Literature DB >> 21864658

Autofluorescence microscopy: a non-destructive tool to monitor mitochondrial toxicity.

Robim M Rodrigues1, Peter Macko, Taina Palosaari, Maurice P Whelan.   

Abstract

Visualization of NADH by fluorescence microscopy makes it possible to distinguish mitochondria inside living cells, allowing structure analysis of these organelles in a non-invasive way. Mitochondrial morphology is determined by the occurrence of mitochondrial fission and fusion. During normal cell function mitochondria appear as elongated tubular structures. However, cellular malfunction induces mitochondria to fragment into punctiform, vesicular structures. This change in morphology is associated with the generation of reactive oxygen species (ROS) and early apoptosis. The aim of this study is to demonstrate that autofluorescence imaging of mitochondria in living eukaryotic cells provides structural and morphological information that can be used to assess mitochondrial health. We firstly established the illumination conditions that do not affect mitochondrial structure and calculated the maximum safe light dose to which the cells can be exposed. Subsequently, sequential recording of mitochondrial fluorescence was performed and changes in mitochondrial morphology were monitored in a continuous non-destructive way. This approach was then used to assess mitochondrial toxicity induced by potential toxicants exposed to mammalian cells. Both mouse and human cells were used to evaluate mitochondrial toxicity of different compounds with different toxicities. This technique constitutes a novel and promising approach to explore chemical induced toxicity because of its reliability to monitor mitochondrial morphology changes and corresponding toxicity in a non-invasive way.
Copyright © 2011 Elsevier Ireland Ltd. All rights reserved.

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Year:  2011        PMID: 21864658     DOI: 10.1016/j.toxlet.2011.06.025

Source DB:  PubMed          Journal:  Toxicol Lett        ISSN: 0378-4274            Impact factor:   4.372


  12 in total

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2.  Integration of diffraction phase microscopy and Raman imaging for label-free morpho-molecular assessment of live cells.

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Review 3.  OXPHOS mutations and neurodegeneration.

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Review 4.  Mitochondrial network in the heart.

Authors:  Qian Li; Lu-Yu Zhou; Gui-Feng Gao; Jian-Qin Jiao; Pei-Feng Li
Journal:  Protein Cell       Date:  2012-07-01       Impact factor: 14.870

5.  Distinguishing chemically induced NADPH- and NADH-related metabolic responses using phasor analysis of UV-excited autofluorescence.

Authors:  Audrey H Short; Nazar Al Aayedi; Madhu Gaire; Max Kreider; Chong Kai Wong; Paul Urayama
Journal:  RSC Adv       Date:  2021-05-24       Impact factor: 4.036

6.  Anticancer/antiviral agent Akt inhibitor-IV massively accumulates in mitochondria and potently disrupts cellular bioenergetics.

Authors:  J Matthew Meinig; Blake R Peterson
Journal:  ACS Chem Biol       Date:  2014-12-01       Impact factor: 5.100

7.  Mitochondrial numbers increase during glucose deprivation in the slime mold Physarum polycephalum.

Authors:  Christina Oettmeier; Hans-Günther Döbereiner
Journal:  Protoplasma       Date:  2019-07-02       Impact factor: 3.356

8.  Lasing with cell-endogenous fluorophores: parameters and conditions.

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Journal:  Sci Rep       Date:  2017-10-19       Impact factor: 4.379

9.  Spectrally and spatially resolved laser-induced photobleaching of endogenous flavin fluorescence in cardiac myocytes.

Authors:  Alzbeta Marcek Chorvatova; Jana Kirchnerova; Michal Cagalinec; Anton Mateasik; Dusan Chorvat
Journal:  Cytometry A       Date:  2018-09-21       Impact factor: 4.355

10.  Intrinsic anti-Stokes emission in living HeLa cells.

Authors:  Laura Kacenauskaite; Dovydas Gabrielaitis; Nicolai Bærentsen; Karen L Martinez; Tom Vosch; Bo W Laursen
Journal:  PLoS One       Date:  2020-03-16       Impact factor: 3.240

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