Electrochemical nitric oxide sensors for biological samples - Principle, selected examples and applications

被引:210
作者
Bedioui, F
Villeneuve, N
机构
[1] Ecole Natl Super Chim Paris, UMR CNRS, Lab Electrochim & Chim Analyt, F-75231 Paris 05, France
[2] Inst Rech Servier, Div Pathol Cardiaques & Vasc, F-92150 Suresnes, France
关键词
nitric oxide; modified electrodes; sensors; electrochemistry; biological systems;
D O I
10.1002/elan.200390006
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The discoveries made in the 1980s that NO could be synthesized by mammalian cells and could act as physiological messenger and cytotoxic agent had elevated the importance of its detection. The numerous properties of NO, that enable it to carry out its diverse functions, also present considerable problems when attempting its detection and quantification in biological systems. Indeed, its total free concentration in physiological conditions has been established to be in nanomolar range. Thus, detection of nitric oxide remains a challenge, pointing out the difficult dual requirements for specificity and sensitivity. Exception made for the electrochemical techniques, most of the approaches (namely UV-visible spectroscopy, fluorescence, electron paramagnetic resonance spectroscopy) use indirect methods for estimating endogenous NO, relying on measurements of secondary species such as nitrite and nitrate or NO-adducts. They also suffer from allowing only ex situ measurements. So, the only strategies that allow a direct and in vivo detection of NO are those based on the use of ultramicroelectrodes. The reality is that surface electrode modification is needed to make the ultramicroelectrode material selective for NO. Therefore, the design of modified electrode surfaces using organized layers is very attractive and provides the ideal strategy. This review addresses a global description of the various approaches that have involved chemically modified microelectrodes specially designed for the electrochemical detection of NO in biological media. Selected significant examples of applications in biological tissues are also reported in order to highlight the importance of this approach in having new insights into the modulatory role of NO in physiology and pathophysiology.
引用
收藏
页码:5 / 18
页数:14
相关论文
共 136 条
  • [1] Electrode materials for nitric oxide detection
    Allen, BW
    Piantadosi, CA
    Coury, LA
    [J]. NITRIC OXIDE-BIOLOGY AND CHEMISTRY, 2000, 4 (01): : 75 - 84
  • [2] MEASUREMENT OF NITRIC-OXIDE IN BIOLOGICAL MODELS
    ARCHER, S
    [J]. FASEB JOURNAL, 1993, 7 (02) : 349 - 360
  • [3] Electrochemical sensors
    Bakker, E
    Telting-Diaz, M
    [J]. ANALYTICAL CHEMISTRY, 2002, 74 (12) : 2781 - 2800
  • [4] Stimulation of the NADPH oxidase in activated rat microglia removes nitric oxide but induces peroxynitrite production
    Bal-Price, A
    Matthias, A
    Brown, GC
    [J]. JOURNAL OF NEUROCHEMISTRY, 2002, 80 (01) : 73 - 80
  • [5] Oxidative damage and tyrosine nitration from peroxynitrite
    Beckman, JS
    [J]. CHEMICAL RESEARCH IN TOXICOLOGY, 1996, 9 (05) : 836 - 844
  • [6] BECKMAN JS, 1994, METHOD ENZYMOL, V233, P229
  • [7] THE USE OF GOLD ELECTRODES IN THE ELECTROCHEMICAL DETECTION OF NITRIC-OXIDE IN AQUEOUS-SOLUTION
    BEDIOUI, F
    TREVIN, S
    DEVYNCK, J
    [J]. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1994, 377 (1-2): : 295 - 298
  • [8] Practical aspects and methodological approaches to achieve electrochemical detection of submicromolar NO in biological systems
    Bedioui, F
    Trevin, S
    [J]. BIOSENSORS & BIOELECTRONICS, 1998, 13 (02) : 227 - 230
  • [9] Elaboration and use of nickel planar macrocyclic complex-based sensors for the direct electrochemical measurement of nitric oxide in biological media
    Bedioui, F
    Trevin, S
    Devynck, J
    Lantoine, F
    Brunet, A
    Devynck, MA
    [J]. BIOSENSORS & BIOELECTRONICS, 1997, 12 (03) : 205 - 212
  • [10] Chemically modified microelectrodes designed for the electrochemical determination of nitric oxide in biological systems
    Bedioui, F
    Trevin, S
    Devynck, J
    [J]. ELECTROANALYSIS, 1996, 8 (12) : 1085 - 1091