Redox-sensitive YFP sensors for monitoring dynamic compartment-specific glutathione redox state. 2013

Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
Centre National de la Recherche Scientifique, UMR3348, Genotoxic Stress and Cancer, Orsay, 91405, France; Institut Curie, Centre de Recherche, Orsay, 91405, France.

Intracellular redox homeostasis is crucial for many cellular functions but accurate measurements of cellular compartment-specific redox states remain technically challenging. Genetically encoded biosensors including the glutathione-specific redox-sensitive yellow fluorescent protein (rxYFP) may provide an alternative way to overcome the limitations of conventional glutathione/glutathione disulfide (GSH/GSSG) redox measurements. This study describes the use of rxYFP sensors for investigating compartment-specific steady redox state and their dynamics in response to stress in human cells. RxYFP expressed in the cytosol, nucleus, or mitochondrial matrix of HeLa cells was responsive to the intracellular redox state changes induced by reducing as well as oxidizing agents. Compartment-targeted rxYFP sensors were able to detect different steady-state redox conditions among the cytosol, nucleus, and mitochondrial matrix. These sensors expressed in human epidermal keratinocytes HEK001 responded to stress induced by ultraviolet A radiation in a dose-dependent manner. Furthermore, rxYFP sensors were able to sense dynamic and compartment-specific redox changes caused by 100 μM hydrogen peroxide (H2O2). Mitochondrial matrix-targeted rxYFP displayed a greater dynamics of oxidation in response to a H2O2 challenge than the cytosol- and nucleus-targeted sensors, largely due to a more alkaline local pH environment. These observations support the view that mitochondrial glutathione redox state is maintained and regulated independently from that of the cytosol and nucleus. Taken together, our data show the robustness of the rxYFP sensors to measure compartmental redox changes in human cells. Complementary to existing redox sensors and conventional redox measurements, compartment-targeted rxYFP sensors provide a novel tool for examining mammalian cell redox homeostasis, permitting high-resolution readout of steady glutathione state and dynamics of redox changes.

UI MeSH Term Description Entries
D008164 Luminescent Proteins Proteins which are involved in the phenomenon of light emission in living systems. Included are the "enzymatic" and "non-enzymatic" types of system with or without the presence of oxygen or co-factors. Bioluminescent Protein,Bioluminescent Proteins,Luminescent Protein,Photoprotein,Photoproteins,Protein, Bioluminescent,Protein, Luminescent,Proteins, Bioluminescent,Proteins, Luminescent
D010084 Oxidation-Reduction A chemical reaction in which an electron is transferred from one molecule to another. The electron-donating molecule is the reducing agent or reductant; the electron-accepting molecule is the oxidizing agent or oxidant. Reducing and oxidizing agents function as conjugate reductant-oxidant pairs or redox pairs (Lehninger, Principles of Biochemistry, 1982, p471). Redox,Oxidation Reduction
D002460 Cell Line Established cell cultures that have the potential to propagate indefinitely. Cell Lines,Line, Cell,Lines, Cell
D005978 Glutathione A tripeptide with many roles in cells. It conjugates to drugs to make them more soluble for excretion, is a cofactor for some enzymes, is involved in protein disulfide bond rearrangement and reduces peroxides. Reduced Glutathione,gamma-L-Glu-L-Cys-Gly,gamma-L-Glutamyl-L-Cysteinylglycine,Glutathione, Reduced,gamma L Glu L Cys Gly,gamma L Glutamyl L Cysteinylglycine
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D001426 Bacterial Proteins Proteins found in any species of bacterium. Bacterial Gene Products,Bacterial Gene Proteins,Gene Products, Bacterial,Bacterial Gene Product,Bacterial Gene Protein,Bacterial Protein,Gene Product, Bacterial,Gene Protein, Bacterial,Gene Proteins, Bacterial,Protein, Bacterial,Proteins, Bacterial
D014162 Transfection The uptake of naked or purified DNA by CELLS, usually meaning the process as it occurs in eukaryotic cells. It is analogous to bacterial transformation (TRANSFORMATION, BACTERIAL) and both are routinely employed in GENE TRANSFER TECHNIQUES. Transfections
D015153 Blotting, Western Identification of proteins or peptides that have been electrophoretically separated by blot transferring from the electrophoresis gel to strips of nitrocellulose paper, followed by labeling with antibody probes. Immunoblotting, Western,Western Blotting,Western Immunoblotting,Blot, Western,Immunoblot, Western,Western Blot,Western Immunoblot,Blots, Western,Blottings, Western,Immunoblots, Western,Immunoblottings, Western,Western Blots,Western Blottings,Western Immunoblots,Western Immunoblottings
D015374 Biosensing Techniques Any of a variety of procedures which use biomolecular probes to measure the presence or concentration of biological molecules, biological structures, microorganisms, etc., by translating a biochemical interaction at the probe surface into a quantifiable physical signal. Bioprobes,Biosensors,Electrodes, Enzyme,Biosensing Technics,Bioprobe,Biosensing Technic,Biosensing Technique,Biosensor,Electrode, Enzyme,Enzyme Electrode,Enzyme Electrodes,Technic, Biosensing,Technics, Biosensing,Technique, Biosensing,Techniques, Biosensing

Related Publications

Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
January 2015, Methods in molecular biology (Clifton, N.J.),
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
April 2012, The Journal of biological chemistry,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
January 2019, Frontiers in physiology,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
July 2020, IEEE transactions on bio-medical engineering,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
June 2020, Journal of visualized experiments : JoVE,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
October 2004, Analytical chemistry,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
January 2006, Disease markers,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
February 2000, Free radical biology & medicine,
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
September 2022, Advanced materials (Deerfield Beach, Fla.),
Agata Banach-Latapy, and Tiantian He, and Michèle Dardalhon, and Laurence Vernis, and Roland Chanet, and Meng-Er Huang
February 2015, Biochemical and biophysical research communications,
Copied contents to your clipboard!