Preface |
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xi | |
Foreword |
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xiii | |
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xv | |
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A BIOLOGY AND BIODIVERSITY |
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1 Biodiversity of the Genus Hypocrea/Trichoderma in Different Habitats |
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3 | (1) |
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Methodology of Studying Trichoderma Biodiversity |
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3 | (2) |
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Trichoderma Diversity in Different Habitats |
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5 | (13) |
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18 | (1) |
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18 | (1) |
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18 | (7) |
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2 Ecophysiology of Trichoderma in Genomic Perspective |
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Trichoderma in Its Ecological Niche |
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25 | (2) |
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From Diversity to Genomics |
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27 | (1) |
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Mycotrophy of Trichoderma |
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28 | (2) |
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Saprotrophy of Trichoderma on Dead Wood |
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30 | (1) |
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Trichoderma Growth in Soil |
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31 | (1) |
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Rhizosphere Competence of Trichoderma |
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32 | (1) |
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Trichoderma versus Mycorrhizae |
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32 | (1) |
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Trichoderma + Bacteria = ? |
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33 | (1) |
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Facultative Endophytism of Trichoderma |
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33 | (1) |
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Animal Nourishment of Trichoderma |
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34 | (1) |
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Most of the Famous Trichoderma Species are Environmental Opportunists |
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34 | (1) |
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Versatile Carbon Utilization Patterns Reflect Ecological Specialization of Trichoderma spp |
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35 | (2) |
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37 | (1) |
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37 | (4) |
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3 DNA Barcode for Species Identification in Trichoderma |
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41 | (1) |
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42 | (1) |
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Application of DNA Barcoding in Species-Level Identification of Trichoderma |
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43 | (1) |
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43 | (2) |
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45 | (2) |
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Identification of Industrial Trichoderma Strains |
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47 | (1) |
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Identification of Biocontrol Trichoderma Strains |
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48 | (2) |
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Identification of Trichoderma Isolates with Clinical Relevance |
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50 | (1) |
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Identification of Mushroom Pathogenic Trichoderma Strains |
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51 | (1) |
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51 | (1) |
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52 | (1) |
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52 | (5) |
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4 Understanding the Diversity and Versatility of Trichoderma by Next-Generation Sequencing |
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57 | (1) |
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Access to Fungal and Trichoderma Diversity---Taxonomic Profiling |
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58 | (4) |
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Plants Life under Control of Trichoderma---Functional Profiling |
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62 | (1) |
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63 | (1) |
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63 | (1) |
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63 | (4) |
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5 Molecular Evolution of Trichoderma Chitinases |
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67 | (1) |
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Phylogeny and Evolution of the GH Family 18 Gene Family in Trichoderma |
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68 | (1) |
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69 | (2) |
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71 | (3) |
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74 | (3) |
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77 | (1) |
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77 | (1) |
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77 | (4) |
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B SECRETION AND PROTEIN PRODUCTION |
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6 Protein Production---Quality Control and Secretion Stress Responses in Trichoderma reesei |
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Introduction---Milestones of Trichoderma reesei |
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81 | (1) |
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Protein Secretome of T. reesei |
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82 | (2) |
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ER Quality Control and Secretion Stress Responses |
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84 | (2) |
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86 | (1) |
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86 | (3) |
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7 Heterologous Expression of Proteins in Trichoderma |
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89 | (3) |
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92 | (1) |
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93 | (1) |
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94 | (1) |
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Secretion Stress in the Frame |
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95 | (2) |
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Mass Production of Heterologous Protein by Fermentation |
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97 | (1) |
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N-glycosylation of Heterologous Proteins Produced in T. reesei |
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97 | (1) |
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98 | (1) |
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99 | (1) |
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99 | (4) |
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8 Trichoderma Secretome: An Overview |
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103 | (2) |
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Proteomic Analysis of Secretory Proteins |
