Preface |
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xi | |
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xiii | |
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Nitric Oxide: Chemistry, Biosynthesis, and Physiological Role |
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1 | (16) |
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1 | (1) |
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2 | (1) |
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Biosynthesis of Nitric Oxide |
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3 | (2) |
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Physiological Role of Nitric Oxide |
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5 | (5) |
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Effect of Nitric Oxide on Seed Dormancy |
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5 | (1) |
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Effect of Nitric Oxide on Growth |
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6 | (1) |
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Effect of Nitric Oxide on Senescence |
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6 | (1) |
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Effect of Nitric Oxide on Nitrate Reductase Activity |
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7 | (1) |
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Effect of Nitric Oxide on Respiration |
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7 | (1) |
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Effect of Nitric Oxide on Stomatal Movement |
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7 | (1) |
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Effect of Nitric Oxide on Chlorophyll Content |
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7 | (1) |
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Effect of Nitric Oxide on Photosynthesis |
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8 | (1) |
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Effect of Nitric Oxide on Antioxidant System |
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8 | (1) |
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Effect of Nitric Oxide on Programmed Cell Death |
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9 | (1) |
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Nitric Oxide and Cross Talk with Classical Plant Hormones |
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10 | (7) |
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10 | (1) |
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Abscisic Acid and Nitric Oxide |
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11 | (1) |
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Cytokinins, Gibberellins, and Nitric Oxide |
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11 | (1) |
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Ethylene and Nitric Oxide |
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12 | (1) |
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12 | (5) |
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Electron Paramagnetic Resonance as a Tool to Study Nitric Oxide Generation in Plants |
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17 | (14) |
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17 | (2) |
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Chemistry of Nitrogen-Active Species |
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17 | (1) |
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18 | (1) |
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19 | (3) |
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Determination of NO by Specific Electrodes |
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19 | (1) |
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Determination of NO by Spectrophotometric and Fluorometric Methods |
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19 | (1) |
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Determination of NO by Electron Paramagnetic Resonance |
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20 | (1) |
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Specific Experimental Advances |
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20 | (2) |
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Use of EPR Methodology for Assaying Enzyme Activities |
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22 | (4) |
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NOS-Like Dependent NO Generation |
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24 | (1) |
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Nitrate Reductase-Dependent NO Generation |
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24 | (2) |
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Application of EPR Methods to Assess NO Generation During Plant Development |
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26 | (1) |
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27 | (4) |
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27 | (4) |
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Calcium, No, and cGMP Signaling in Plant Cell Polarity |
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31 | (20) |
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David Marshall Porterfield |
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31 | (2) |
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Cell Polarity and Plant Gametophyte Development |
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33 | (1) |
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Calcium Signaling in Pollen and Fern Spores |
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34 | (1) |
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NO/cGMP Signaling in Pollen and Fern Spores |
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35 | (3) |
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NO/cGMP in Pollen-Pistil Interactions |
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38 | (1) |
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Ovule Targeting and NO/cGMP |
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39 | (3) |
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42 | (4) |
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46 | (5) |
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48 | (3) |
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Nitric Oxide and Abiotic Stress in Higher Plants |
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51 | (14) |
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51 | (1) |
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Nitric Oxide and Related Molecules |
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52 | (2) |
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Chemistry of Nitric Oxide in Plant Cells |
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52 | (1) |
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Reactive Nitrogen Species |
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52 | (2) |
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54 | (3) |
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54 | (1) |
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55 | (1) |
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Protein Tyrosine Nitration |
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55 | (1) |
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55 | (1) |
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56 | (1) |
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56 | (1) |
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Functions of NO in Plant Abiotic Stress |
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57 | (3) |
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57 | (1) |
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58 | (1) |
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58 | (1) |
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59 | (1) |
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Toxic Metals (Cadmium and Aluminum) |
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59 | (1) |
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60 | (5) |
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61 | (4) |
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Polyamines and Cytokinin: is Nitric Oxide Biosynthesis the Key to Overlapping Functions? |
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65 | (12) |
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65 | (1) |
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Cytokinin-and Polyamine-Induced NO Biosynthesis |
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66 | (1) |
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Tissue Distribution of Zeatin-Induced and PA-Induced NO Formation |
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67 | (1) |
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Nitric Oxide, Cytokinin, and Polyamines in Plant Growth and Development and in Abiotic and Biotic Stresses |
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68 | (9) |
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68 | (1) |
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69 | (1) |
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69 | (1) |
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69 | (1) |
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70 | (1) |
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71 | (2) |
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73 | (4) |
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Role of Nitric Oxide in Programmed Cell Death |
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77 | (12) |
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Programmed Cell Death in Plants |
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77 | (2) |
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PCD Hallmarks and Regulation |
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78 | (1) |
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NO as a Signaling Molecule |
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79 | (5) |
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NO is Able to Induce or Inhibit PCD |
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79 | (1) |
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Nitric Oxide and PCD in Hypersensitive Response |
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80 | (1) |
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Signaling Component in SA-Induced NO Production |
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80 | (4) |
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Role of Mitochondria in NO-Induced PCD |
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84 | (1) |
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85 | (4) |
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85 | (4) |
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Nitrate Reductase-Deficient Plants: A Model to Study Nitric Oxide Production and Signaling in Plant Defense Response to Pathogen Attack |
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89 | (14) |
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Halley Caixeta de Oliveira |
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89 | (2) |
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Physicochemical Basis of NO Signaling |
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91 | (1) |
