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Titlebook: Consequences of Microbial Interactions with Hydrocarbons, Oils, and Lipids: Production of Fuels and ; Sang Yup Lee Reference work 2017 Spr

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https://doi.org/10.1007/978-1-4471-5185-2 an enzyme class catalyzing highly interesting reactions for the production of high value added compounds and fine chemicals. Exploiting these reactions for biocatalysis requires the development of different reaction concepts, as hydrocarbons are often problematic substrates in terms of toxicity and
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https://doi.org/10.1007/978-1-4471-5436-5en chemistry and biology is currently under a deep transformation influenced by the implementation of OMICS tools. We can now access uncultured bacteria, whose genomic material can further be a resource of enzymes for novel enzymology. Among enzymes of interest are esterases and lipases from the α/β
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Handbook of Hydrocarbon and Lipid Microbiologyhttp://image.papertrans.cn/c/image/235729.jpg
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Reference work 2017d materials by integrating strain and enzyme development, fermentation processes, and downstream processes. The book also covers how microbes and microbial products can be employed to facilitate petroleum recovery. Global consequences of bio-based production of chemicals, fuels and materials are also discussed with insights..
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Christopher Chiu MRCP, FRCPath, PhD intensity of 60–100 Wm.. Slow growth is the major hurdle retarding the production of hydrocarbon at a large scale. The combined approach of molecular biology, genetic engineering and ecology is recommended to escalate the algal growth and hydrocarbon production to yield a commercially competitive alternative for renewable biofuels from algae.
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https://doi.org/10.1007/978-1-4471-4709-1context of using bulk or cell-specific fluorescence to quantify neutral lipids of live or preserved cells. We show that with proper caution in its interpretation across species and physiological states the quantity of lipid in hundreds of small volume samples can be reliably assessed daily using a refined Nile Red protocol.
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