Imaging Approaches to Assessments of Toxicological Oxidative Stress Using Genetically-Encoded Fluorogenic Sensors

被引:0
作者
Corteselli, Elizabeth M. [1 ]
Samet, James M. [2 ]
Gibbs-Flournoy, Eugene [3 ]
机构
[1] Univ North Carolina Chapel Hill, Dept Environm Sci & Engn, Gillings Sch Global Publ Hlth, Chapel Hill, NC USA
[2] Natl Hlth & Environm Effects Res Lab, Environm Publ Hlth Div, Chapel Hill, NC USA
[3] Oak Ridge Inst Sci & Educ, Oak Ridge, TN USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2018年 / 132期
关键词
Oxidative stress; Toxicology; Fluorescence; Live-cell imaging; Glutathione; Hydrogen peroxide; FLUORESCENT PROTEIN INDICATORS; AIRWAY EPITHELIAL-CELLS; HYDROGEN-PEROXIDE; OXIDANT STRESS; NITRIC-OXIDE; ANTIOXIDANT CAPACITY; REDOX CHANGES; DYSFUNCTION; EXPOSURE; BIOLOGY;
D O I
10.3791/56945
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
While oxidative stress is a commonly cited toxicological mechanism, conventional methods to study it suffer from a number of shortcomings, including destruction of the sample, introduction of potential artifacts, and a lack of specificity for the reactive species involved. Thus, there is a current need in the field of toxicology for non-destructive, sensitive, and specific methods that can be used to observe and quantify intracellular redox perturbations, more commonly referred to as oxidative stress. Here, we present a method for the use of two geneticallyencoded fluorogenic sensors, roGFP2 and HyPer, to be used in live-cell imaging studies to observe xenobiotic-induced oxidative responses. roGFP2 equilibrates with the glutathione redox potential (EGSH), while HyPer directly detects hydrogen peroxide (H2O2). Both sensors can be expressed into various cell types via transfection or transduction, and can be targeted to specific cellular compartments. Most importantly, livecell microscopy using these sensors offers high spatial and temporal resolution that is not possible using conventional methods. Changes in the fluorescence intensity monitored at 510 nm serves as the readout for both genetically-encoded fluorogenic sensors when sequentially excited by 404 nm and 488 nm light. This property makes both sensors ratiometric, eliminating common microscopy artifacts and correcting for differences in sensor expression between cells. This methodology can be applied across a variety of fluorometric platforms capable of exciting and collecting emissions at the prescribed wavelengths, making it suitable for use with confocal imaging systems, conventional wide-field microscopy, and plate readers. Both genetically-encoded fluorogenic sensors have been used in a variety of cell types and toxicological studies to monitor cellular EGSH and H2O2 generation in real-time. Outlined here is a standardized method that is widely adaptable across cell types and fluorometric platforms for the application of roGFP2 and HyPer in live-cell toxicological assessments of oxidative stress.
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页数:10
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共 52 条
  • [1] Stepping up melanocytes to the challenge of UV exposure
    Abdel-Malek, Zalfa A.
    Kadekaro, Ana Luisa
    Swope, Viki B.
    [J]. PIGMENT CELL & MELANOMA RESEARCH, 2010, 23 (02) : 171 - 186
  • [2] A Facile Method for the Detection of Aldehydes in Oxidized Lipids Using Solid-Phase Microextraction Fiber and Gas Chromatograph Equipped with a Septum-Free Injector
    Arato, Shingo
    Ito, Hiroshi
    Miyashita, Kazuo
    Hayakawa, Kazuichi
    Itabashi, Yutaka
    [J]. JOURNAL OF OLEO SCIENCE, 2009, 58 (01) : 17 - 22
  • [3] Glutathione dysregulation and the etiology and progression of human diseases
    Ballatori, Nazzareno
    Krance, Suzanne M.
    Notenboom, Sylvia
    Shi, Shujie
    Tieu, Kim
    Hammond, Christine L.
    [J]. BIOLOGICAL CHEMISTRY, 2009, 390 (03) : 191 - 214
  • [4] Genetically encoded fluorescent indicator for intracellular hydrogen peroxide
    Belousov, VV
    Fradkov, AF
    Lukyanov, KA
    Staroverov, DB
    Shakhbazov, KS
    Terskikh, AV
    Lukyanov, S
    [J]. NATURE METHODS, 2006, 3 (04) : 281 - 286
  • [5] NITRIC-OXIDE MEDIATES OXIDANT TISSUE-INJURY CAUSED BY PARAQUAT AND XANTHINE-OXIDASE
    BERISHA, H
    PAKBAZ, H
    ABSOOD, A
    FODA, HD
    SAID, SI
    [J]. CELLULAR, BIOCHEMICAL, AND MOLECULAR ASPECTS OF REPERFUSION INJURY, 1994, 723 : 422 - 425
  • [6] Multiparametric optical analysis of mitochondrial redox signals during neuronal physiology and pathology in vivo
    Breckwoldt, Michael
    Pfister, Franz M. J.
    Bradley, Peter M.
    Marinkovic, Petar
    Williams, Philip R.
    Brilll, Monika S.
    Plomer, Barbara
    Schmalz, Anja
    St Clair, Daret K.
    Naumann, Ronald
    Griesbeck, Oliver
    Schwarzlaender, Markus
    Godinho, Leanne
    Bareyre, Florence M.
    Dick, Tobias P.
    Kerschensteiner, Martin
    Misgeld, Thomas
    [J]. NATURE MEDICINE, 2014, 20 (05) : 559 - 122
  • [7] Kinetic and mechanistic considerations to assess the biological fate of peroxynitrite
    Carballal, Sebastian
    Bartesaghi, Silvina
    Radi, Rafael
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2014, 1840 (02): : 768 - 780
  • [8] Gel-based methods in redox proteomics
    Charles, Rebecca
    Jayawardhana, Tamani
    Eaton, Philip
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2014, 1840 (02): : 830 - 837
  • [9] Monitoring intracellular oxidative events using dynamic spectral unmixing microscopy
    Cheng, Wan-Yun
    Larson, Jeffrey M.
    Samet, James M.
    [J]. METHODS, 2014, 66 (02) : 345 - 352
  • [10] Linking Oxidative Events to Inflammatory and Adaptive Gene Expression Induced by Exposure to an Organic Particulate Matter Component
    Cheng, Wan-Yun
    Currier, Jenna
    Bromberg, Philip A.
    Silbajoris, Robert
    Simmons, Steven O.
    Samet, James M.
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 2012, 120 (02) : 267 - 274