Plant Phenolics in Abiotic Stress Management / / edited by Rafiq Lone, Salim Khan, Abdullah Mohammed Al-Sadi
| Plant Phenolics in Abiotic Stress Management / / edited by Rafiq Lone, Salim Khan, Abdullah Mohammed Al-Sadi |
| Edizione | [1st ed. 2023.] |
| Pubbl/distr/stampa | Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2023 |
| Descrizione fisica | 1 online resource (467 pages) |
| Disciplina | 581.7 |
| Soggetto topico |
Stress (Physiology)
Plants Plant physiology Botanical chemistry Metabolism, Secondary Plant Stress Responses Plant Physiology Plant Biochemistry Plant Secondary Metabolism |
| ISBN | 981-19-6426-2 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Intro -- Contents -- Editors and Contributors -- 1: Historical Perspective of Plant Phenolics -- 1.1 Introduction -- 1.2 Classification of Phenolic Compounds -- 1.2.1 C6 Phenolic Compounds -- 1.2.2 Phenolic Compounds -- 1.2.3 Xanthonoids -- 1.2.4 C6-C3-C6 Phenolics: Flavonoids -- 1.3 Biosynthetic Pathway of Phenols in Plants -- 1.4 Phenols and Health Benefits -- 1.5 Phenols as an Antioxidative Agent -- 1.6 Antimicrobial Properties of Phenolic Compounds -- 1.7 Role of Phenols in Plants and Ecosystems -- 1.7.1 Plant Phenolics: Signaling Molecules -- 1.7.2 Plant Phenolics as Aboveground Signaling Molecules -- 1.8 Role of Phenols in Wood Preservation -- 1.9 Conclusions -- References -- 2: Phenolics: Key Players in Interaction Between Plants and Their Environment -- 2.1 Introduction -- 2.2 Chemistry and Classification of Phenolics -- 2.3 Classification of Phenolic Compounds -- 2.3.1 Simple Phenols -- 2.3.2 Phenolic Acids and Aldehydes -- 2.3.3 Acetophenones and Phenylacetic Acids -- 2.3.4 Biosynthesis, Genetics, and Metabolic Engineering -- 2.3.5 Phenolic Transport Mechanisms -- 2.3.6 Synthesis of Phenolics Against Biotic and Abiotic Stress -- 2.3.7 Role of Phenolics in Plant Defense -- 2.3.8 Plant Phenolics in Rhizosphere -- 2.4 Agrobacterium and Rhizobium Host Phenolics in Infection Cycles -- 2.4.1 Chemotaxis -- 2.4.2 Activation of the Bacterial Nod and Vir Gene Networks -- 2.5 Xenobiotic Detoxification and Biotransformation to Inert and/or Utilizable Form -- 2.6 Quorum Signaling (QS) for Attaining Infection -- 2.7 Understanding of the Basic Processes in the Polyphenol Biosynthesis -- 2.8 Acyltransferases (AT) -- References -- 3: Genetic Basis of Phenolics in Abiotic Stress Management -- 3.1 Introduction -- 3.2 Phenolic Biofactories -- 3.2.1 Phenolic Compounds -- 3.2.2 Types of Polyphenols -- 3.2.3 Biosynthetic Pathways.
