유기용매 내성 세균과 이용가능성

논문상세정보
' 유기용매 내성 세균과 이용가능성' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • biocatalysis
  • biodegradation
  • solvent-tolerance
  • solvent-tolerant bacteria
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
100 0

0.0%

' 유기용매 내성 세균과 이용가능성' 의 참고문헌

  • 유기용매내성세균 Bacillus sp. BCNU 5006의 유용성
    최혜정 KSBB Journal 27 (1) : 61 ~ 66 [2012]
  • 유기용매내성 세균 Bacillus sp. BCNU 5005의 유용성에 대한 검증
    최혜정 생명과학회지 21 (5) : 700 ~ 705 [2011]
  • Utilization of hydrophobic bacterium Rhodococcus opacus B-4 as whole-cell catalyst in anhydrous organic solvents
    Yamashita, S. Appl. Microbiol. Biotechnol 74 : 761 ~ 767 [2007]
  • Transcriptional tradeoff between metabolic and stress-response programs in Pseudomonas putida KT2440 cells exposed to toluene
    Domínguez-Cuevas, P. J. Biol. Chem 281 : 11981 ~ 11991 [2006]
  • Towards a biocatalyst for(S)-styrene oxide production : characterization of the styrene degradation pathway of Pseudomonas sp. strain VLB120
    Panke, S. Appl. Environ. Microbiol 64 : 2032 ~ 2043 [1998]
  • Tolerance of bacteria to organic solvents
    Sardessai, Y. Res. Microbiol 153 : 263 ~ 268 [2002]
  • Three Efflux Pumps Are Required to Provide Efficient Tolerance to Toluene in Pseudomonas putida DOT-T1E
    Rojas, A. J. Bacteriol 183 : 3967 ~ 3973 [2001]
  • The conversion of cis into trans unsaturated fatty acids in Pseudomonas putida P8 : evidence for a role in the regulation of membrane fluidity
    Diefenbach, R. Appl. Microbiol. Biotechnol 38 : 382 ~ 387 [1992]
  • The cis/trans isomerisation of unsaturated fatty acids in Pseudomonas putida S12 : an indicator for environmental stress due to organic compounds
    Heipieper, H. J. Chemosphere 30 : 1041 ~ 1051 [1995]
  • The RpoT regulon of Pseudomonas putida DOT-T1E and its role in stress endurance against solvents
    Duque, E. J. Bacteriol 189 : 207 ~ 219 [2007]
  • Testosterone 15β-hydroxylation by solvent tolerant Pseudomonas putida S12
    Ruijssenaars, H. J. J. Biotechnol 131 : 205 ~ 208 [2007]
  • Survey of extreme solvent tolerance in gram-positive cocci : membrane fatty acid changes in Staphylococcus haemolyticus grown in toluene
    Nielsen, L. E. Appl. Environ. Microbiol 71 : 5171 ~ 5176 [2005]
  • Solvent-tolerant bacteria in biocatalysis
    De Bont, J. A Trends Biotechnol 16 : 493 ~ 499 [1998]
  • Solvent tolerance in Gramnegative bacteria
    Segura, A. Curr. Opin. Biotechnol 23 : 415 ~ 421 [2012]
  • Simple and rapid cell growth assay using tetrazolium violet coloring method for screening of organic solvent tolerant bacteria
    Hayashi, S. J. Biosci. Bioeng 96 : 360 ~ 363 [2003]
  • Responses of Mycobacterium sp. LB501T to the low bioavailability of solid anthracene
    Wick, L. Appl. Microbiol. Biotechnol 58 : 378 ~ 385 [2002]
  • Response of Pseudomonas putida KT2440 to phenol at the level of membrane proteome
    Roma-Rodrigues, C. J. Proteomics 73 : 1461 ~ 1478 [2010]
  • Relationship between extracellular polysaccharide and benzene tolerance of Rhodococcus sp, 33
    Aizawa, T. Actinomycetologica 19 : 1 ~ 6 [2005]
  • Purification and characterization of an organic solvent-tolerant lipase from Pseudomonas aeruginosa LX1 and its application for biodiesel production
