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PHYSIOLOGY --- INDUSTRIAL CROPS --- CROPS --- DEGRADATION --- AGRICULTURE --- HUMUS --- DISTRIBUTION --- TEMPERATURE --- REQUIREMENTS --- TAXONOMY --- CULTURES --- ISOLATION METHODS --- THERMOPHILIC FUNGI --- UTILIZATION --- PRODUCTION
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FUNGI --- SOILS --- MANGROVES --- MICROMYCETES --- MYXOMYCETES --- YEASTS --- MYCOSES --- THERMOPHILIC FUNGI --- ALTERNARIA --- CRYPTOCOCCOSIS --- MICROORGANISMS --- TROPICAL REGIONS --- BIOTA --- BIODIVERSITY --- SYSTEMATICS --- COMMUNITIES --- CHECKLISTS --- SYMBIOSIS --- DISTRIBUTION --- MOLECULAR SYSTEMATICS --- ECOLOGY --- PATHOGENICITY --- SUSTAINABLE AGRICULTURE --- REVIEWS --- MEXICO
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Xylanolytic Enzymes describes the enzyme structure and its interaction with plant cell walls, the properties and production of different enzymes and their application, and the knowledge gathered on the hydrolysis mechanism of hemicellulose. The knowledge gathered about the hydrolysis mechanism of the hemicelluloses, especially xylans, has greatly promoted the rapid application of these enzymes in new areas. Recently there has been much industrial interest in xylan and its hydrolytic enzymatic complex, as a supplement and for the manufacturing of food, drinks, textiles, pulps a
Enzyme. --- Thermophilic fungi -- Biotechnology. --- Xylanases. --- Xylans. --- Xylanases --- Metabolic Phenomena --- Polysaccharides --- Enzymes and Coenzymes --- Glycoside Hydrolases --- Carbohydrates --- Chemicals and Drugs --- Hydrolases --- Phenomena and Processes --- Xylans --- Enzymes --- Xylosidases --- Metabolism --- Chemistry --- Human Anatomy & Physiology --- Physical Sciences & Mathematics --- Health & Biological Sciences --- Animal Biochemistry --- Organic Chemistry --- Industrial applications --- Hemicellulose. --- Wood-pulp --- Hydrolases. --- Microbiology. --- Industrial applications. --- Industrial enzymology --- Hydrolytic enzymes --- Cellulose --- Bacteriology --- Enzymes.
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The existence of life at high temperatures is quiet fascinating. At elevated temperatures, only microorganisms are capable of growth and survival. Many thermophilic microbial genera have been isolated from man-made (washing machines, factory effluents, waste streams and acid mine effluents) and natural (volcanic areas, geothermal areas, terrestrial hot springs, submarine hydrothermal vents, geothermally heated oil reserves and oil wells, sun-heated litter and soils/sediments) thermal habitats throughout the world. Both culture-dependent and culture-independent approaches have been employed for understanding the diversity of microbes in hot environments. Interest in their diversity, ecology, and physiology has increased enormously during the past few decades as indicated by the deliberations in international conferences on extremophiles and thermophiles held every alternate year and papers published in journals such as Extremophiles. Thermophilic moulds and bacteria have been extensively studied in plant biomass bioconversion processes as sources of industrial enzymes and as gene donors. In the development of third generation biofuels such as bioethanol, thermophilic fungal and bacterial enzymes are of particular interest. The book is aimed at bringing together scattered up-to-date information on various aspects of thermophiles such as the diversity of thermophiles and viruses of thermophiles, their potential roles in pollution control and bioremediation, and composting.
Microbial metabolism. --- Microbiology. --- Microorganisms. --- Thermophilic microorganisms --- Microbial biotechnology --- Physiological Processes --- Organisms --- Temperature --- Phenomena and Processes --- Biological Science Disciplines --- Biology --- Thermodynamics --- Physiological Phenomena --- Natural Science Disciplines --- Physical Phenomena --- Disciplines and Occupations --- Genetics --- Bacteria --- Archaea --- Biotechnology --- Hot Temperature --- Microbiological Phenomena --- Adaptation, Physiological --- Mechanical Engineering --- Engineering & Applied Sciences --- Bioengineering --- Thermophilic bacteria. --- Thermophilic fungi --- Biotechnology. --- Bacteria, Thermophilic --- Medicine. --- Bacteriology. --- Entomology. --- Waste management. --- Biomedicine. --- Biomedicine general. --- Applied Microbiology. --- Eukaryotic Microbiology. --- Waste Management/Waste Technology. --- Waste disposal. --- Microbiology --- Insects --- Zoology --- Microbial biology --- Microorganisms --- Clinical sciences --- Medical profession --- Human biology --- Life sciences --- Medical sciences --- Pathology --- Physicians --- Health Workforce --- Biomedicine, general.
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Ecology. --- Fungi. --- 582.28 --- 581.5 --- Fungi --- #WPLT:dd.prof.J.Vendrig --- Fungal kingdom --- Fungus kingdom --- Funguses --- Mycobiota --- Mycota --- Cryptogams --- Mycology --- Fungi, Filamentous --- Molds --- Filamentous Fungi --- Filamentous Fungus --- Fungus --- Fungus, Filamentous --- Mold --- Allergens --- Fungal Proteins --- Microbiology --- Environmental Science --- Bionomics --- Ecologies --- Environmental Sciences --- Science, Environmental --- Sciences, Environmental --- Environmental Psychology --- Conservation of Natural Resources --- Environmental Health --- Ecosystem --- Eumycetes. True fungi. Moulds. Mycology --- Habits of plants. Plant behaviour. Plant ecology. Plant ethology. The plant and its environment. Bionomics of plants --- Ecology --- 581.5 Habits of plants. Plant behaviour. Plant ecology. Plant ethology. The plant and its environment. Bionomics of plants --- 582.28 Eumycetes. True fungi. Moulds. Mycology --- THERMOPHILIC FUNGI --- COPROPHILOUS FUNGI --- AQUATIC FUNGI --- WOOD --- DECOMPOSITION --- LEAVES --- FUNGI --- MYCORRHIZAS --- PARASITIC FUNGI --- SYMBIOSIS --- XEROPHYTES --- PSYCHROPHILY --- BIOLOGY
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