3.2.4 Phenolics in Plant Biology: Physiological Impact -- 3.3 Plant Metabolic Adjustments Under Abiotic Stress -- 3.4 Phenolics Are Strong Antioxidants -- 3.5 Plant Phenolics Under Variable Environmental Conditions -- 3.5.1 Osmotic Stress -- 3.5.2 Temperature Stress -- 3.5.3 Radiation Stress -- 3.5.4 Salinity Stress -- 3.5.5 Mineral Stress -- 3.6 Phenolic Signaling -- 3.7 Conclusion -- References -- 4: Phenolic Biosynthesis and Metabolic Pathways to Alleviate Stresses in Plants -- 4.1 Introduction -- 4.2 Phenolics in Response to Stresses -- 4.3 Biosynthesis, Metabolism of Phenols Under Stress Conditions -- 4.3.1 Hydroxycinnamic Acid and Their Derivatives -- 4.3.2 Lignin and Lignans -- 4.3.3 Benzoic Acid and Derivatives -- 4.3.4 Stilbenes -- 4.3.5 Flavonoids -- 4.3.5.1 Flavanones -- 4.3.5.2 Flavones -- 4.3.5.3 Flavonols -- 4.3.5.4 Isoflavonoids -- 4.3.5.5 Anthocyanins and proanthocyanidins -- 4.3.6 Tannins -- 4.4 Conclusion -- References -- 5: Antioxidant Phenolics from Vegetable By-Products -- 5.1 Introduction -- 5.2 Vegetable By-Products: Production -- 5.3 Antioxidants from Vegetable By-Products -- 5.3.1 Vegetable By-Products -- 5.3.1.1 Tomato -- 5.3.1.2 Onion -- 5.3.1.3 Brassicas -- 5.3.1.4 Eggplants -- 5.3.1.5 Carrots and Turnips -- 5.3.1.6 Artichokes -- 5.3.1.7 Other Vegetables -- 5.4 Conclusions -- References -- 6: Plant Phenolics: A Dynamic Compound Family Under Unfavorable Environment and Multiple Abiotic Stresses -- 6.1 Introduction -- 6.2 Role of Phenolic Compounds in Plants -- 6.3 Impact of Climate Change/Environmental Variables on Different Phenolic Compounds -- 6.4 Role of PCs in Mitigation of Abiotic Stresses and Unfavorable Climatic Conditions -- 6.4.1 Drought -- 6.4.2 Salinity -- 6.4.3 Temperature Stress (Heat and Cold) -- 6.4.4 Heavy Metal -- 6.4.5 Ultra Violet Light -- 6.4.6 Elevated CO2 (eCO2). 6.4.7 Under Combined Abiotic Stresses -- 6.5 Conclusion -- References -- 7: Role of Plant Phenolics Against Reactive Oxygen Species (ROS) Induced Oxidative Stress and Biochemical Alterations -- 7.1 Introduction -- 7.2 Phenolic and Abiotic Stress Management -- 7.3 Phenolic as Ultraviolet Sunscreens -- 7.4 Plant Phenolics and Their Role in Heavy Metal Stress -- 7.5 Plant Phenolic and Their Role in Cold Stress -- 7.6 Mechanism of Polyphenols on Abiotic Stress Management -- 7.7 Plant Phenolics -- 7.8 Role of Plant Phenolic Against the Abiotic Stresses Induced ROS Production and Their Toxic Effects -- 7.9 Protective Role of Phenolics Against Abiotic Stress Produced Reactive Oxygen Species in Plants -- 7.10 Conclusion and Future Perspectives -- References -- 8: Phenolics Biosynthesis, Targets, and Signaling Pathways in Ameliorating Oxidative Stress in Plants -- 8.1 Introduction -- 8.2 Molecular Structure, Classification, and Biosynthesis of Phenolics -- 8.3 ROS Generation, Oxidative Stress, and Phenolics -- 8.4 Phenolics Targets and Modulation of Various Signaling Pathways -- 8.4.1 Antioxidant Defense System: Phenolics as Antioxidants -- 8.4.2 NADPH Oxidase, a Key Source of ROS: Phenolics as Inhibitors -- 8.4.3 Targets of Rapamycin (TOR) and Phosphotidyl Inositol-3-Kinases (PI3K): Potential Targets of Phenolics -- 8.4.4 Auxin Transport and Phenylpropanoid Pathway: Role in Photoprotection -- 8.5 Role of Phenolics in Stress Tolerance -- 8.5.1 Light Stress -- 8.5.2 Salinity -- 8.5.3 Drought -- 8.5.4 Heavy Metals -- 8.5.5 Heat and Cold Stress -- 8.6 Conclusion and Future Prospects -- References -- 9: Crosstalk of Ethylene and Salicylic Acid in the Amelioration of Toxic Effects of Heavy Metal Stress in Mustard -- 9.1 Introduction -- 9.2 General Description About Elicitors -- 9.3 Phytoremediation Potential and HM Uptake. 