Advances in Microbiology

Advances in Microbiology

ISSN Print: 2165-3402
ISSN Online: 2165-3410
www.scirp.org/journal/aim
E-mail: aim@scirp.org
"Metabolic Engineering of Thermoanaerobacterium thermosaccharolyticum for Increased n-Butanol Production"
written by Ashwini Bhandiwad, Anna Guseva, Lee Lynd,
published by Advances in Microbiology, Vol.3 No.1, 2013
has been cited by the following article(s):
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[2] Thermo resistant antioxidants from photoautotrophic microorganisms: screening and characterization
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[3] Development of a thermophilic coculture for corn fiber conversion to ethanol
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[4] Genomic and metabolic insights into solvent production by Thermoanaerobacterium thermosaccharolyticum GSU5
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[5] Recent advances in consolidated bioprocessing for microbe-assisted biofuel production
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[6] A perspective on biotechnological applications of thermophilic microalgae and cyanobacteria
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[7] The draft genome sequence of Clostridium sp. strain CT7, an isolate capable of producing butanol but not acetone and 1,3-propanediol from crude glycerol
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[8] Extreme environments: microbiology leading to specialized metabolites
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[9] Metabolic engineering strategies for consolidated production of lactic acid from lignocellulosic biomass
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[10] Consolidated bioprocessing of butanol production from xylan by a thermophilic and butanologenic Thermoanaerobacterium sp. M5
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[11] Advanced bioprocessing strategies for biobutanol production from biomass
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[12] Diagnóstico ambiental de alternativas para el aprovechamiento del potencial geotérmico del paisaje salino en la vereda la esperanza, Paipa-Boyacá
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[13] Progress and perspective of biosynthetic platform for higher-order biofuels
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[14] Cellulosic biobutanol by Clostridia: Challenges and improvements
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[15] Characterization of two cryptic plasmids from Kocuria palustris IPUFS-1 and construction of novel Escherichia coli–Kocuria shuttle vector for biocatalysis
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[16] The Draft Genome Sequence of Thermophilic Thermoanaerobacterium thermosaccharolyticum M5 Capable of Directly Producing Butanol from …
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[17] Development of the Extreme Thermophiles Pyrococcus furiosus and Sulfolobus acidocaldarius as Metabolic Engineering Platforms
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[18] Development of the Extreme Thermophiles Pyrococcus furiosus and Sulfolobus acidocaldarius as Metabolic Engineering Platforms.
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[19] Metabolic engineering of the hyperthermophilic archaeon Pyrococcus furiosus for the renewable production of biofuels and commodity chemicals
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[20] Characterization of Alcohol Dehydrogenases from Hyperthermus butylicus
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[21] Pervaporation membrane reactors: Biomass conversion into alcohols
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[22] The bifunctional alcohol and aldehyde dehydrogenase gene, adhE, is necessary for ethanol production in Clostridium thermocellum and Thermoanaerobacterium …
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[23] CHEMILUMINESCENCE ANALYSIS OF THE EFFECT OF BUTANOL-DIESEL FUEL BLENDS ON THE SPRAY-COMBUSTION PROCESS IN AN …
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[24] Metabolic Engineering of Thermophiles for Biofuel Production
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[25] Electron Metabolism and Ethanol Formation in Clostridium thermocellum and Thermoanaerobacterium saccharolyticum
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[26] The Bifunctional Alcohol and Aldehyde Dehydrogenase Gene, adhE, Is Necessary for Ethanol Production in Clostridium thermocellum and Thermoanaerobacterium saccharolyticum
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[27] Ethanol production by engineered thermophiles
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[28] Advances in consolidated bioprocessing systems for bioethanol and butanol production from biomass: a comprehensive review
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[29] Thermophiles in the genomic era: Biodiversity, science, and applications
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[30] A hybrid synthetic pathway for butanol production by a hyperthermophilic microbe
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[31] Alcohol selectivity in a synthetic thermophilic n-butanol pathway is driven by biocatalytic and thermostability characteristics of constituent enzymes
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[32] Metabolically redirected biohydrogen pathway integrated with biomethanation for improved gaseous energy recovery
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[33] Isobutanol production at elevated temperatures in thermophilic< i> Geobacillus thermoglucosidasius
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[34] Chemiluminescence analysis of the effect of butanol-diesel fuel blends on the spray-combustion process in an experimental common rail diesel engine
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[35] Production of lignofuels and electrofuels by extremely thermophilic microbes
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[36] Isobutanol production at elevated temperatures in thermophilic Geobacillus thermoglucosidasius
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[37] Anaerobic Thermophiles
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