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Plant Innate Immunity Signals And Signaling Systems Bioengineering And Molecular Manipulation For Crop Disease Management (Pb 2020) at Meripustak

Plant Innate Immunity Signals And Signaling Systems Bioengineering And Molecular Manipulation For Crop Disease Management (Pb 2020) by VIDHYASEKARAN P., SPRINGER

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  • General Information  
    Author(s)VIDHYASEKARAN P.
    PublisherSPRINGER
    ISBN9789402419429
    Pages267
    BindingSoftbound
    LanguageEnglish
    Publish YearApril 2021

    Description

    SPRINGER Plant Innate Immunity Signals And Signaling Systems Bioengineering And Molecular Manipulation For Crop Disease Management (Pb 2020) by VIDHYASEKARAN P.

    The volume III of the book presents the ways and means to manipulate the signals and signaling system to enhance the expression of plant innate immunity for crop disease management. It also describes bioengineering approaches to develop transgenic plants expressing enhanced disease resistance using plant immunity signaling genes. It also discusses recent commercial development of biotechnological products to manipulate plant innate immunity for crop disease management.Engineering durable nonspecific resistance to phytopathogens is one of the ultimate goals of plant breeding. However, most of the attempts to reach this goal fail as a result of rapid changes in pathogen populations and the sheer diversity of pathogen infection mechanisms. Recently several bioengineering and molecular manipulation technologies have been developed to activate the 'sleeping' plant innate immune system, which has potential to detect and suppress the development of a wide range of plant pathogens in economically important crop plants. Enhancing disease resistance through altered regulation of plant immunity signaling systems would be durable and publicly acceptable. Strategies for activation and improvement of plant immunity aim at enhancing host's capability of recognizing invading pathogens, boosting the executive arsenal of plant immunity, and interfering with virulence strategies employed by microbial pathogens. Major advances in our understanding of the molecular basis of plant immunity and of microbial infection strategies have opened new ways for engineering durable resistance in crop plants. 1 Introduction1.1 Signals and Signaling Systems involved in Activation of Plant Innate Immune System1.2 Bioengineering Technologies to Activate Plant Immunity Signaling Systems for Management of Crop Diseases1.3 Molecular Manipulation of Plant Immunity Signaling Systems Using Abiotic or Biotic Elicitors for Management of Crop Diseases2. Manipulation of Calcium Ion Influx--Mediated Immune Signaling Systems for Crop Disease Management2.1 Ca2+ Signaling Components2.2 Bioengineering G-proteins for Plant Disease Management2.3 Engineering Glutamate-Gated Ca2+ Channel for Plant Disease Management2.4 Engineering H+-ATPase for Plant Disease Management2.5 Molecular Manipulation of H+-ATPase Proton Pump by Laminarin for Crop Disease Management2.6 Manipulation of H+-ATPase Using Chitosan Commercial Formulations2.7 Engineering Annexins for Crop Disease Management2.8 Bioengineering Calmodulin Genes to Promote Immune Responses for Plant Disease Management2.9 Engineering CBP60g Calmodulin-binding Proteins for Disease Management2.10 Engineering Calcium-Dependent Protein Kinase Genes for Crop Disease Management2.11 Manipulation of Ca2+-Dependent Signaling Pathway by Vitamin B13. Manipulation of Reactive Oxygen Species, Redox and Nitric Oxide Signaling Systems to Activate Plant Innate Immunity for Crop Disease Management3.1 Complexity of ROS-Redox-NO Signaling System 3.2 Manipulation of ROS Signaling System Using Benzothiadiazole (BTH) for Crop Disease Management3.3 Manipulation of ROS and Redox Signaling Systems Using Riboflavin to Promote Plant Immunity Potential for Crop Disease Management3.4 Molecular Manipulation of ROS-mediated Redox Signaling System Using Menadione Sodium Bisulphite for Crop Disease Management 3.5 Management of Crop Diseases Using Thiamine through Manipulation of ROS Signaling System3.6 Manipulation of ROS and Redox Signaling Systems Using Herbicides to Activate Plant Immune Signaling System for Crop Disease Management3.7 Management of Crop diseases Using Giant Knotweed Extract Through Activation of ROS Signaling System3.8 Manipulation of ROS Signaling System using b-Aminobutyric Acid for Crop Disease Management3.9 Manipulation of ROS Signaling System Using Phosphorous Compounds for Crop Disease Management3.10 Reactive Oxygen Species Generators as Plant Innate Immunity System