smoothing-Splines Mixed-Effects Model

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Date

2016

Journal Title

Journal ISSN

Volume Title

Publisher

Taylor & Francis Ltd

Open Access Color

GOLD

Green Open Access

Yes

OpenAIRE Downloads

69

OpenAIRE Views

175

Publicly Funded

No
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Average
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Average
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Average

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Journal Issue

Abstract

A mixed-effects statistical model has been developed to understand the nanoparticle (NP)-cell interactions and predict the rate of cellular uptake of NPs. NP-cell interactions are crucial for targeted drug delivery systems, cell-level diagnosis, and cancer treatment. The cellular uptake of NPs depends on the size, charge, chemical structure, and concentration of NPs, and the incubation time. The vast number of combinations of these variable values disallows a comprehensive experimental study of NP-cell interactions. A mathematical model can, however, generalize the findings from a limited number of carefully designed experiments and can be used for the simulation of NP uptake rates, to design, plan, and compare alternative treatment options. We propose a mathematical model based on the data obtained from in vitro interactions of NP-healthy cells, through experiments conducted at the Nanomedicine and Advanced Technologies Research Center in Turkey. The proposed model predicts the cellular uptake rate of silica, polymethyl methacrylate, and polylactic acid NPs, given the incubation time, size, charge and concentration of NPs. This study implements the mixed-model methodology in the field of nanomedicine for the first time, and is the first mathematical model that predicts the rate of cellular uptake of NPs based on sound statistical principles. Our model provides a cost-effective tool for researchers developing targeted drug delivery systems.

Description

Dogruoz, Elifnur/0000-0003-1153-0229

Keywords

Linear Mixed Model, Nanomedicine, Nanoparticle Uptake Rate, Smoothing Splines, Targeted Drug Delivery, Medical nanotechnology, Polymethyl methacrylates, Linear mixed models, chemical model, incubation time, Turkey (republic), targeted drug delivery, Models, animal, cell interaction, polylactic acid, silicon dioxide, Targeted drug delivery, Contour measurement, nanoparticle, particle size, Nanoparticle uptakes, Silicon Dioxide, nanomedicine, Statistical modeling, Nanomedicine, Telemetering, polylactide, Linear mixed model, in vitro study, Cells, Polyesters, smoothing splines, Chemical, chemistry, Article, Cost effectiveness, Designed experiments, Smoothing spline, Animals, Humans, Polymethyl Methacrylate, polyester, human, Targeted drug delivery systems, Statistical principles, Smoothing splines, 500, prediction, Nanoparticle uptake rate, poly(methyl methacrylate), Models, Chemical, Nanoparticles, Cytology, linear mixed model, nanoparticle uptake rate, mathematical model

Fields of Science

01 natural sciences, 0101 mathematics

Citation

WoS Q

Q1

Scopus Q

Q1
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N/A

Source

Artificial Cells Nanomedicine and Biotechnology

Volume

44

Issue

3

Start Page

800

End Page

810
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Scopus : 0

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Mendeley Readers : 10

Web of Science™ Citations

1

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1

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1

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Sustainable Development Goals

3

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