000 07741cam a2200469Ii 4500
001 96531
003 ES-MaUEC
005 20230102112758.0
006 m o d
007 cr mnu|||unuuu
008 170921s2017 si a ob 000 0 eng d
020 _a9789811055898
_q(electronic bk.)
020 _a9811055890
_q(electronic bk.)
020 _z9789811055881
_q(print ;
_qv.1)
020 _z9811055882
_q(print ;
_qv.1)
040 _aN$T
_beng
_erda
_epn
_cN$T
_dEBLCP
_dGW5XE
_dN$T
_dOCLCF
_dYDX
_dNJR
_dNHM
_dSTF
_dMERER
_dOCLCO
_dIOG
_dCOO
_dOCLCQ
_dJG0
_dES-MaUEC
_bspa
066 _c(S
050 4 _aQR51
_b2017 EB
245 0 0 _aAgriculturally important microbes for sustainable agriculture.
_nVolume I,
_pPlant-soil-microbe nexus
_cVijay Singh Meena, Pankaj Kumar Mishra, Jaideep Kumar Bisht, Arunava Pattanayak, editors.
246 3 0 _aPlant-soil-microbe nexus
264 1 _aSingapore, Singapore
_bSpringer International Publishing Nature
_c2017
300 _a1 recurso en línea (xii, 356 páginas)
_bilustraciones (algunas a color)
336 _aTexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
500 _a
_bSpringer Biomedical and Life Sciences eBooks 2017 English+International
504 _aIncluye referencias bibliográficas
505 0 _aAbout the Editors; Part I: Role of Soil Microbe Interaction; 1: Plant Beneficial Rhizospheric Microbes (PBRMs): Prospects for Increasing Productivity and Sustaining the Resilience of Soil Fertility; 1.1 Introduction; 1.2 Rhizosphere Deposits and Priming Effect; 1.3 Plant Beneficial Rhizospheric Microbes (PBRMs); 1.3.1 Rhizospheric Microbes and Nutrient Acquisition; 1.3.2 Biocontrol Activities of Plant Beneficial Rhizospheric Microbes; 1.3.3 Rhizospheric Microbes in Plant Stress Resistance; 1.3.4 Rhizospheric Microbes and Crop Growth
505 8 _a1.3.5 Role of Rhizospheric Microbes in Soil Fertility and Sustainability1.4 Future Prospects; 1.5 Conclusions; References; 2: Rhizosphere Microorganisms Towards Soil Sustainability and Nutrient Acquisition; 2.1 Introduction; 2.2 Why Soil Sustainability Is So Important?; 2.3 The Rhizosphere: A Hot Spot for Microbial Activities; 2.4 Role of Rhizosphere Microorganisms in Soil Sustainability and Nutrient Acquisition; 2.4.1 Organic Matter (OM) Decomposition; 2.4.2 Nutrient Transformation and Availability; 2.4.3 Plant Growth-Promoting (PGP) Activities; 2.4.4 Biocontrol Agents
505 8 _a2.4.5 Soil Bioremediations2.4.6 Drought and Nutrient Stress/Deficiency; 2.5 Management of Rhizosphere System for Soil Sustainability and Productivity; 2.5.1 The Cultural Management/Practices; 2.5.2 Efficient Fertilization; 2.5.3 Use of Organic and Biofertilizers; 2.6 Concluding Remarks; References; 3: PGPR: Heart of Soil and Their Role in Soil Fertility; 3.1 Introduction; 3.2 Role of PGPR in Soil Fertility; 3.3 Plant Growth-Promoting Rhizobacteria (PGPR); 3.3.1 Classification of PGPRs; 3.3.1.1 On the Basis of Location; Extracellular PGPRs (ePGPRs); Intracellular PGPRs (iPGPRs)
505 8 _a3.3.1.2 On the Basis of FunctionalityPlant Growth-Promoting Bacteria; Biocontrolling Bacteria; Stress Homeoregulating Bacteria; 3.3.1.3 On the Basis of Activities; 3.4 PGPR Mechanism; 3.4.1 Direct Mechanism; 3.4.2 Indirect Mechanism; 3.5 Conclusions; References; 4: Strength of Microbes in Nutrient Cycling: A Key to Soil Health; 4.1 Introduction; 4.2 Soil Health; 4.3 Soil as a Microbial Habitat; 4.4 Microbial Decomposition of Organic Matter and Nutrient Availability; 4.5 Mineralization and Humification; 4.6 Role of Soil Enzymes in Organic Matter Decomposition; 4.7 Amylase
