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Bioengineered|February 26, 2015
Structural studies on Laz, a promiscuous anticancer Neisserial proteinWataru Hashimoto, Akihito Ochiai, Chang Soo Hong, et al.Medical Journal, Armed Forces India|July 14, 2016
Percutaneous Closure of Perimembranous Ventricular Septal Defect with Amplatzer DeviceP Bharadwaj, A Banerji, R Datta, et al.Basic Life Sciences|January 1, 1984
Microbial biodegradation of 2,4,5-trichlorophenoxyacetic acid and chlorophenolsJ S Karns, J J Kilbane, D K Chatterjee, et al.Bio/Technology (Nature Publishing Company)|March 1, 1990
Enhanced removal of Exxon Valdez spilled oil from Alaskan gravel by a microbial surfactantS Harvey, I Elashvili, J J Valdes, et al.Journal of Bacteriology|December 1, 1992
Roles of CatR and cis,cis-muconate in activation of the catBC operon, which is involved in benzoate degradation in Pseudomonas putidaM R Parsek, D L Shinabarger, R K Rothmel, et al.Gene|April 1, 1991
Cloning and characterization of a chromosomal DNA region required for growth on 2,4,5-T by Pseudomonas cepacia AC1100R A Haugland, U M Sangodkar, P R Sferra, et al.Journal of Bacteriology|May 29, 1999
Regulation of alginate biosynthesis in Pseudomonas syringae pv. syringaeM K Fakhr, A Peñaloza-Vázquez, A M Chakrabarty, et al.Molecular Microbiology|September 1, 1993
Nucleotide sequence and expression of the Pseudomonas aeruginosa algF gene controlling acetylation of alginateD Shinabarger, T B May, A Boyd, et al.Journal of Bacteriology|January 1, 1985
Fructose 1,6-bisphosphate aldolase activity is essential for synthesis of alginate from glucose by Pseudomonas aeruginosaP C Banerjee, R I Vanags, A M Chakrabarty, et al.Applied and Environmental Microbiology|June 3, 1998
Genes for 2,4,5-trichlorophenoxyacetic acid metabolism in Burkholderia cepacia AC1100: characterization of the tftC and tftD genes and locations of the tft operons on multiple repliconsA Hübner, C E Danganan, L Xun, et al.Pageof 94