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020 _a9783030023690
024 7 _a10.1007/978-3-030-02369-0
_2doi
050 4 _aQK861
_b2018 EB
245 0 0 _aApproaches in Bioremediation :
_bThe New Era of Environmental Microbiology and Nanobiotechnology
_cedited by Ram Prasad, Elisabet Aranda
264 1 _aCham
_bSpringer International Publishing
_c2018
300 _a1 recurso en línea (XVI, 403 páginas)
_b58 ilustraciones, 38 ilustraciones a color
337 _2rdamedia
_aelectrónico
_bc
338 _2rdacarrier
_arecurso electrónico
_bcr
347 _atext file
_bPDF
_2rda
490 0 _aNanotechnology in the Life Sciences
_x2523-8027
490 0 _aBiomedical and Life Sciences (Springer-11642)
505 0 _aPreface -- Omics approaches and its impact on bioremediation techniques -- New omics for bioremediation to close the gap between structure and application -- Fungal transcriptomic analysis in reference to bioremediation -- Potential for CRISPR genetic engineering to increase degradation capacities in model fungi -- Phytoremediation and fungi -- Soil-borne fungi in bioremediation of polycyclic aromatic hydrocarbons compounds -- Dynamics of archaeal, bacterial, and fungal communities during the bioremediation of petroleum hydrocarbon-contaminated soils -- Role of microbes in waste water treatment -- Strategies for biodegradation of fluorinated compounds -- Marine-derived fungi as promising candidates for enhanced bioremediation -- Stepwise strategies for the bioremediation of contaminated soils -- Fungal allies as mediators in polycyclic aromatic hydrocarbon degradation -- Use of fungi in bioremediation and exploitation of olive mill wastes -- Fungal nanoparticles formed in saline environments are conducive to soil health and remediation -- Fungal nanoparticles in therapeutics -- Fungal bioremediation, microbiology, and nanotechnology -- Rhizospheric microorganisms as elicitors for tolerance against biotic and abiotic stresses -- Index.
520 3 _aBioremediation refers to the clean‐up of pollution in soil, groundwater, surface water, and air using typically microbiological processes. It uses naturally occurring bacteria and fungi or plants to degrade, transform or detoxify hazardous substances to human health or the environment. For bioremediation to be effective, microorganisms must enzymatically attack the pollutants and convert them to harmless products. As bioremediation can be effective only where environmental conditions permit microbial growth and action, its application often involves the management of ecological factors to allow microbial growth and degradation to continue at a faster rate. Like other technologies, bioremediation has its limitations. Some contaminants, such as chlorinated organic or high aromatic hydrocarbons, are resistant to microbial attack. They are degraded either gradually or not at all, hence, it is not easy to envisage the rates of clean-up for bioremediation implementation. Bioremediation represents a field of great expansion due to the important development of new technologies. Among them, several decades on metagenomics expansion has led to the detection of autochthonous microbiota that plays a key role during transformation. Transcriptomic guides us to know the expression of key genes and proteomics allow the characterization of proteins that conduct specific reactions. In this book we show specific technologies applied in bioremediation of main interest for research in the field, with special attention on fungi, which have been poorly studied microorganisms. Finally, new approaches in the field, such as CRISPR-CAS9, are also discussed. Lastly, it introduces management strategies, such as bioremediation application for managing affected environment and bioremediation approaches. Examples of successful bioremediation applications are illustrated in radionuclide entrapment and retardation, soil stabilization and remediation of polycyclic aromatic hydrocarbons, phenols, plastics or fluorinated compounds. Other emerging bioremediation methods include electro bioremediation, microbe-availed phytoremediation, genetic recombinant technologies in enhancing plants in accumulation of inorganic metals, and metalloids as well as degradation of organic pollutants, protein-metabolic engineering to increase bioremediation efficiency, including nanotechnology applications are also discussed.
988 _aEBSPRINGER_BIOMEDLIFE_2019
650 7 _aFitoquímica
_2embne
_9139638
700 1 _aPrasad, Ram
_eeditor literario
_4edt
_4http://id.loc.gov/vocabulary/relators/edt
_0http://id.loc.gov/authorities/names/n88001195
_1http://viaf.org/viaf/79069934
_9101615
700 1 _aAranda, Elisabet
_eeditor literario
_4edt
_4http://id.loc.gov/vocabulary/relators/edt
776 0 8 _iPrinted edition:
_z9783030023683
776 0 8 _iPrinted edition:
_z9783030023706
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1007/978-3-030-02369-0
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
942 _2lcc
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998 _aSI
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_b06/2019
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