9.4 Ethylene and Metal Stress Relationship -- 9.5 Modifications and Responses of Plants to HM Stress and Ethylene Signaling -- 9.6 Salicylic Acid Role in Mustard Plants Under HM Stress -- 9.7 Crosstalk of Ethylene with Other Growth Regulators and Signaling Molecules in the Regulation Tolerance of Plant to HM Stre... -- 9.8 Role of Ethylene as a Regulator of Plant Responses to Metal Stress -- 9.9 Conclusion -- References -- 10: Stressed Plants: An Improved Source for Bioactive Phenolics -- 10.1 Introduction -- 10.2 Stress in Plants -- 10.2.1 Abiotic Stress -- 10.2.1.1 UV Light Stress -- 10.2.1.2 Temperature Stress -- 10.2.1.3 Water Stress -- 10.2.1.4 Salinity -- 10.2.2 Biotic Stress -- 10.3 Plant Response Mechanism to Stresses -- 10.4 Biosynthesis of Phenolic Compounds Under Stress Conditions -- 10.5 Conclusions -- References -- 11: Plant Phenolics: As Antioxidants and Potent Compounds Under Multiple Stresses -- 11.1 Introduction -- 11.2 Overview of Plant Phenolics and Its Role -- 11.2.1 Primary Function of Plant Phenolics as Antioxidants -- 11.2.2 Additional Functions of Phenolics in Plants -- 11.2.3 Impacts of Plant Phenolics on Plant Physiological, Biochemical, Reproductive, and Yield Traits -- 11.2.3.1 Antioxidants: Definition, Classification, General Mechanism of Action -- 11.2.4 Classification of Antioxidants -- 11.2.5 Stress-Mediated ROS Generation and Redox Signaling: Good or Bad? -- 11.3 Abiotic Stress Response Through Phenolics -- 11.3.1 Phenolics-Mediated Resistance Towards Salinity Stress -- 11.3.2 Phenolics-Mediated Resistance Towards Drought Stress -- 11.3.3 Phenolics-Mediated Resistance Towards Heavy Metal Stress -- 11.3.4 Phenolics-Mediated Resistance Towards UV Stress -- 11.4 Plant Phenolics and Biotic Stress: Beyond Antioxidant Role -- 11.5 Factors Affecting the Regulation of Phenolic Biosynthesis. 11.5.1 Proline Accumulation Under Stress -- 11.5.2 Cellular Compartmentalization -- 11.5.3 Carbon Reallocation: As a Function of Growth vs Defense -- 11.5.4 Theory of Photo-Protection and Co-evolution: Blessings in Disguise -- 11.6 Plant Physiological, Genetical, Biochemical and Molecular Approaches to Improve Phenolic Compounds and Stress Mitigation -- 11.6.1 Biochemical Strategies of Phenolic Compounds to Mitigate Stress Tolerance -- 11.6.2 Genetic/Metabolic Engineering of Phenolic Compounds to Mitigate Stress Tolerance -- 11.6.2.1 Blocking the Biosynthetic Pathway (RNAi Pathway) -- 11.6.2.2 Endogenous Synthesis of Biochemical Compounds Using Structural and Regulatory Genes -- 11.6.2.3 Inserting New Branches: The Pathway for the Production of Novel Flavonoids -- 11.6.3 Physiological Strategies of Phenolic Compounds to Mitigate Stress Tolerance -- 11.7 Conclusion -- References -- 12: Interactive Role of Phenolics and PGPR in Alleviating Heavy Metal Toxicity in Maize -- 12.1 Introduction -- 12.2 Description About Heavy Metal Toxicity in Plants with Special Reference to Maize -- 12.3 Role of Phenolics in Alleviating Metal Toxicity in Maize -- 12.4 Role of Different Phenolics in Alleviating Metal Toxicity with Special Reference to Maize -- 12.5 Role of PGPR and Other Microbes in Alleviating Metal Toxicity in Maize -- 12.6 Role of Different Microbes in Alleviating Metal Toxicity in Plants with Special Reference to Maize -- 12.7 Relationship Between Phenolics and Microbes in Alleviating Metal Toxicity in Plants with Special Reference to Maize -- 12.8 Conclusion -- References -- 13: Impact of Phenolics on Drought Stress and Expression of Phenylpropanoid Pathway Genes -- 13.1 Introduction -- 13.2 Drought -- 13.3 Phenolics -- 13.4 Interrelation of Phenolics and Drought Stress -- 13.5 Pattern of Gene Expression During Drought Stress for Gene Phenylpropanoid. 13.6 Conclusion. |
| Record Nr. | UNINA-9910644258503321 |
| Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2023 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Plant Phenolics in Biotic Stress Management / / edited by Rafiq Lone, Salim Khan, Abdullah Mohammed Al-Sadi
| Plant Phenolics in Biotic Stress Management / / edited by Rafiq Lone, Salim Khan, Abdullah Mohammed Al-Sadi |
| Edizione | [1st ed. 2024.] |
| Pubbl/distr/stampa | Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2024 |
| Descrizione fisica | 1 online resource (555 pages) |
| Disciplina | 581.7 |
| Soggetto topico |
Stress (Physiology)
Plants Plant physiology Botanical chemistry Plant Stress Responses Plant Physiology Plant Biochemistry |
