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| 001 | 96596 | ||
| 003 | ES-MaUEC | ||
| 005 | 20230102112801.0 | ||
| 006 | m o d | ||
| 007 | cr cnu---unuuu | ||
| 008 | 171012s2017 sz o 101 0 eng d | ||
| 020 |
_a3319633368 _q(electronic bk.) |
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| 020 |
_a9783319633367 _q(electronic bk.) |
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| 020 | _z331963335X | ||
| 020 |
_z9783319633350 _q(print) |
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_aN$T _beng _erda _epn _cN$T _dGW5XE _dN$T _dYDX _dOCLCF _dUAB _dSTF _dEBLCP _dAZU _dMERER _dUPM _dIOG _dJG0 _dCOO _dOCLCQ _dES-MaUEC _bspa |
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| 066 | _c(S | ||
| 050 | 4 |
_aQH84.8 _b2017 EB |
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| 245 | 0 | 0 |
_aSoil biological communities and ecosystem resilience _cMartin Lukac, Paola Grenni, Mauro Gamboni, editors. |
| 264 | 1 |
_aCham, Switzerland _bSpringer International Publishing _c2017 |
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| 300 | _a1 recurso en línea | ||
| 336 |
_aTexto _btxt _2rdacontent |
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| 337 |
_aelectrónico _bc _2rdamedia |
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| 338 |
_arecurso electrónico _bcr _2rdacarrier |
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| 347 |
_atext file _bPDF |
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| 490 | 0 | _aSustainability in plant and crop protection | |
| 500 | _aIncludes index. | ||
| 500 |
_a _bSpringer Biomedical and Life Sciences eBooks 2017 English+International |
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| 505 | 0 |
_6880-01 _a""Series Preface""; ""Editorsâ#x80;#x99; Preface""; ""Contents""; ""Chapter 1: Introduction: The Role of Soil Biodiversity in Ecosystem Productivity and Resilience""; ""References""; ""Chapter 2: Ecosystem Services Provided By Soil Microorganisms""; ""2.1 Introduction""; ""2.2 Regulating Services""; ""2.3 Supporting Services""; ""2.4 Provisioning Services""; ""2.5 Soil Microorganisms as Indicators""; ""2.6 Conclusions""; ""References""; ""Chapter 3: Comparison of Two Molecular Methods to Assess Soil Microbial Diversity""; ""3.1 Introduction""; ""3.1.1 Denaturing Gradient Gel Electrophoreses"" |
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| 505 | 8 | _a""3.1.2 Fluorescent in Situ Hybridization""""3.2 Example of Application of DGGE and Fish Techniques to Contaminated Soil Samples""; ""3.2.1 Experimental Set-Up""; ""3.2.2 Microbial Community Structure Evaluated by DGGE""; ""3.2.3 Microbial Community Structure Evaluated by FISH""; ""3.2.4 Results and Comparison of the Two Microbiological Methods""; ""3.3 Conclusions""; ""References""; ""Chapter 4: Towards Integrated Understanding of the Rhizosphere Phenomenon as Ecological Driver: Can Rhizoculture Improve Agricultural and Forestry Systems?""; ""4.1 Introduction"" | |
| 505 | 8 | _a""4.1.1 Rhizoculture: Strategies for the Intensification of Roots and Rhizosphere Activity to Reduce Fertilization and Improve Resilience in Agriculture and Forestry""""4.2 Bases and Hypotheses for Developing Rhizoculture in Agricultural and Forestry Systems""; ""4.2.1 A Calcium (pH)-Induced Chlorosis Hypothesis in Some Ecmf-Host Plant Symbiosis Based on the Ability of ECMF to Mobilize Calcium Salts""; ""4.2.2 The Oxalate-Calcium Carbonate Pathway in the Interactions Between Fungi and Oxalotrophic Bacteria"" | |
| 505 | 8 | _a""4.2.3 Interactions Between Soil Fauna and Mycorrhizae-Host Plant Systems Associated to the â#x80;#x9C;paradox of Ca2+ saltsâ#x80;#x9D;""""4.2.4 The Liming Effect on AMFs in Agriculture""; ""4.3 Basis and Applications of Rhizoculture in Some Strategic Approaches""; ""4.3.1 Food Production and Forest Resources at the Global Level""; ""4.3.2 Strategic Keys to Implement Rhizoculture Models to Optimize Its Impact on the Mitigation of Greenhouse Gas Emissions, Pollution Associated to Fertilizers Use and Food Security"" | |
| 505 | 8 | _a""4.3.3 Basis to Integrating the Rhizoculture and the Soil Organic Matter Management by Livestock, Biomass and Bioenergy Uses""""4.3.4 Basis to Integrating the Rhizoculture with Alternative Fertilizers Based on Waste Recycling and Aquaculture""; ""4.3.5 Basis for Integrating Rhizoculture and Liming in Agriculture and Forestry: Impact of Mycorrhizae and Calcium on the Physiology of Plants""; ""4.4 Conclusions""; ""References""; ""Chapter 5: Impact of Agricultural Land Management on Soil Bacterial Community: A Case Study in the Mediterranean Area""; ""5.1 Introduction"" | |
