Nanoscale visualization and characterization of Myxococcus xanthus cells with atomic force microscopy.
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James K Gimzewski | J. Gimzewski | W. Shi | Wenyuan Shi | A. Pelling | Andrew E Pelling | Yinuo Li | Yinuo Li
[1] M. Bowden,et al. The Myxococcus xanthus lipopolysaccharide O‐antigen is required for social motility and multicellular development , 1998, Molecular microbiology.
[2] W. Shi,et al. Type IV pilus of Myxococcus xanthus is a motility apparatus controlled by the frz chemosensory system , 2000, Current Biology.
[3] D. Kaiser,et al. How and why bacteria talk to each other , 1993, Cell.
[4] M. Rief,et al. Sequence-dependent mechanics of single DNA molecules , 1999, Nature Structural Biology.
[5] M. Asther,et al. Stretching cell surface macromolecules by atomic force microscopy , 2001 .
[6] Samuel S. Wu,et al. Genetic and functional evidence that Type IV pili are required for social gliding motility in Myxococcus xanthus , 1995, Molecular microbiology.
[7] M. Dworkin,et al. Biochemical and structural analyses of the extracellular matrix fibrils of Myxococcus xanthus , 1994, Journal of bacteriology.
[8] B. Logan,et al. Contributions of Bacterial Surface Polymers, Electrostatics, and Cell Elasticity to the Shape of AFM Force Curves , 2002 .
[9] Bernard Nysten,et al. Nanoscale mapping of the elasticity of microbial cells by atomic force microscopy , 2003 .
[10] M. Merroun,et al. Lanthanum fixation by Myxococcus xanthus: cellular location and extracellular polysaccharide observation. , 2003, Chemosphere.
[11] P K Hansma,et al. Measuring the viscoelastic properties of human platelets with the atomic force microscope. , 1996, Biophysical journal.
[12] Piotr E. Marszalek,et al. Stretching single molecules into novel conformations using the atomic force microscope , 2000, Nature Structural Biology.
[13] Jonathan Hodgkin,et al. Genetics of gliding motility in Myxococcus xanthus (Myxobacterales): Two gene systems control movement , 2004, Molecular and General Genetics MGG.
[14] R. Kolter,et al. Biofilm formation as microbial development. , 2000, Annual review of microbiology.
[15] J. Shapiro. Organization of developing Escherichia coli colonies viewed by scanning electron microscopy , 1987, Journal of bacteriology.
[16] L. Shimkets. Role of cell cohesion in Myxococcus xanthus fruiting body formation , 1986, Journal of bacteriology.
[17] G. Georgiou,et al. Molecular determinants of bacterial adhesion monitored by atomic force microscopy. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[18] W. Shi,et al. A new set of chemotaxis homologues is essential for Myxococcus xanthus social motility , 1998, Molecular microbiology.
[19] D. Kaiser,et al. Social gliding is correlated with the presence of pili in Myxococcus xanthus. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[20] Mario Viani,et al. Molecular mechanistic origin of the toughness of natural adhesives, fibres and composites , 1999, Nature.
[21] M. Asther,et al. Surface properties of Aspergillus oryzae spores investigated by atomic force microscopy , 2002 .
[22] H. Lünsdorf,et al. Frozen motion of gliding bacteria outlines inherent features of the motility apparatus. , 2001, Microbiology.
[23] James A. Shapiro,et al. BACTERIA AS MULTICELLULAR ORGANISMS , 1988 .
[24] E. Hoiczyk,et al. How Myxobacteria Glide , 2002, Current Biology.
[25] Manfred H. Jericho,et al. Atomic force microscopy and theoretical considerations of surface properties and turgor pressures of bacteria , 2002 .
[26] Y. Dufrêne,et al. In situ characterization of bacterial extracellular polymeric substances by AFM , 2002 .
[27] M. Dworkin,et al. Extracellular fibrils and contact-mediated cell interactions in Myxococcus xanthus , 1991, Journal of bacteriology.
[28] J. Zissler,et al. Characterization of lipopolysaccharide from Myxococcus xanthus by use of monoclonal antibodies , 1989, Journal of bacteriology.
[29] K. M. Gray,et al. Intercellular communication and group behavior in bacteria. , 1997, Trends in microbiology.
[30] H. Gaub,et al. Unfolding pathways of individual bacteriorhodopsins. , 2000, Science.
[31] C. Rotsch,et al. Dimensional and mechanical dynamics of active and stable edges in motile fibroblasts investigated by using atomic force microscopy. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[32] U. Surana,et al. Mechanical properties of Bacillus subtilis cell walls: effects of removing residual culture medium , 1991, Journal of bacteriology.
[33] J. Downard,et al. Regulated Exopolysaccharide Production inMyxococcus xanthus , 1999, Journal of bacteriology.
[34] Matthias Rief,et al. Single Molecule Force Spectroscopy on Polysaccharides by Atomic Force Microscopy , 1997, Science.
[35] Gerhard Wanner,et al. The role of pheromones in bacterial interactions. , 1996 .
[36] Alfred M. Spormann,et al. Gliding Motility in Bacteria: Insights from Studies ofMyxococcus xanthus , 1999, Microbiology and Molecular Biology Reviews.
[37] L. Shimkets,et al. Cell surface properties correlated with cohesion in Myxococcus xanthus , 1988, Journal of bacteriology.
[38] J. Shapiro. Thinking about bacterial populations as multicellular organisms. , 1998, Annual review of microbiology.
[39] Andrew E. Pelling,et al. Local Nanomechanical Motion of the Cell Wall of Saccharomyces cerevisiae , 2004, Science.
[40] N Almqvist,et al. Elasticity and adhesion force mapping reveals real-time clustering of growth factor receptors and associated changes in local cellular rheological properties. , 2004, Biophysical journal.
[41] A. Oberhauser,et al. Chair-boat transitions in single polysaccharide molecules observed with force-ramp AFM , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[42] J. Shapiro. Scanning electron microscope study of Pseudomonas putida colonies , 1985, Journal of bacteriology.
[43] M. Radmacher,et al. Bacterial turgor pressure can be measured by atomic force microscopy. , 2000, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[44] S. Friedlander,et al. Complementary TEM and AFM Force Spectroscopy to Characterize the Nanomechanical Properties of Nanoparticle Chain Aggregates , 2004 .
[45] M. Goh,et al. DNA base pair resolution by single molecule force spectroscopy. , 2004, Nucleic acids research.
[46] Howard C. Berg,et al. Direct observation of extension and retraction of type IV pili , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[47] Michael P. Sheetz,et al. Pilus retraction powers bacterial twitching motility , 2000, Nature.
[48] A. Oberhauser,et al. Atomic levers control pyranose ring conformations. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[49] M. Goh,et al. Fibrous long spacing collagen ultrastructure elucidated by atomic force microscopy. , 1998, Biophysical journal.
[50] U G Hofmann,et al. Investigating the cytoskeleton of chicken cardiocytes with the atomic force microscope. , 1997, Journal of structural biology.
[51] M. Dworkin,et al. Cell density-dependent growth of Myxococcus xanthus on casein , 1977, Journal of bacteriology.
[52] Hong Sun,et al. Extracellular polysaccharides mediate pilus retraction during social motility of Myxococcus xanthus , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[53] L. Shimkets,et al. Regulation of cohesion-dependent cell interactions in Myxococcus xanthus , 1993, Journal of bacteriology.
[54] G. O’Toole,et al. Microbial Biofilms: from Ecology to Molecular Genetics , 2000, Microbiology and Molecular Biology Reviews.