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  4. Identification of Oxidative Stress in Red Blood Cells with Nanoscale Chemical Resolution by Infrared Nanospectroscopy
 
research article

Identification of Oxidative Stress in Red Blood Cells with Nanoscale Chemical Resolution by Infrared Nanospectroscopy

Ruggeri, Francesco S.  
•
Marcott, Curtis
•
Dinarelli, Simone
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September 1, 2018
International Journal Of Molecular Sciences

During their lifespan, Red blood cells (RBC), due to their inability to self-replicate, undergo an ageing degradation phenomenon. This pathway, both in vitro and in vivo, consists of a series of chemical and morphological modifications, which include deviation from the biconcave cellular shape, oxidative stress, membrane peroxidation, lipid content decrease and uncoupling of the membrane-skeleton from the lipid bilayer. Here, we use the capabilities of atomic force microscopy based infrared nanospectroscopy (AFM-IR) to study and correlate, with nanoscale resolution, the morphological and chemical modifications that occur during the natural degradation of RBCs at the subcellular level. By using the tip of an AFM to detect the photothermal expansion of RBCs, it is possible to obtain nearly two orders of magnitude higher spatial resolution IR spectra, and absorbance images than can be obtained on diffraction-limited commercial Fourier-transform Infrared (FT-IR) microscopes. Using this approach, we demonstrate that we can identify localized sites of oxidative stress and membrane peroxidation on individual RBC, before the occurrence of neat morphological changes in the cellular shape.

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Type
research article
DOI
10.3390/ijms19092582
Web of Science ID

WOS:000449988100118

Author(s)
Ruggeri, Francesco S.  
Marcott, Curtis
Dinarelli, Simone
Longo, Giovanni  
Girasole, Marco
Dietler, Giovanni  
Knowles, Tuomas P. J.
Date Issued

2018-09-01

Published in
International Journal Of Molecular Sciences
Volume

19

Issue

9

Article Number

2582

Subjects

Biochemistry & Molecular Biology

•

Chemistry, Multidisciplinary

•

Biochemistry & Molecular Biology

•

Chemistry

•

red blood cells

•

infrared nanospectroscopy

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atomic force microscopy

•

oxidative stress

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membrane peroxidation

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atomic-force microscopy

•

fourier-transform

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in-vivo

•

erythrocytes

•

spectroscopy

•

fluctuations

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peroxidation

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transfusion

•

lipids

•

shape

Note

This is an open access article under the terms of the Creative Commons Attribution License

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPMV  
Available on Infoscience
December 13, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/152402
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