Escherichia coli Biofilms Formed under Low-Shear Modeled Microgravity in a Ground-Based System
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[1] Portonovo S. Ayyaswamy,et al. Optimal conditions for simulating microgravity employing NASA designed rotating wall vessels , 2007 .
[2] Anastasia Papakonstantinopoulou,et al. Transcriptome Analysis of Pseudomonas aeruginosa Growth: Comparison of Gene Expression in Planktonic Cultures and Developing and Mature Biofilms , 2005, Journal of bacteriology.
[3] U. Romling,et al. Effect of Heat, Acidification, and Chlorination on Salmonella enterica Serovar Typhimurium Cells in a Biofilm Formed at the Air-Liquid Interface , 2005, Applied and Environmental Microbiology.
[4] Eoin L. Brodie,et al. Role and Regulation of σs in General Resistance Conferred by Low-Shear Simulated Microgravity in Escherichia coli , 2004, Journal of bacteriology.
[5] J. Trevors,et al. Growth and membrane polarization in Pseudomonas aeruginosa UG2 grown in randomized microgravity in a high aspect ratio vessel. , 2003, Biochimica et biophysica acta.
[6] J. Costerton,et al. Bacterial biofilms: a diagnostic and therapeutic challenge , 2003, Expert review of anti-infective therapy.
[7] M. Schembri,et al. Global gene expression in Escherichia coli biofilms , 2003, Molecular microbiology.
[8] Marcelo H. Kobayashi,et al. On the viscous motion of a small particle in a rotating cylinder , 2002, Journal of Fluid Mechanics.
[9] C. Mark Ott,et al. Microarray analysis identifies Salmonella genes belonging to the low-shear modeled microgravity regulon , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[10] A. Matin,et al. Tetracycline Rapidly Reaches All the Constituent Cells of Uropathogenic Escherichia coli Biofilms , 2002, Antimicrobial Agents and Chemotherapy.
[11] A. Pogorelov,et al. Three-dimensional (3-D) structures formed by immortalized human fibroblast cells in simulated microgravity. , 2002, Journal of gravitational physiology : a journal of the International Society for Gravitational Physiology.
[12] Jorge Membrillo-Hernández,et al. A mutation in rpoS enhances biofilm formation in Escherichia coli during exponential phase of growth. , 2002, FEMS microbiology letters.
[13] C. Prigent-Combaret,et al. Complex Regulatory Network Controls Initial Adhesion and Biofilm Formation in Escherichia coli via Regulation of thecsgD Gene , 2001, Journal of bacteriology.
[14] K. Lewis,et al. Biofilms and Planktonic Cells of Pseudomonas aeruginosa Have Similar Resistance to Killing by Antimicrobials , 2001, Journal of bacteriology.
[15] S. Radin,et al. Surface transformation of bioactive glass in bioreactors simulating microgravity conditions. Part I: experimental study. , 2001, Biotechnology and bioengineering.
[16] R. McLean,et al. Bacterial biofilm formation under microgravity conditions. , 2001, FEMS microbiology letters.
[17] D F Meaney,et al. Numerical model and experimental validation of microcarrier motion in a rotating bioreactor. , 2000, Tissue engineering.
[18] C. Mark Ott,et al. Microgravity as a Novel Environmental Signal Affecting Salmonella enterica Serovar Typhimurium Virulence , 2000, Infection and Immunity.
[19] R. McLean,et al. Impact of rpoS Deletion onEscherichia coli Biofilms , 1999, Applied and Environmental Microbiology.
[20] J. Handelsman,et al. A vector for promoter trapping in Bacillus cereus. , 1999, Gene.
[21] M. Spector,et al. Starvation- and Stationary-phase-induced resistance to the antimicrobial peptide polymyxin B in Salmonella typhimurium is RpoS (sigma(S)) independent and occurs through both phoP-dependent and -independent pathways , 1996, Journal of bacteriology.
[22] R. Gennis,et al. Energetic efficiency of Escherichia coli: effects of mutations in components of the aerobic respiratory chain , 1993, Journal of bacteriology.
[23] T. Goodwin,et al. Prospects for use of microgravity‐based bioreactors to study three‐dimensional host—tumor interactions in human neoplasia , 1993, Journal of cellular biochemistry.
[24] D. Wolf,et al. Experimental measurement of the orbital paths of particles sedimenting within a rotating viscous fluid as influenced by gravity , 1992 .
[25] D. Wolf,et al. Responses of gravity level variations on the NASA/JSC bioreactor system. , 1992, The Physiologist.
[26] David A. Wolf,et al. Analysis of gravity-induced particle motion and fluid perfusion flow in the NASA-designed rotating zero-head-space tissue culture vessel , 1991 .
[27] A. Matin,et al. The putative sigma factor KatF has a central role in development of starvation-mediated general resistance in Escherichia coli , 1991, Journal of bacteriology.
[28] Yuri Gagarin,et al. Travails of microgravity : man and microbes in space , 2005 .
[29] K. Mukundakrishnan. Fluid mechanics and mass transfer in rotating cylindrical vessels: A numerical and experimental study , 2005 .
[30] P Stoodley,et al. Survival strategies of infectious biofilms. , 2005, Trends in microbiology.
[31] A. Matin,et al. Investigating the Threat of Bacteria Grown in Space Efforts are under way to determine how reduced gravity makes some bacteria more resistant to stress and more potent as pathogens , 2005 .
[32] Quanyu Zhao,et al. Attachment of Marine Sponge Cells of Hymeniacidon perleve on Microcarriers , 2003, Biotechnology progress.
[33] Y. Schneider,et al. Microcarrier Culture of Lepidopteran Cell Lines: Implications for Growth and Recombinant Protein Production , 2002, Biotechnology progress.
[34] B. Christensen,et al. Molecular tools for study of biofilm physiology. , 1999, Methods in enzymology.
[35] P Ducheyne,et al. Dynamics of a microcarrier particle in the simulated microgravity environment of a rotating-wall vessel. , 1997, Microgravity science and technology.
[36] T. Schweder,et al. Regulation ofEscherichia coliStarvation Sigma Factor (s s ) by ClpXP Protease , 1996 .