520 3 _a"This book presents a compilation of case studies from different countries on achieving agricultural sustainability. The book stresses that, in order to meet the needs of our rapidly growing population, it is imperative to increase agricultural productivity. If global food production is to keep pace with an increasing population, while formulating new food production strategies for developing countries, the great challenge for modern societies is to boost agricultural productivity. Today, the application of chemicals to enhance plant growth or induced resistance in plants is limited due to the negative effects of chemical treatment and the difficulty of determining the optimal concentrations to benefit the plant. In the search for alternative means to solve these problems, biological applications have been extensively studied. Naturally occurring plant-microbe-environment interactions are utilized in many ways to enhance plant productivity. As such, a greater understanding of how plants and microbes coexist and benefit one another can yield new strategies to improve plant productivity in the most sustainable way. Developing sustainable agricultural practices requires understanding both the basic and applied aspects of agriculturally important microorganisms, with a focus on transforming agricultural systems from being nutrient-deficient to nutrient-rich. This work is divided into two volumes, the aim being to provide a comprehensive description and to highlight a holistic approach, respectively. Taken together, the two volumes address the fundamentals, applications, research trends and new prospects of agricultural sustainability. Volume one consists of two sections, with the first addressing the role of microbes in sustainability, and the second exploring beneficial soil microbe interaction in several economically important crops. Section I elucidates various mechanisms and beneficial natural processes that enhance soil fertility and create rhizospheric conditions favourable for high fertility and sustainable soil flora. It examines the mechanism of action and importance of rhizobacteria and mycorrhizal associations in soil. In turn, section II presents selected case studies involving economically important crops. This section explains how agriculturally beneficial microbes have been utilized in sustainable cultivation with high productivity. Sustainable food production without degrading the soil and environmental quality is a major priority throughout the world, making this book a timely addition. It offers a comprehensive collection of information that will benefit students and researchers working in the field of rhizospheric mechanisms, agricultural microbiology, biotechnology, agronomy and sustainable agriculture, as well as policymakers in the area of food security and sustainable agriculture."--Provided by publisher.
650 7 _aMicrobiología
_2embne
_0(OCoLC)fst00801145
_0
_9138684
700 1 _aBisht, Jaideep Kumar,
_eeditor literario
_9101964
700 1 _aMeena, Vijay Singh,
_eeditor literario
_9100572
700 1 _aMishra, Pankaj Kumar,
_eeditor literario
_9101965
700 1 _aPattanayak, Arunava,
_eeditor literario
_9101966
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-981-10-5589-8
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
880 8 _6505-00
_a4.8 Arylsulfatase4.9 β-Glucosidase; 4.10 Cellulases; 4.11 Chitinase; 4.12 Dehydrogenase; 4.13 Phosphatases; 4.14 Proteases; 4.15 Concluding Remarks and Future Prospectives; References; 5: Quorum Sensing in Plant Microbe Interaction; 5.1 Introduction; 5.2 Biocommunication in Rhizosphere; 5.3 Mechanism of Quorum Sensing; 5.3.1 General Mechanism; 5.3.2 QS Mechanism in Rhizosphere; 5.4 Role of Biosurfactant in Rhizosphere Activity; 5.5 Quorum Sensing for Biosurfactant Production; 5.6 Biofilm Formation on the Root Surface; 5.7 Beneficial Aspects of Quorum Sensing
988 _aEBOOK, asignarmaterias, EBSPRINGER_2017
998 _b02/2018
_dz
_e-
_zSI
999 _c96531
_d96531
_x1