Methods to Monitor ROS Production by Fluorescence Microscopy and Fluorometry

Mitochondria are considered one of the main sources of reactive oxygen species (ROS). The overgeneration of ROS can evoke an intracellular state of oxidative stress, leading to permanent cell damage. Thus, the intracellular accumulation of ROS may not only disrupt the functions of specific tissues a...

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Veröffentlicht in:Methods in Enzymology 2014, Vol.542, p.243-262
Hauptverfasser: Wojtala, Aleksandra, Bonora, Massimo, Malinska, Dominika, Pinton, Paolo, Duszynski, Jerzy, Wieckowski, Mariusz R.
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container_start_page 243
container_title Methods in Enzymology
container_volume 542
creator Wojtala, Aleksandra
Bonora, Massimo
Malinska, Dominika
Pinton, Paolo
Duszynski, Jerzy
Wieckowski, Mariusz R.
description Mitochondria are considered one of the main sources of reactive oxygen species (ROS). The overgeneration of ROS can evoke an intracellular state of oxidative stress, leading to permanent cell damage. Thus, the intracellular accumulation of ROS may not only disrupt the functions of specific tissues and organs but also lead to the premature death of the entire organism. Less severe increases in ROS levels may lead to the nonlethal oxidation of fundamental cellular components, such as proteins, phospholipids, and DNA, hence exerting a mutagenic effect that promotes oncogenesis and tumor progression. Here, we describe the use of chemical probes for the rapid detection of ROS in intact and permeabilized adherent cells by fluorescence microscopy and fluorometry. Moreover, after discussing the limitations described in the literature for the fluorescent probes presented herein, we recommend methods to assess the production of specific ROS in various fields of investigation, including the study of oncometabolism.
doi_str_mv 10.1016/B978-0-12-416618-9.00013-3
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subjects Animals
Cytosol
Ethidium - analogs & derivatives
Ethidium - metabolism
Fluorenes - metabolism
Fluorescent Dyes - metabolism
Fluorometry - methods
Humans
Hydrogen peroxide
Microscopy, Fluorescence - methods
Mitochondria
Mitochondria - metabolism
Organophosphorus Compounds - metabolism
Oxazines
Permeability
Phenanthridines - metabolism
Proteins - analysis
Reactive oxygen species
Reactive Oxygen Species - analysis
Reactive Oxygen Species - metabolism
Respiratory chain
Superoxide anion
title Methods to Monitor ROS Production by Fluorescence Microscopy and Fluorometry
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