4.7 Article

Decrease in membrane fluidity and traction force induced by silica-coated magnetic nanoparticles

Journal

JOURNAL OF NANOBIOTECHNOLOGY
Volume 19, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s12951-020-00765-5

Keywords

Cell movement; Membrane fluidity; Micropillar; Silica-coated magnetic nanoparticles; Traction force

Funding

  1. National Research Foundation - Ministry of Science and ICT (MSIP) of Korea [2018R1D1A1B07049494, 2018R1A2B2002066]
  2. BioNano Health-Guard Research Center through the National Research Foundation - Ministry of Science and ICT (MSIP) of Korea [H-GUARD_2018M3A6B2057299, 2020R1C1C1008366, 2020R1A4A4079722, 2020M3E5D9080661, 2016M3C7A1904392]
  3. National Research Foundation of Korea [2018R1A2B2002066, 2020R1A4A4079722, 2020R1C1C1008366, 4199990313853, 2018R1D1A1B07049494, 2020M3E5D9080661, 2016M3C7A1904392] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Overdose of MNPs@SiO2(RITC) induced lipid peroxidation and decreased membrane fluidity in HEK293 cells. The aspect ratio of cells decreased, traction force increased, and cell movement velocity decreased. Metabotranscriptomics network analysis revealed interplay among lipid peroxidation, focal adhesion, and cell movement.
Background Nanoparticles are being increasingly used in biomedical applications owing to their unique physical and chemical properties and small size. However, their biophysical assessment and evaluation of side-effects remain challenging. We addressed this issue by investigating the effects of silica-coated magnetic nanoparticles containing rhodamine B isothiocyanate [MNPs@SiO2(RITC)] on biophysical aspects, such as membrane fluidity and traction force of human embryonic kidney 293 (HEK293) cells. We further extended our understanding on the biophysical effects of nanoparticles on cells using a combination of metabolic profiling and transcriptomic network analysis. Results Overdose (1.0 mu g/mu L) treatment with MNPs@SiO2(RITC) induced lipid peroxidation and decreased membrane fluidity in HEK293 cells. In addition, HEK293 cells were morphologically shrunk, and their aspect ratio was significantly decreased. We found that each traction force (measured in micropillar) was increased, thereby increasing the total traction force in MNPs@SiO2(RITC)-treated HEK293 cells. Due to the reduction in membrane fluidity and elevation of traction force, the velocity of cell movement was also significantly decreased. Moreover, intracellular level of adenosine triphosphate (ATP) was also decreased in a dose-dependent manner upon treatment with MNPs@SiO2(RITC). To understand these biophysical changes in cells, we analysed the transcriptome and metabolic profiles and generated a metabotranscriptomics network, which revealed relationships among peroxidation of lipids, focal adhesion, cell movement, and related genes and metabolites. Furthermore, in silico prediction of the network showed increment in the peroxidation of lipids and suppression of focal adhesion and cell movement. Conclusion Taken together, our results demonstrated that overdose of MNPs@SiO2(RITC) impairs cellular movement, followed by changes in the biophysical properties of cells, thus highlighting the need for biophysical assessment of nanoparticle-induced side-effects.

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