    Ji, Q. J. Mol. Catal., B Enzym 66 : 264 ~ 269 [2010]
  • Purification and characterization of Pseudomonas aeruginosa lipase produced by SSF of deoiled Jatropha seed cake
    Joshi, C. Biocatal. Agric. Biotechnol 2 : 32 ~ 37 [2013]
  • Pseudomonas sp. BCNU 154 유래의 유기용매 내성 리파아제
    최혜정 생명과학회지 23 (10) : 1246 ~ 1251 [2013]
  • Pseudomonas sp. BCNU 106의 persolvent fermentation에 의한 인디고이드계 색소 생산
    최혜정 생명과학회지 24 (1) : 81 ~ 85 [2014]
  • Proteomic profile changes in membranes of ethanol-tolerant Clostridium thermocellum
    Williams, T. I. Appl. Microbiol. Biotechnol 74 : 422 ~ 432 [2007]
  • Proteomic analysis reveals the participation of energy-and stress-related proteins in the response of Pseudomonas putida DOT-T1E to toluene
    Segura, A. J. Bacteriol 187 : 5937 ~ 5945 [2005]
  • Properties of newly isolated marine bacterium that can degrade polyaromatic hydrocarbons in the presence of organic solvents
    Abe, A. J. Marine Biotechnol 2 : 182 ~ 186 [1995]
  • Production, partial purification and characterization of organic solvent tolerant lipase from Burkholderia multivorans V2 and its application for ester synthesis
    Dandavate, V. Bioresour. Technol 100 : 3374 ~ 3381 [2009]
  • Prediction of the adaptability of Pseudomonas putida DOTT1E to a second phase of a solvent for economically sound two-phase biotransformations
    Neumann, G. Appl. Environ. Microbiol 71 : 6606 ~ 6612 [2005]
  • Physiological properties of a Pseudomonas strain which grows with p-xylene in a two-phase (organic-aqueous) medium
    Cruden, D. L. Appl. Environ. Microbiol 58 : 2723 ~ 2729 [1992]
  • Overexpression of groESL in Clostridium acetobutylicum results in increased solvent production and tolerance, prolonged metabolism, and changes in the cell's transcriptional program
    Tomas, C. A. Appl. Environ. Microbiol 69 : 4951 ~ 4965 [2003]
  • Outer Membrane Changes in a Toluene-Sensitive Mutant of Toluene-Tolerant Pseudomonas putida IH-2000
    Kobayashi, H. J. Bacteriol 181 : 4493 ~ 4498 [1999]
  • Organic solvent-tolerant bacterium which secretes an organic solvent-stable proteolytic enzyme
    Ogino, H. Appl. Environ. Microbiol 61 : 4258 ~ 4262 [1995]
  • Organic solvent adaptation of Gram positive bacteria : applications and biotechnological potentials
    Torres, S. Biotechnol. Adv 29 : 442 ~ 452 [2011]
  • Mycobacterium sp., Rhodococcus erythropolis, and Pseudomonas putida behavior in the presence of organic solvents
    De Carvalho, C. C. C, R. Microsc. Res. Tech 64 : 215 ~ 222 [2004]
  • Metal biosorption capacity of the organic solvent tolerant Pseudomonas fluorescens TEM08
    Uzel, A. Bioresour. Technol 100 : 542 ~ 548 [2009]
  • Metabolic engineering of hydrophobic Rhodococcus opacus for biodesulfurization in oil–water biphasic reaction mixtures
    Kawaguchi, H. J. Biosci. Bioeng 113 : 360 ~ 366 [2012]
  • Membrane vesicle formation as a multiple-stress response mechanism enhances Pseudomonas putida DOT-T1E cell surface hydrophobicity and biofilm formation
    Baumgarten, T. Appl. Environ. Microbiol 78 : 6217 ~ 6224 [2012]