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Defense Responses Mediated by NO |
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92 | (3) |
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Accumulation of Defensive Compounds |
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92 | (1) |
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93 | (1) |
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94 | (1) |
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94 | (1) |
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Substrates for NO Production During Plant-Pathogen Interactions |
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95 | (2) |
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Production of NO from L-Arginine |
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95 | (1) |
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Production of NO from Nitrite |
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95 | (2) |
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The Role of Nitrate Reductase in NO Production During Plant-Pathogen Interactions |
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97 | (6) |
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98 | (5) |
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Effective Plant Protection Weapons Against Pathogens Require ``NO Bullets'' |
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103 | (12) |
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103 | (1) |
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Nitric Oxide and Reactive Oxygen Species in the Hypersensitive Response |
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104 | (3) |
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Nitric Oxide and Phytoalexin Production |
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107 | (1) |
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Nitric Oxide and the Salicylic Acid Signaling Pathway |
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108 | (1) |
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Nitric Oxide and the Jasmonic Acid Signaling Pathway |
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109 | (1) |
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Nitric Oxide and Gene Regulation |
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109 | (1) |
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Nitric Oxide and Protein Regulation |
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110 | (1) |
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111 | (4) |
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111 | (4) |
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The Role of Nitric Oxide as a Bioactive Signaling Molecule in Plants Under Abiotic Stress |
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115 | (24) |
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116 | (1) |
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Biosynthesis of Nitric Oxide Under Abiotic Stress |
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116 | (5) |
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NO Generated from NOS-Like Activity Under Abiotc Stress |
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116 | (4) |
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NO Generated from NR Under Abiotic Stress |
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120 | (1) |
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NO Signaling Functions in Abiotic Stress Responses |
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121 | (7) |
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Function of NO Under Drought Stress |
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122 | (1) |
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Function of NO Under Salt Stress |
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123 | (2) |
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Function of NO Under Ultraviolet Radiation |
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125 | (1) |
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Function of NO Under Heat and Low Temperature |
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126 | (1) |
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Function of NO Under Heavy Metal Stress |
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126 | (1) |
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Function of NO Under Other Abiotic Stresses |
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127 | (1) |
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NO Signal Transduction in Plants Under Abiotic Stress |
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128 | (3) |
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128 | (1) |
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Downstream Signaling for NO Action |
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129 | (2) |
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Interactions of NO Signaling with Other Signaling Molecules in Plant Response to Abiotic Stress |
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131 | (8) |
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135 | (4) |
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Interplay Between Nitric Oxide and Other Signals Involved in Plant Resistance to Pathogens |
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139 | (22) |
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Jolanta Floryszak-Wieczorek |
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Magdalena Arasimowicz-Jelonek |
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139 | (1) |
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140 | (2) |
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Cooperation of NO with H2O2 in Triggering Programmed Cell Death |
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142 | (3) |
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Cross Talk of NO with Salicylic Acid, Jasmonic Acid, and Ethylene |
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145 | (1) |
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The Role of NO in the Micro-and Macroscale of Plant Communication |
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146 | (3) |
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147 | (1) |
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NO in Short-Distance Communication |
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147 | (1) |
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NO from Cross-to Long-Distance Communication |
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148 | (1) |
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Does NO Participate in Stressful Memory of the Plant? |
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149 | (2) |
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NO and Plant Recovery from Stress |
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151 | (3) |
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NO in the Offensive Strategy of the Pathogen |
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154 | (1) |
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155 | (6) |
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155 | (6) |
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Nitric Oxide Signaling by Plant-Associated Bacteria |
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161 | (12) |
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161 | (1) |
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Production of Nitric Oxide by Bacteria |
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162 | (2) |
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162 | (1) |
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163 | (1) |
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164 | (1) |
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Regulatory Roles for Nitric Oxide in Bacteria |
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164 | (2) |
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164 | (1) |
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Regulation of Biofilm Formation |
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165 | (1) |
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Stimulation of Oxidative and Nitrosative Defenses |
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165 | (1) |
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Bacterial Nitric Oxide in Plant-Bacteria Interactions |
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166 | (7) |
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Production of NO in Response to Plant Products |
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166 | (1) |
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Plant Responses to Bacterial NO: The Azospirillum-Tomato Interaction |
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166 | (3) |
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169 | (1) |
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169 | (4) |
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Nitric Oxide Synthase-Like Protein in Pea (Pisum sativum L.) |
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173 | (16) |
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173 | (1) |
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Physiological and Immunoblot Analyses of NOS-Like Protein of Pea |
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174 | (3) |
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Isolation and Characterization of an NOS-Like Protein of Pea |
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177 | (4) |
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Molecular Cloning and Analyses of an NOS-Like Gene of Pea |
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181 | (3) |
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Correlation Study of NOS-Like Gene Expression and NOS Activity in Compatible and Incompatible Pea-Bacteria Interactions |
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184 | (5) |
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185 | (4) |
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Posttranslational Modifications of Proteins by Nitric Oxide: A New Tool of Metabolome Regulation |
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189 | (14) |
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189 | (1) |
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190 | (7) |
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S-Nitrosylation and Ethylene Biosynthesis |
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191 | (1) |
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S-Nitrosylation and Photosynthesis |
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192 | (2) |
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S-Nitrosylation and Glycolysis |
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194 | (1) |
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S-Nitrosylation and Biotic/Abiotic Stresses |
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195 | (2) |
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197 | (1) |
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198 | (1) |
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Conclusions and Prospects |
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198 | (5) |
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200 | (3) |
Index |
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