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105 | (1) |
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Extraction of Extracellular Proteins for Proteomic Analysis |
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106 | (1) |
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Extracellular Protein Secretion by T. reesei |
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107 | (1) |
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Polysaccharide Degradation Machinery of T. reesei |
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108 | (1) |
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New Candidates in Cellulose Degradation |
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109 | (1) |
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Hemicellulose Hydrolyzing Enzymes |
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110 | (1) |
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Lignin Degradation by T. reesei |
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111 | (1) |
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Industrial Applications of T. reesei Cellulolytic Enzymes |
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111 | (1) |
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112 | (1) |
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112 | (3) |
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9 The Secretory Pathway in the Filamentous Fungus Trichoderma |
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Marco J. Hernandez-Chavez |
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Roberto J. Gonzalez-Hernandez |
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Jose E. Trujillo-Esquivel |
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Arturo Hernandez-Cervantes |
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115 | (1) |
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115 | (1) |
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Cotranslational Translocation |
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116 | (1) |
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Post Translational Translocation |
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116 | (1) |
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Protein Modifications in the ER |
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116 | (2) |
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Vesicle Transport from ER to Golgi Complex and Trafficking within the Golgi Cisternae |
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118 | (1) |
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Transport after Trafficking within the Golgi Complex |
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119 | (1) |
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Secreted Proteins in Trichoderma |
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119 | (1) |
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120 | (1) |
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120 | (1) |
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120 | (5) |
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10 Secondary Metabolism and Antimicrobial Metabolites of Trichoderma |
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125 | (1) |
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126 | (3) |
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Diketopiperazine-Like Compounds |
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129 | (1) |
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129 | (1) |
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130 | (1) |
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131 | (2) |
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Concluding Remarks and Future Directions |
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133 | (1) |
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134 | (1) |
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134 | (5) |
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11 Recent Advancements on the Role and Analysis of Volatile Compounds (VOCs) from Trichoderma |
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139 | (1) |
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Detection Techniques of VOCs |
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140 | (2) |
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Types of Volatiles Compounds |
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142 | (23) |
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Application of VOCs in Agriculture |
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165 | (3) |
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168 | (1) |
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168 | (11) |
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12 Molecular Tools for Strain Improvement of Trichoderma spp |
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179 | (1) |
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Genetic Transformation Techniques |
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180 | (1) |
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Auxotrophic and Dominant Selection Markers |
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181 | (1) |
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Marker Recycling Strategies and Marker Free Strains |
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182 | (1) |
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Advanced Methods for Gene Targeting |
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183 | (1) |
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RNA Mediated Gene Silencing |
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184 | (1) |
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Promoters for Recombinant Protein Expression and Targeting |
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185 | (3) |
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188 | (1) |
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188 | (5) |
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13 Genetic Transformation and Engineering of Trichoderma reesei for Enhanced Enzyme Production |
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193 | (1) |
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Engineering Cellulase and Hemicellulase Regulation |
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194 | (1) |
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Homologous and Heterologous Gene Expression and Gene Disruption |
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195 | (1) |
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196 | (1) |
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197 | (1) |
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198 | (1) |
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198 | (3) |
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14 Applications of RNA Interference for Enhanced Cellulase Production in Trichoderma |
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201 | (1) |
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RNA Interference in Fungus |
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202 | (1) |
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Transcriptional Regulation of Cellulase Gene Expression |
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203 | (1) |
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Application of Gene Downregulation Strategy for Enhanced Cellulase Production |
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204 | (4) |
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Combination of RNAi and Overexpression of the Regulating Genes |
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208 | (3) |
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Conclusions and Prospects |
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211 | (1) |
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211 | (4) |
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15 RNAi-Mediated Gene Silencing in Trichoderma: Principles and Applications |
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215 | (1) |
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216 | (2) |