  • Membrane fatty acids adaptive profile in the simultaneous presence of arsenic and toluene in Bacillus sp. ORAs2 and Pseudomonas sp. ORAs5 strains
    Pepi, M. Extremophiles 12 : 343 ~ 349 [2008]
  • Mechanisms of solvent tolerance in gram-negative bacteria
    Ramos J. L. Annu. Rev. Microbiol 56 : 743 ~ 768 [2002]
  • Mechanisms of membrane toxicity of hydrocarbons
    Sikkema J Microbiol. Rev 59 : 201 ~ 222 [1995]
  • Mechanisms for solvent tolerance in bacteria
    Ramos J. L. J. Biol. Chem 272 : 3887 ~ 3890 [1997]
  • Kinetics and metabolic versatility of highly tolerant phenol degrading Alcaligenes strain TW1
    Essam, T. J. Hazard. Mater 173 : 783 ~ 788 [2010]
  • Isolation, gene detection and solvent tolerance of benzene, toluene and xylene degrading bacteria from nearshore surface water and Pacific Ocean sediment
    Wang, L. Extremophiles 12 : 335 ~ 342 [2008]
  • Isolation of an organic-solvent-tolerant cholesterol-transforming Bacillus species, BC1, from coastal sediment
    Sardessai, Y. Mar. Biotechnol 5 : 116 ~ 118 [2003]
  • Isolation of a benzenetolerant bacterium and its hydrocarbon degradation
    Moriya, K. J. Ferment. Bioeng 76 : 168 ~ 173 [1993]
  • Isolation and some properties of an organic-solvent-tolerant marine bacterium degrading cholesterol
    Moriya, K. J. Mar. Biotechnol 2 : 131 ~ 133 [1995]
  • Isolation and screening of an extracellular organic solvent-tolerant protease producer
    Geok, L. P. Biochem. Eng. J 13 : 73 ~ 77 [2003]
  • Isolation and expansion of the catabolic potential of a Pseudomonas putida strain able to grow in the presence of high concentrations of aromatic hydrocarbons
    Ramos J. L. J. Bacteriol 177 : 3911 ~ 3916 [1995]
  • Isolation and characterization of the solvent-tolerant Bacillus cereus strain R1
    Matsumoto, M. J. Biosci. Bioeng 94 : 45 ~ 51 [2002]
  • Isolation and characterization of novel organic solvent-tolerant bacteria
    Zahir, Z. Extremophiles 10 : 129 ~ 138 [2006]
  • Isolation and characterization of benzene-tolerant Rhodococcus opacus strains
    Na, K. S. J. Biosci. Bioeng 99 : 378 ~ 382 [2005]
  • Isolation and Characterization of BTEX Tolerant and Degrading Pseudomonas putida BCNU 106
    최혜정 Biotechnology and Bioprocess Engineering 18 (5) : 1000 ~ 1007 [2013]
  • Involvement of the cis/trans Isomerase Cti in Solvent Resistance of Pseudomonas putida DOT-T1E
    Junker, F. J. Bacteriol 181 : 5693 ~ 5700 [1999]
  • Involvement of antioxidant defense system in solvent tolerance of Pseudomonas putida BCNU 106
    Choi, H. J. J. Basic Microbiol 54 : 945 ~ 950 [2014]
  • Influence and optimization of growth substrates on indigo formation by a novel isolate Acinetobacter sp. PP-2
    Qu, Y. Bioresour. Technol 101 : 4527 ~ 4532 [2010]
  • Industrial potential of organic solvent tolerant bacteria
    Sardessai, Y. N. Biotechnol. Prog 20 : 655 ~ 660 [2004]
  • In situ phenol removal from fed-batch fermentations of solvent tolerant Pseudomonas putida S12 by pertraction
    Heerema, L. Biochem. Eng. J 53 : 245 ~ 252 [2011]
  • Improvement of organic solvent tolerance by disruption of the lon gene in Escherichia coli
    Watanabe, R. J. Biosci. Bioeng 118 : 139 ~ 144 [2014]