| ISBN | 981-9933-34-X |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto | Chapter 1_ Role of Phenolics in Plant-Microbe Interaction -- A Review -- Chapter 2_ Role of Phenolics in establishing Mycorrhizal association in plants for management of biotic stress -- Chapter 3_ Insights Into Biotic Stress Management By Plants Using Phenolic Compounds -- Chapter 4_Plant Phenolics: Role in biotic stress alleviation and plant microbe interactions -- Chapter 5_ Elucidating the Role of Flavonoids in Countering the Effect of Biotic Stress in Plants -- Chapter 6_Phenolics as Shielding counterparts from plants to combat biotic stress mediated by microbes and nematodes -- Chapter 7_Salicylic Acid: A Phytohormone Of Antistress And Insecticidal Essence -- Chapter 8_Role of plant phenolics in the resistance mechanism of plants against insects -- Chapter 9_ Plant phenolics role in bacterial disease stress Management in Plants -- Chapter 10_Polyphenol Phytoalexins as the Determinants of Plant Disease Resistance -- Chapter 11_Phytochemicals of Withania somnifera and their perspective on plant defense against stress -- Chapter 12_Interactive role of silicon and phenolics in biotic stress regulation in plants and expression of phenylpropanoid pathway genes -- Chapter 13_Plants Fungal Diseases and Phenolics Response -- Chapter 14_Fungal control through Plant Phenolics – A Biotic constraint -- Chapter 15_Momilactone B and Potential in Biological Control of Weeds -- Chapter 16 Plant Phenolics and their versatile promising role in the management of nematode stress -- Chapter 17 Plant phenolics in alleviating root-knot disease in plants caused by Meloidogyne spp -- Chapter 18 Plant Phenolics Production – A Strategy for Biotic Stress Management -- Chapter 19 Role of Phenolic compounds in disease resistance to plants -- Chapter 20 Plant phenolics compounds and stress management: A review -- Chapter 21 Phenolic Compounds and Nanotechnology: Application during Biotic Stress Management in Agricultural Sector and Occupational Health Impacts. . |
| Record Nr. | UNINA-9910841871903321 |
| Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2024 | ||
| Lo trovi qui: Univ. Federico II | ||
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Plant Phenolics in Sustainable Agriculture [[electronic resource] ] : Volume 1 / / edited by Rafiq Lone, Razia Shuab, Azra N. Kamili
| Plant Phenolics in Sustainable Agriculture [[electronic resource] ] : Volume 1 / / edited by Rafiq Lone, Razia Shuab, Azra N. Kamili |
| Edizione | [1st ed. 2020.] |
| Pubbl/distr/stampa | Singapore : , : Springer Singapore : , : Imprint : Springer, , 2020 |
| Descrizione fisica | 1 online resource (594 pages) |
| Disciplina | 578.42 |
| Soggetto topico |
Agriculture
Sustainable development Plant biochemistry Climate change Sustainable Development Plant Biochemistry Climate Change/Climate Change Impacts Climate Change Fenols Plantes Agricultura sostenible |
| Soggetto genere / forma | Llibres electrònics |
| ISBN | 981-15-4890-0 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto | Chapter 1. Salicylic acid-mediated salt stress tolerance in plants -- Chapter 2. Biotechnology for Extraction of Plant Phenolics -- Chapter 3. Exploitation of Plant Phenolics in Animal Farming -- Chapter 4. FLAVONES AND FLAVONOLS: BIOACTIVITIES AND RESPONSES UNDER LIGHT STRESS IN HERBS -- Chapter 5. Interactive Biology of Auxins and Phenolics in Plant Environment -- Chapter 6. Bioavailability and Nutritional analysis of Flavonoids -- Chapter 7. Newly Identified Phenolic Compounds from Different Plant Families -- Chapter 8. Phenolic alleochemicals from crops and weed management -- Chapter 9. Phenolic Compounds against Fungal and Viral Plant Diseases -- Chapter 10. Phenolic compounds from medicinal herbs: their role in animal health and diseases: A new approach for sustainable welfare and development -- Chapter 11. Phenolics- A game changer in the life cycle of plants -- Chapter 12. Phenolics as plant protective companion against abiotic stress -- Chapter 13. Phenolics: A key defence Secondary Metabolite to Counter Biotic Stress -- Chapter 14. Phenolics From Agro-Industrial By-Products -- Chapter 15. Plant Phenolics and Post Harvesting Technologies -- Chapter 16. Plant Phenolics as Natural Preservatives in Food System -- Chapter 17. Plant phenolics for overcoming multidrug resistance in human fungal pathogen -- Chapter 18. Plant Phenolics: their biosynthesis, regulation, evolutionary significance and role in Senescence -- Chapter 19. Plant phenolics under water deficit conditions: Biosynthesis, accumulation and physiological roles in water stress alleviation -- Chapter 20. Plants as Biofactories for Phenolic Compounds -- Chapter 21. QUANTITATIVE GENETICS AND THE GENETIC BASIS FOR POLYPHENOLICS TRAIT IN PLANTS -- Chapter 22. Role of Phenolic Compounds in Plant Defensive Mechanisms -- Chapter 23. Role of Salicylic Acid in Biotic and Aboitic Stress Tolerance in Plants -- Chapter 24. Root Phenolics Profile Modulates Microbial Ecology of Rhizosphere -- Chapter 25. Defensive role of plant phenolics against pathogenic microbes for sustainable agriculture. |
| Record Nr. | UNINA-9910416097103321 |
| Singapore : , : Springer Singapore : , : Imprint : Springer, , 2020 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Plant Phenolics in Sustainable Agriculture : Volume 1 / / edited by Rafiq Lone, Razia Shuab, Azra N. Kamili
| Plant Phenolics in Sustainable Agriculture : Volume 1 / / edited by Rafiq Lone, Razia Shuab, Azra N. Kamili |
| Edizione | [1st ed. 2020.] |
| Pubbl/distr/stampa | Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2020 |
| Descrizione fisica | 1 online resource (594 pages) |
| Disciplina | 578.42 |
| Soggetto topico |
Agriculture
Sustainability Botanical chemistry Climatology Ecology Plant Biochemistry Climate Sciences Environmental Sciences Fenols Plantes Agricultura sostenible |
| Soggetto genere / forma | Llibres electrònics |
| ISBN | 981-15-4890-0 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto | Chapter 1. Salicylic acid-mediated salt stress tolerance in plants -- Chapter 2. Biotechnology for Extraction of Plant Phenolics -- Chapter 3. Exploitation of Plant Phenolics in Animal Farming -- Chapter 4. FLAVONES AND FLAVONOLS: BIOACTIVITIES AND RESPONSES UNDER LIGHT STRESS IN HERBS -- Chapter 5. Interactive Biology of Auxins and Phenolics in Plant Environment -- Chapter 6. Bioavailability and Nutritional analysis of Flavonoids -- Chapter 7. Newly Identified Phenolic Compounds from Different Plant Families -- Chapter 8. Phenolic alleochemicals from crops and weed management -- Chapter 9. Phenolic Compounds against Fungal and Viral Plant Diseases -- Chapter 10. Phenolic compounds from medicinal herbs: their role in animal health and diseases: A new approach for sustainable welfare and development -- Chapter 11. Phenolics- A game changer in the life cycle of plants -- Chapter 12. Phenolics as plant protective companion against abiotic stress -- Chapter 13. Phenolics: A key defence SecondaryMetabolite to Counter Biotic Stress -- Chapter 14. Phenolics From Agro-Industrial By-Products -- Chapter 15. Plant Phenolics and Post Harvesting Technologies -- Chapter 16. Plant Phenolics as Natural Preservatives in Food System -- Chapter 17. Plant phenolics for overcoming multidrug resistance in human fungal pathogen -- Chapter 18. Plant Phenolics: their biosynthesis, regulation, evolutionary significance and role in Senescence -- Chapter 19. Plant phenolics under water deficit conditions: Biosynthesis, accumulation and physiological roles in water stress alleviation -- Chapter 20. Plants as Biofactories for Phenolic Compounds -- Chapter 21. QUANTITATIVE GENETICS AND THE GENETIC BASIS FOR POLYPHENOLICS TRAIT IN PLANTS -- Chapter 22. Role of Phenolic Compounds in Plant Defensive Mechanisms -- Chapter 23. Role of Salicylic Acid in Biotic and Aboitic Stress Tolerance in Plants -- Chapter 24. Root Phenolics Profile Modulates Microbial Ecology of Rhizosphere -- Chapter 25. Defensive role of plant phenolics against pathogenic microbes for sustainable agriculture. |
| Record Nr. | UNINA-9910863130303321 |
| Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2020 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||