Amplified effect of Brownian motion in bacterial near-surface swimming
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[1] J. Poindexter. BIOLOGICAL PROPERTIES AND CLASSIFICATION OF THE CAULOBACTER GROUP , 1964, Bacteriological reviews.
[2] Edward F. Leonard,et al. Effects of Shear Rate on the Diffusion and Adhesion of Blood Platelets to a Foreign Surface , 1972 .
[3] A. Newton,et al. Chromosome replication during development in Caulobacter crescentus. , 1972, Journal of molecular biology.
[4] A. M. Benis,et al. Platelet Diffusion in Flowing Blood , 1972 .
[5] J S Poindexter,et al. The caulobacters: ubiquitous unusual bacteria. , 1981, Microbiological reviews.
[6] H. Berg. Random Walks in Biology , 2018 .
[7] Y. Shirakihara,et al. Caulobacter crescentus flagellar filament has a right-handed helical form. , 1984, Journal of molecular biology.
[8] George A. Jackson,et al. Simulation of bacterial attraction and adhesion to falling particles in an aquatic environment , 1989 .
[9] G. Hornberger,et al. Physical and chemical factors influencing transport of microorganisms through porous media , 1991, Applied and environmental microbiology.
[10] H. Berg,et al. Three-dimensional tracking of motile bacteria near a solid planar surface. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[11] M. Vigeant,et al. Interactions between motile Escherichia coli and glass in media with various ionic strengths, as observed with a three-dimensional-tracking microscope , 1997, Applied and environmental microbiology.
[12] Paul D. Frymier,et al. Analysis of bacterial swimming speed approaching a solid–liquid interface , 1997 .
[13] B. Bergersen,et al. Bacterial swimming strategies and turbulence. , 1999, Biophysical journal.
[14] D. Prieve,et al. Measurement of Colloidal Forces with TIRM , 1999 .
[15] Malte Hermansson,et al. The DLVO theory in microbial adhesion , 1999 .
[16] M. Vigeant,et al. Nanometer Distances between Swimming Bacteria and Surfaces Measured by Total Internal Reflection Aqueous Fluorescence Microscopy , 2001 .
[17] James G. Mitchell,et al. The Energetics and Scaling of Search Strategies in Bacteria , 2002, The American Naturalist.
[18] Michael Wagner,et al. Reversible and Irreversible Adhesion of Motile Escherichia coli Cells Analyzed by Total Internal Reflection Aqueous Fluorescence Microscopy , 2002, Applied and Environmental Microbiology.
[19] D. Axelrod. Total Internal Reflection Fluorescence Microscopy in Cell Biology , 2001, Traffic.
[20] Howard C. Berg,et al. E. coli in Motion , 2003 .
[21] Erwin Frey,et al. Brownian motion: a paradigm of soft matter and biological physics , 2005, Annalen der Physik.
[22] M. Nishimura,et al. A fluid-dynamic interpretation of the asymmetric motion of singly flagellated bacteria swimming close to a boundary. , 2005, Biophysical journal.
[23] Tomonobu Goto,et al. Difference in bacterial motion between forward and backward swimming caused by the wall effect. , 2005, Biophysical journal.
[24] S. Kudo,et al. Asymmetric swimming pattern of Vibrio alginolyticus cells with single polar flagella. , 2005, FEMS microbiology letters.
[25] George M Whitesides,et al. Swimming in circles: motion of bacteria near solid boundaries. , 2005, Biophysical journal.
[26] James G. Mitchell. The influence of cell size on marine bacterial motility and energetics , 1991, Microbial Ecology.
[27] H. Koser,et al. Hydrodynamic surface interactions enable Escherichia coli to seek efficient routes to swim upstream. , 2007, Physical review letters.