| 520 | 3 | _aThis volume explores current knowledge and methods used to study soil organisms and to attribute their activity to wider ecosystem functions. Biodiversity not only responds to environmental change, but has also been shown to be one of the key drivers of ecosystem function and service delivery. Soil biodiversity in tree-dominated ecosystems is also governed by these principles, the structure of soil biological communities is clearly determined by environmental, as well as spatial, temporal and hierarchical factors. Global environmental change, together with land-use change and ecosystem management by humans, impacts the aboveground structure and composition of tree ecosystems. Due to existing knowledge of the close links between the above- and belowground parts of terrestrial ecosystems, we know that soil biodiversity is also impacted. However, very little is known about the nature of these impacts; effects on the overall level of biodiversity, the magnitude and diversity of functions soil biodiversity generates, but also on the present and future stability of tree ecosystems and soils. Even though much remains to be learned about the relationships between soil biodiversity and tree ecosystem functionality, it is clear that better effort needs to be made to describe and understand key processes which take place in soils and are driven by soil biota. | |
| 650 | 7 |
_aBiodiversidad _2embne _0(OCoLC)fst01737738 _0 _9150038 |
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| 700 | 1 |
_aGamboni, Mauro, _eeditor literario |
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| 700 | 1 |
_aGrenni, Paola, _eeditor literario |
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| 700 | 1 |
_aLukac, Martin, _eeditor literario |
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| 710 | 2 |
_aCOST Action FP1305 (Project). _bMeeting _d(2015 : _cRome, Italy) |
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| 856 | 4 | 0 |
_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-63336-7 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
| 880 | 0 |
_6505-01/(S _a1. Introduction: the role of soil biodiversity in ecosystem productivity and resilience -- 2 Ecosystem services provided by soil microorganisms -- 3. Comparison of two molecular methods to assess soil microbial diversity -- 4. Towards integrated understanding of the rhizosphere phenomenon as ecological driver: can rhizoculture improve agricultural and forestry systems-- 5. Impact of agricultural land management on soil bacterial community: a case study in the Mediterranean area -- 6. A metagenomic study on the effect of aboveground plant cover on soil bacterial diversity -- 7. What lies beneath: root-associated bacteria to improve the growth and health of olive trees -- 8. Norway spruce fine roots and fungal hyphae grow deeper in forest soils after extended drought -- 9. Ectomycorrhizal diversity in beech dominated stands in central Europe -- 10. Arbuscular mycorrhizal fungal communities pushed over the edge -- lessons from extreme ecosystems -- 11. An intact soil core bioassay for cultivating forest ectomycorrhizal fungal communities -- 12. Potential role of beneficial soil microorganisms in plant tolerance to abiotic stress -- 13. Microbial communities, functional genes, and nitrogen cycling processes as affected by tree species -- 14. Ectomycorrhizal fungal responses to forest liming and wood ash addition: review and meta-analysis -- 15. β-glucosidase activity of forest soil as an indicator of soil carbon accumulation -- 16. Linking ecosystem variability and carbon sequestration: estimation of sequestered carbon in natural forests and perennial crops- 17. Bioactive peptaibols of forest-derived trichoderma isolates from section Longibrachiatum -- 18. Plant-assisted bioremediation: an ecological approach for recovering multi-contaminated areas -- 19. Bioavailability of polycyclic aromatic hydrocarbons in soil as affected by microorganisms and plants -- 20. Soil biodiversity and tree crops resilience. |
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| 988 | _aEBOOK, asignarmaterias, EBSPRINGER_2017 | ||
| 998 |
_b02/2018 _dz _e- _zSI |
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