  • Improved n-butanol production by solvent tolerant Clostridium beijerinckii
    Isar, J. Biomass Bioenergy 37 : 9 ~ 15 [2012]
  • Identification and molecular characterization of an efflux pump involved in Pseudomonas putida S12 solvent tolerance
    Kieboom, J. J. Biol. Chem 273 : 85 ~ 91 [1998]
  • Global analysis of the general stress response of Bacillus subtilis
    Petersohn, A. J. Bacteriol 183 : 5617 ~ 5631 [2001]
  • Functional characterization of Hsp33 protein from Bacillus psychrosaccharolyticus; additional function of HSP33 on resistance to solvent stress
    Kang, H. J. Biochem. Biophys. Res. Commun 358 : 743 ~ 750 [2007]
  • Extremophiles handbook
    Horikoshi, K. Springer : 3 ~ 15 [2011]
  • Estimation of solvent-tolerance of bacteria by the solvent parameter log P
    Inoue, A. J. Ferment. Bioeng 71 : 194 ~ 196 [1991]
  • Enzymatic synthesis of banana flavour(isoamyl acetate)by Bacillus licheniformis S-86 esterase
    Torres, S. Food Res. Int 42 : 454 ~ 460 [2009]
  • Enterobacter sp. VKGH12 growing with n‐butanol as the sole carbon source and cells to which the alcohol is added as pure toxin show considerable differences in their adaptive responses
    Veeranagouda, Y. FEMS Microbiol. Lett 254 : 48 ~ 54 [2006]
  • Engineering of solvent-tolerant Pseudomonas putida S12 for bioproduction of phenol from glucose
    Wierckx, N. J. Appl. Environ. Microbiol 71 : 8221 ~ 8227 [2005]
  • Energetics and surface properties of Pseudomonas putida DOT-T1E in a two-phase fermentation system with 1-decanol as second phase
    Neumann, G. Appl. Environ. Microbiol 72 : 4232 ~ 4238 [2006]
  • Efflux pumps involved in toluene tolerance in Pseudomonas putida DOT-T1E
    Ramos J. L. J. Bacteriol 180 : 3323 ~ 3329 [1998]
  • Efficient whole-cell biotransformation of 5-(hydroxymethyl)furfural into FDCA, 2, 5-furandicarboxylic acid
    Koopman, F. Bioresour. Technol 101 : 6291 ~ 6296 [2010]
  • Efficient production of skimmin and 6′-succinylskimmin from umbelliferone by organic solvent-tolerant Bacillus licheniformis ZSP01 using nitrogen sources regulation strategy
    Zhang, S. Biochem. Eng. J 71 : 105 ~ 110 [2013]
  • Efficient glycosylation of puerarin by an organic solvent-tolerant strain of Lysinibacillus fusiformis
    Wang, S. Enzyme Microb. Technol 57 : 42 ~ 47 [2014]
  • Effect of hydroxylic solvents on cell growth, sporulation, and esterase production of Bacillus licheniformis S-86
    Torres, S. Process Biochem 40 : 2333 ~ 2338 [2005]
  • Degradation of phorbol esters by Pseudomonas aeruginosa PseA during solid-state fermentation of deoiled Jatropha curcas seed cake
    Joshi, C. Bioresour. Technol 102 : 4815 ~ 4819 [2011]
  • Degradation of hydrocarbons and alcohols at different temperatures and salinities by Rhodococcus erythropolis DCL14
    De Carvalho, C. C. C, R. FEMS Microbiol. Ecol 51 : 389 ~ 399 [2005]
  • Chemostat‐based proteomic analysis of toluene‐affected Pseudomonas putida S12
    Volkers, R. J. Environ. Microbiol 8 : 1674 ~ 1679 [2006]
  • Characterization of Pseudomonas sp. BCNU 171 tolerant to organic solvents
    Choi, H. J. J. Basic Microbiol 48 : 473 ~ 479 [2008]