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Advantages and Disadvantages of Using RNAi-Mediated Gene Silencing as a Genetic Manipulation Tool in Filamentous Fungi |
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218 | (2) |
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Strategies of Applying RNAi for Gene Silencing in Trichoderma and Other Filamentous Fungi |
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220 | (3) |
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223 | (1) |
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224 | (5) |
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16 Cellulase Systems in Trichoderma: An Overview |
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229 | (1) |
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Degradation of Cellulose by Cellulase Systems |
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230 | (2) |
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History of the Trichoderma Cellulase Research |
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232 | (1) |
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Structural and Functional Diversity of Trichoderma Cellulases |
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232 | (8) |
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Cellulase Systems and Complexes |
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240 | (1) |
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241 | (1) |
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241 | (4) |
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17 Use of Cellulases from Trichoderma reesei in the Twenty-First Century---Part I: Current Industrial Uses and Future Applications in the Production of Second Ethanol Generation |
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Overview of the Global Enzyme Market |
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245 | (1) |
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246 | (3) |
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249 | (4) |
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253 | (1) |
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Application of Trichoderma Cellulases in the Bioethanol Industry |
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253 | (5) |
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258 | (5) |
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18 Use of Cellulases from Trichoderma reesei in the Twenty-First Century---Part II: Optimization of Cellulolytic Cocktails for Saccharification of Lignocellulosic Feedstocks |
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Genetics of Industrial Trichoderma reesei Strains |
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263 | (1) |
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The T. reesei Enzyme Cocktail |
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264 | (2) |
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266 | (1) |
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Limitations in Lignocellulose Hydrolysis |
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267 | (2) |
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Improvement of Enzyme Cocktails by Optimization of Enzyme Ratios |
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269 | (1) |
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Improvement by Supplementation of T. reesei Enzyme Cocktails |
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270 | (5) |
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Adapting Cellulose Cocktails to Process Conditions |
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275 | (1) |
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Conclusions and Perspectives |
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275 | (1) |
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275 | (6) |
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19 Beta-Glucosidase from Trichoderma to Improve the Activity of Cellulase Cocktails |
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Warawut Chulalaksananukul |
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281 | (1) |
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282 | (1) |
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Trichoderma reesei Cellulases |
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282 | (2) |
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284 | (1) |
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BGLs from Aspergillus oryzae |
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284 | (2) |
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Synergism between Cellulases |
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286 | (1) |
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Heterologous Expression of Cellulases |
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286 | (1) |
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Yarrowia Lipolytica Expression Platforms |
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286 | (1) |
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Pichia pastoris Expression Platforms |
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287 | (1) |
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β-Glucosidase from Trichoderma to Improve the Activity of Cellulase Cocktails |
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287 | (1) |
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288 | (1) |
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288 | (3) |
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20 Regulation of Glycoside Hydrolase Expression in Trichoderma |
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291 | (1) |
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Regulation by Environmental Parameters |
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292 | (5) |
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297 | (5) |
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302 | (1) |
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303 | (6) |
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21 Trichoderma Proteins with Disruption Activity on Cellulosic Substrates |
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Structure and Occurrence of Cellulose in Nature |
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309 | (1) |
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General Aspects of Cellulose Degradation |
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310 | (1) |
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Cellulose Degradation by T. reesei |
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311 | (3) |
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Cellulolytic Enzymes in Other Trichoderma Species |
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314 | (1) |
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314 | (1) |
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314 | (5) |
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22 Molecular Mechanism of Cellulase Production Systems in Trichoderma |
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319 | (1) |
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Cellulase System of T. reesei |
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319 | (1) |
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Induction Mechanism of Cellulase Production |
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320 | (1) |
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Promoter Involved in Cellulase Production |
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320 | (1) |
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Molecular Mechanism of Cellulase Production |
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320 | (1) |
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Approaches for Refining the Cellulases Production System in T. reesei |
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321 | (1) |
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322 | (3) |
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23 Trichoderma in Bioenergy Research: An Overview |
