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Titlebook: Biology of Rhodococcus; Héctor M. Alvarez Book 2019Latest edition Springer Nature Switzerland AG 2019 Biotechnology.Environment.Genetics.M

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Adaptation of , to Organic Solvents,ons, as well as the physicochemical properties of the cell surface, can degrade or bioconvert toxic compounds such as benzene and toluene, and can aggregate and produce exopolymeric substances to protect the cell population. The adaptability and versatility of . cells can further broaden their application scope.
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https://doi.org/10.1007/978-3-540-78528-6r metabolic processes is given. Glycolytic pathways, gluconeogenesis, phosphoenolpyruvate-pyruvate-oxaloacetate node, tricarboxylic acid cycle (TCA), glyoxylate pathway, and some lithoautotrophic pathways are included.
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Central Metabolism of Species of the Genus ,r metabolic processes is given. Glycolytic pathways, gluconeogenesis, phosphoenolpyruvate-pyruvate-oxaloacetate node, tricarboxylic acid cycle (TCA), glyoxylate pathway, and some lithoautotrophic pathways are included.
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https://doi.org/10.1007/978-3-540-78528-6gated through diverse bioinformatic approaches. In particular, whole-genome comparative and genome-based functional studies were associated to . technologies for the study of the global . cell response with the aim of providing insight into the genetic basis of specific catabolic capacities and phen
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Kompendium der Mediengestaltungand regulatory patterns, although the amidase gene is always linked to the NHase gene. Due to the advantage of being resistant to toxic compounds, applications of . in pollutant biodegradation and biocatalytic processes are very promising. While studies on the biodegradation of nitrile pollutants fo
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https://doi.org/10.1007/978-3-642-20582-8ratory and field-scale studies on . application in cleanup technologies are reviewed relating to in situ subsurface and groundwater remediation, on-site treatments of contaminated soils, sludges, wastewaters, and gaseous emissions.
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