  • Cells of Pseudomonas putida and Enterobacter sp. adapt to toxic organic compounds by increasing their size
    Neumann, G. Extremophiles 9 : 163 ~ 168 [2005]
  • Cell surface properties of organic solvent-tolerant mutants of Escherichia coli K-12
    Aono, R. Appl. Environ. Microbiol 63 : 3637 ~ 3642 [1997]
  • Cell envelope changes in solvent-tolerant and solvent-sensitive Pseudomonas putida strains following exposure to o-xylene
    Pinkart, H. C. Appl. Environ. Microbiol 62 : 1129 ~ 1132 [1996]
  • Carbon metabolism and product inhibition determine the epoxidation efficiency of solvent‐tolerant Pseudomonas sp. strain VLB120℃
    Park, J. B. Biotechnol. Bioeng 98 : 1219 ~ 1229 [2007]
  • Biodegradation of high-concentration isopropanol by a solvent-tolerant thermophile, Bacillus pallidus
    Bustard, M. T. Extremophiles 6 : 319 ~ 323 [2002]
  • Biodegradation of diethyl phthalate by an organic-solvent-tolerant Bacillus subtilis strain 3C3 and effect of phthalate ester coexistence
    Navacharoen, A. Int. Biodeterior. Biodegradation 65 : 818 ~ 826 [2011]
  • Bacterial degradation of styrene involving a novel flavin adenine dinucleotide-dependent styrene monooxygenase
    Hartmans S. Appl. Environ. Microbiol 56 : 1347 ~ 1351 [1990]
  • Bacterial chemotaxis towards aromatic hydrocarbons in Pseudomonas
    Lacal, J. Environ. Microbiol 13 : 1733 ~ 1744 [2011]
  • An organic solvent and thermally stable lipase from Burkholderia ambifaria YCJ01 : purification, characteristics and application for chiral resolution of mandelic acid
    Yao, C. J. Mol. Catal. B Enzym 85 : 105 ~ 110 [2013]
  • An efficient novel glycosylation of flavonoid by β-fructosidase resistant to hydrophilic organic solvents
    Wu, X. Bioresour. Technol 129 : 659 ~ 662 [2013]
  • Alkanols and chlorophenols cause different physiological adaptive responses on the level of cell surface properties and membrane vesicle formation in Pseudomonas putida DOT-T1E
    Baumgarten, T. Appl. Microbiol. Biotechnol 93 : 837 ~ 845 [2012]
  • Adaptation of Rhodococcus erythropolis DCL14 to growth on n-alkanes, alcohols and terpenes
    De Carvalho, C. C. C, R. Appl. Microbiol. Biotechnol 67 : 383 ~ 388 [2005]
  • Adaptation of Pseudomonas putida S12 to high concentrations of styrene and other organic solvents
    Weber, F. J. Appl. Environ. Microbiol 59 : 3502 ~ 3504 [1993]
  • Adaptation mechanisms of microorganisms to the toxic effects of organic solvents on membranes
    Weber, F. J. Biochim. Biophys. Acta 1286 : 225 ~ 245 [1996]
  • Active efflux of toluene in a solvent-resistant bacterium
    Isken, S. J. Bacteriol 178 : 6056 ~ 6058 [1996]
  • A newly isolated organic solvent tolerant Bacillus sphaericus 205y producing organic solvent-stable lipase
    Hun, C. J. Biochem. Eng. J 15 : 147 ~ 151 [2003]
  • A benzene-tolerant bacterium utilizing sulfur compounds isolated from deep sea
    Moriya, K. J. Ferment. Bioeng 76 : 397 ~ 399 [1993]
  • A Rhodococcus species that thrives on medium saturated with liquid benzene
    Paje, M. L. F. Microbiology 143 : 2975 ~ 2981 [1997]
  • A Pseudomonas thrives in high concentrations of toluene
    Inoue, A. Nature 338 : 264 ~ 266 [1989]