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325 | (1) |
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Fungal Enzyme Systems and Trichoderma Technology |
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326 | (1) |
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Industrial Applications of Trichoderma |
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327 | (1) |
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Trichoderma Enzyme Systems in Bioenergy Research |
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328 | (4) |
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332 | (1) |
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332 | (7) |
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F INDUSTRIAL APPLICATIONS |
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24 Trichoderma Enzymes for Food Industries |
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339 | (1) |
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Fungus of Industrial Interest |
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340 | (1) |
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Trichoderma Enzymes for Industries |
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340 | (1) |
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341 | (1) |
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341 | (1) |
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342 | (1) |
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342 | (1) |
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Perspectives for Biotechnological Production of Enzymes by Trichoderma |
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343 | (1) |
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343 | (2) |
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25 Trichoderma: A Dual Function Fungi and Their Use in the Wine and Beer Industries |
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345 | (2) |
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Application in the Wine and Beer Industries |
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347 | (1) |
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348 | (1) |
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348 | (3) |
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26 Trichoderma Enzymes for Textile Industries |
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351 | (1) |
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352 | (1) |
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353 | (2) |
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Trichoderma Enzymes in Textile Finishing Processes |
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355 | (2) |
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Trichoderma as a Production Host for Textile Enzymes |
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357 | (2) |
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359 | (1) |
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359 | (1) |
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359 | (4) |
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27 Metabolic Diversity of Trichoderma |
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363 | (1) |
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364 | (2) |
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Carbohydrate Metabolism and Glycoside Hydrolases |
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366 | (2) |
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368 | (1) |
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369 | (3) |
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Metabolism and Transporters |
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372 | (2) |
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374 | (1) |
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374 | (3) |
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28 Sequence Analysis of Industrially Important Genes from Trichoderma |
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377 | (1) |
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Gene Sequence Analysis Fundamentals |
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378 | (5) |
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Genome Analysis of Trichoderma |
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383 | (1) |
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Industrially Genes from Trichoderma |
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384 | (1) |
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Sequence Analysis of Industrially Genes from Trichoderma |
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384 | (5) |
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389 | (1) |
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390 | (3) |
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29 Biosynthesis of Silver Nano-Particles by Trichoderma and Its Medical Applications |
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393 | (2) |
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395 | (2) |
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397 | (2) |
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399 | (1) |
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400 | (5) |
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30 Role of Trichoderma Species in Bioremediation Process: Biosorption Studies on Hexavalent Chromium |
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405 | (2) |
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Hexavalent Chromium Bioremediation will Be Discussed Here with a Case Study Representing Chromium Biosorption by Trichoderma Species |
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407 | (4) |
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411 | (1) |
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412 | (3) |
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G BIOCONTROL AND PLANT GROWTH PROMOTION |
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31 Applications of Trichoderma in Plant Growth Promotion |
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415 | (1) |
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Trichoderma as a Plant Growth Promoter |
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416 | (2) |
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Consistency of Growth Promotion |
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418 | (1) |
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419 | (1) |
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Mechanisms of Growth Promotion |
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420 | (5) |
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425 | (1) |
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425 | (4) |
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32 Molecular Mechanisms of Biocontrol in Trichoderma spp. and Their Applications in Agriculture |
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429 | (1) |
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430 | (1) |
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430 | (1) |
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Roll of Cell Wall Degrading Enzymes |
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431 | (1) |
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Signal Transduction in Mycoparasitism |
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432 | (1) |
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ROS-Nox-Signal Transduction |
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433 | (2) |
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Antibiosis (Secondary Metabolites Involved in Biocontrol) |
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435 | (1) |
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436 | (1) |
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437 | (1) |
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437 | (1) |
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Mycotoxins Produced by Trichoderma spp |
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438 | (1) |
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Synergism between Enzymes and Antibiotics |