Activators for Crop Disease Management3.11 Manipulation of ROS and Redox Signaling System Using Microbes to Trigger Immune Responses for Crop Disease Management3.12 Manipulation of ROS Signaling by Silicon to Activate Plant Innate Immune Responses3.13 Bioengineering Cysteine-rich Receptor-Like Kinase (CRK) Genes to Activate ROS-Modulated Plant Immune Responses for Disease Management3.14 Bioengineering Lectin Receptor Kinase (LecRK) Genes to Activate ROS-Modulated Plant Immune Responses for Disease Management 3.15 Engineering Peroxidase Gene to Activate ROS-Mediated Plant Immune Responses for Crop Disease Management3.16 Bioengineering Superoxide Dismutase to Activate ROS-Mediated Immune Signaling for Disease Management3.17 Engineering Glucose Oxidase Gene to Trigger ROS Production for Management of Crop Diseases 3.18 Manipulation of NO Signaling System to Activate Plant Immune Responses for Disease Management 4 Bioengineering and Molecular Manipulation of Mitogen-activated Kinases to Activate Plant Innate Immunity for Crop Disease Management4.1 MAPK Signal Transduction System in Plant Innate Immunity4.2 Engineering Mitogen-Activated Protein Kinase (MAPK) Genes to Enhance Plant Immune Responses by Triggering Phosphorylation of Transcription Factors 4.3 Engineering Mitogen-activated Kinase Kinase (MAPKK) Genes to Activate ROS Signaling System for Management of Crop Diseases4.4 Engineering MAPK/MAPKK Genes to Activate Salicylate Signaling System for Management of Diseases4.5 Engineering MAPK Genes for Management of Pathogens by Activating JA Signaling System4.6 Engineering MAPK Genes to Activate Salicylate-Jasmonate-Ethylene Signaling Network for Crop Disease Management4.7 Molecular Manipulation of MAPK Genes Which Negatively Regulate SA Signaling System for Crop Disease Management4.8 Molecular Manipulation of SIPK-WIPK Genes Expression for Crop Disease Management4.9 Molecular Manipulation of EDR1, a MAPKK Kinase for Plant Disease Management4.10 Manipulation of TIPK Gene Using Trichoderma for Crop Disease Management5 Bioengineering and Molecular Manipulation of Salicylic Acid Signaling System to Activate Plant Immune Responses for Crop Disease Management5.1 Salicylic Acid Signaling System Activates Local Resistance, Systemic Acquired Resistance, and Transgenerational Systemic Disease Resistance5.2 Bioengineering Genes to Trigger SA Biosynthesis and Accumulation for Crop Disease Management5.3 Bioengineering NPR1 Genes for Crop Disease Management 5.4 Manipulation of NPR1 Gene Expression by Synthetic Chemicals to Trigger Systemic Acquired Resistance (SAR)5.5 Molecular Manipulation of SA Signaling System by Probenazole for Crop Disease Management 5.6 Induction of Transgenerational SAR by BABA 5.7 Manipulation of SA Signaling System Using Plant-Derived Products for Disease Management 5.8 N-Acyl-L-Homoserine Lactones (AHLs)--Producing Bacteria Induce SA-Dependent Systemic Resistance5.9 Activation of SA-Dependent Signaling System by Rhizobacteria for Management of Crop Diseases5.10 Manipulation of SA Signaling System Using Yeast Elicitor for Disease Management6 Bioengineering and Molecular Manipulation of Jasmonate Signaling System to Activate Plant Immune System for Crop Disease Management6.1 Jasmonate Signaling System Triggers Local and Induced Systemic Resistance 6.2 Bioengineering Genes Encoding Enzymes in JA Biosynthesis Pathway 6.3 Manipulation of Genes Encoding Enzymes Involved in JA Biosynthesis using Alkamide6.4 Molecular Manipulation of Lipoxygenase Enzyme Involved in JA Biosynthesis by Chitosan for Crop Disease Management6.5 Bioengineering for Production of Arachidonic Acid in Plants to Activate JA Biosynthesis Pathway Genes for Disease Management6.6 Manipulaion of JA-dependent Signaling System Using Hexanoic Acid for Plant Disease Management 67 Manipulation of Jasmonic Acid Signaling Pathway Using Ulvan for Crop Disease Management6.8 Engineering Transcription Factor Genes to Manipulate JA Signaling System for Crop Disease Management6.9 Manipulation of JA Signaling System Using Microbes for Crop Disease Management 7 Bioengineering and Molecular Manipulation of Ethylene Signaling System for Crop Disease Management 7.1 Ethylene Signaling System Triggers Local and Induced Systemic Resistance 7.2 Molecular Manipulation of Ethylene Biosynthesis Pathway for Crop Disease Management7.3 Engineering ERF Genes to Manipulate Ethylene Signaling System for Crop Disease Management7.4 Bioengineering EIN2 Gene to Activate Ethylene Signaling System for Crop Disease Management7.5 Molecular Manipulation of Ethylene-Dependent Signaling System Using Microbes for Crop Disease Management



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