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439 | (1) |
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Competition for Nutrients |
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439 | (1) |
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Plant Growth Promotion by Trichoderma |
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440 | (2) |
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442 | (1) |
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Induction of Systemic Resistance to Plants by Trichoderma spp |
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443 | (1) |
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Signal Transduction Pathways that Mediate Trichoderma-Plant Communication |
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444 | (2) |
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Trichoderma Elicitor of Systemic Resistance in Plants |
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446 | (2) |
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Signal Transduction during Plant--Trichoderma Interaction in Trichoderma |
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448 | (1) |
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Transgenic Plants Expressing Trichoderma Genes |
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448 | (1) |
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449 | (1) |
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449 | (1) |
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449 | (6) |
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33 Genome-Wide Approaches toward Understanding Mycotrophic Trichoderma Species |
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455 | (2) |
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Lessons from the Genome Sequence |
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457 | (1) |
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458 | (1) |
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The Functional Genomics View of Mycoparasitism |
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458 | (1) |
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High-Throughput Analysis of the Trichoderma-Plant Interaction |
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459 | (2) |
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461 | (1) |
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462 | (1) |
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462 | (1) |
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462 | (3) |
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34 Insights into Signaling Pathways of Antagonistic Trichoderma Species |
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465 | (1) |
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465 | (1) |
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Effector Pathways of G Protein Signaling in Fungi |
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466 | (1) |
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Signaling Pathways and Characterized Components in Trichoderma Species |
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467 | (2) |
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Signal Transduction Components and Pathways Affecting Vegetative Growth and Conidiation |
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469 | (2) |
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The Role of Signaling in Trichoderma Mycoparasitism and Biocontrol |
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471 | (3) |
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474 | (1) |
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474 | (1) |
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474 | (3) |
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35 Enhanced Resistance of Plants to Disease Using Trichoderma spp |
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477 | (1) |
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Induced Disease Resistance in Plants |
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478 | (3) |
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Induced Resistance by Trichoderma spp |
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481 | (1) |
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Signaling Pathways of Trichoderma-Induced Resistance |
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482 | (1) |
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Trichoderma spp.-Secreted Elicitors of Plant Resistance |
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483 | (2) |
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Engineering Plants for Disease Resistance Using Trichoderma Genes |
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485 | (1) |
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Combination of Trichoderma with Other Beneficial Microorganisms |
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486 | (1) |
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Other Effects of Trichoderma spp. Inoculation to the Plant |
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487 | (1) |
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487 | (1) |
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488 | (7) |
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36 Enhanced Plant Immunity Using Trichoderma |
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Hexon Angel Contreras-Cornejo |
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Jesus Salvador Lopez-Bucio |
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495 | (1) |
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Mechanisms of Plant Protection by Microbes |
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495 | (3) |
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Trichoderma-Induced Immunity |
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498 | (2) |
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Plant Protection Conferred by Trichoderma |
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500 | (1) |
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501 | (1) |
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501 | (1) |
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501 | (4) |
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37 Genes from Trichoderma as a Source for Improving Plant Resistance to Fungal Pathogen |
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|
|
|
505 | (1) |
|
Trichoderma Inducing Resistance in Plants |
|
|
506 | (1) |
|
Transgenic Plants Expressing Trichoderma Genes Develop Increased Resistance to Fungal Pathogens |
|
|
506 | (2) |
|
Trichoderma Genes Involved in Elicitation of ISR |
|
|
508 | (3) |
|
|
511 | (1) |
|
|
511 | (1) |
|
|
511 | (1) |
|
|
511 | (4) |
|
38 Trichoderma Species as Abiotic Stress Relievers in Plants |
|
|
|
|
|
|
|
|
515 | (1) |
|
Microbes for the Management of Abiotic Stresses |
|
|
516 | (1) |
|
Alleviation of Abiotic Stress in Plants by Trichoderma |
|
|
516 | (1) |
|
Alleviation of Drought Stress in Plants by Trichoderma |
|
|
517 | (1) |
|
Alleviation of Salinity Stress in Plants by Trichoderma |
|
|
518 | (1) |
|
Alleviation of Heat Stress in Plants by Trichoderma |
|
|
519 | (1) |
|
Trichoderma Genes for Abiotic Stress Tolerance |
|
|
520 | (1) |
|
Mechanism of Abiotic Stress Tolerance Using Trichoderma |
|
|
520 | (1) |
|
Host Gene: Stress Tolerant Varieties |
|
|
521 | (1) |
|
|
522 | (1) |
|
|
523 | (4) |
|
39 Advances in Formulation of Trichoderma for Biocontrol |
|
|
|
|
|
|
527 | (1) |
|
|
528 | (1) |
|
|
528 | (1) |
|
Enhancement of Shelf Life and Application Efficiency |
|
|
528 | (1) |
|
Compatibility with Other Biological Systems |
|
|
529 | (1) |
|
Conclusion and Future Prospects |
|
|
530 | (1) |
|
|
530 | (3) |
|
40 Trichoderma: A Silent Worker of Plant Rhizosphere |
|
|
|
|
|
|
|
|
533 | (1) |
|
Diverseness Amongst Trichoderma |
|
|
534 | (2) |
|
Trichoderma as Inducer of Plant Defense Response |
|
|
536 | (2) |
|
Trichoderma as a Biofertilizer and Plant Growth Promoter |
|
|
538 | (1) |
|
|
538 | (1) |
|
Trichoderma Genes Responsible for Playing "Big Games" |
|
|
539 | (1) |
|
|
540 | (1) |
|
|
540 | (1) |
|
|
540 | (3) |
Index |
|
543 | |