Addressing the Requirements of High-Sensitivity Single-Molecule Imaging of Low-Copy-Number Proteins in Bacteria.
暂无分享,去创建一个
Julie S Biteen | Lyle A Simmons | J. Biteen | Hannah H Tuson | Lyle A. Simmons | Alisa Aliaj | Eileen R Brandes | Eileen Brandes | Alisa Aliaj
[1] Julie S Biteen,et al. Mismatch repair in Gram-positive bacteria. , 2016, Research in microbiology.
[2] J. Biteen,et al. Single-molecule motions and interactions in live cells reveal target search dynamics in mismatch repair , 2015, Proceedings of the National Academy of Sciences.
[3] R. Tsien,et al. Improved monomeric red, orange and yellow fluorescent proteins derived from Discosoma sp. red fluorescent protein , 2004, Nature Biotechnology.
[4] P. Schultz,et al. Localization of GroEL determined by in vivo incorporation of a fluorescent amino acid. , 2011, Bioorganic & medicinal chemistry letters.
[5] W. E. Moerner,et al. Exploring bacterial cell biology with single-molecule tracking and super-resolution imaging , 2013, Nature Reviews Microbiology.
[6] D. Kidane,et al. Dynamic formation of RecA filaments at DNA double strand break repair centers in live cells , 2005, The Journal of cell biology.
[7] J. Alonso,et al. Characterization of recombination-deficient mutants of Bacillus subtilis , 1988, Journal of bacteriology.
[8] J. Alonso,et al. Early steps of double-strand break repair in Bacillus subtilis. , 2013, DNA repair.
[9] D. Kidane,et al. Recruitment of Bacillus subtilis RecN to DNA Double-Strand Breaks in the Absence of DNA End Processing , 2006, Journal of bacteriology.
[10] W. S. Fyfe,et al. Metal fixation by bacterial cell walls , 1985 .
[11] Lyle A. Simmons,et al. Mutations in the Bacillus subtilis β Clamp That Separate Its Roles in DNA Replication from Mismatch Repair , 2010, Journal of bacteriology.
[12] Marjeta Urh,et al. HaloTag: a novel protein labeling technology for cell imaging and protein analysis. , 2008, ACS chemical biology.
[13] Remo Guidieri. Res , 1995, RES: Anthropology and Aesthetics.
[14] W E Moerner,et al. Enzymatic activation of nitro-aryl fluorogens in live bacterial cells for enzymatic turnover-activated localization microscopy† , 2013, Chemical science.
[15] Nam Ki Lee,et al. Single-molecule approach to molecular biology in living bacterial cells. , 2008, Annual review of biophysics.
[16] Victor J. DiRita,et al. Imaging Live Cells at the Nanometer-Scale with Single-Molecule Microscopy: Obstacles and Achievements in Experiment Optimization for Microbiology , 2014, Molecules.
[17] Carla Coltharp,et al. In vivo organization of the FtsZ‐ring by ZapA and ZapB revealed by quantitative super‐resolution microscopy , 2013, Molecular microbiology.
[18] J. Biteen,et al. Single‐molecule tracking in live Vibrio cholerae reveals that ToxR recruits the membrane‐bound virulence regulator TcpP to the toxT promoter , 2015, Molecular microbiology.
[19] Julie S Biteen,et al. Unveiling the inner workings of live bacteria using super-resolution microscopy. , 2015, Analytical chemistry.
[20] X. Zhuang,et al. Coupled, Circumferential Motions of the Cell Wall Synthesis Machinery and MreB Filaments in B. subtilis , 2011, Science.
[21] Elizabeth A. Cameron,et al. Superresolution Imaging Captures Carbohydrate Utilization Dynamics in Human Gut Symbionts , 2014, mBio.
[22] Julie S Biteen,et al. Three-dimensional super-resolution imaging of the midplane protein FtsZ in live Caulobacter crescentus cells using astigmatism. , 2012, Chemphyschem : a European journal of chemical physics and physical chemistry.
[23] Paul J. Choi,et al. Quantifying E. coli Proteome and Transcriptome with Single-Molecule Sensitivity in Single Cells , 2010, Science.
[24] J. Elf,et al. Single-particle tracking reveals that free ribosomal subunits are not excluded from the Escherichia coli nucleoid , 2014, Proceedings of the National Academy of Sciences.
[25] R. Heintzmann,et al. Superresolution imaging of dynamic MreB filaments in B. subtilis--a multiple-motor-driven transport? , 2013, Biophysical journal.
[26] Jessica E. Donehue,et al. Plasmon-Enhanced Brightness and Photostability from Single Fluorescent Proteins Coupled to Gold Nanorods , 2014 .
[27] F. Lecointe,et al. The C-Terminal Domain of the Bacterial SSB Protein Acts as a DNA Maintenance Hub at Active Chromosome Replication Forks , 2010, PLoS genetics.
[28] Suliana Manley,et al. Photoactivatable mCherry for high-resolution two-color fluorescence microscopy , 2009, Nature Methods.
[29] N. Ogasawara,et al. Analysis of the Bacillus subtilis recO gene: RecO forms part of the RecFLOR function , 1999, Molecular and General Genetics MGG.
[30] Jeffrey R Moffitt,et al. Characterization and development of photoactivatable fluorescent proteins for single-molecule–based superresolution imaging , 2014, Proceedings of the National Academy of Sciences.
[31] Leigh G. Monahan,et al. Super-resolution imaging of the bacterial cytokinetic protein FtsZ. , 2011, Micron.
[32] Jie Xiao,et al. Transcription-Factor-Mediated DNA Looping Probed by High-Resolution, Single-Molecule Imaging in Live E. coli Cells , 2013, PLoS biology.
[33] S. Korolev,et al. Mechanism of RecO recruitment to DNA by single-stranded DNA binding protein , 2011, Nucleic acids research.
[34] M. Pillon,et al. Trapping and visualizing intermediate steps in the mismatch repair pathway in vivo , 2013, Molecular microbiology.
[35] B. Michel,et al. Recombination proteins and rescue of arrested replication forks. , 2007, DNA repair.
[36] Lyle A. Simmons,et al. DNA Repair and Genome Maintenance in Bacillus subtilis , 2012, Microbiology and Molecular Reviews.
[37] D. Kidane,et al. Visualization of DNA double‐strand break repair in live bacteria reveals dynamic recruitment of Bacillus subtilis RecF, RecO and RecN proteins to distinct sites on the nucleoids , 2004, Molecular microbiology.
[38] J. Mandelstam,et al. Commitment to sporulation in Bacillus subtilis and its relationship to development of actinomycin resistance. , 1969, The Biochemical journal.
[39] P. Schultz,et al. Subcellular Protein Localization by Using a Genetically Encoded Fluorescent Amino Acid , 2011, Chembiochem : a European journal of chemical biology.
[40] R. Sorenson,et al. RecO and RecR Are Necessary for RecA Loading in Response to DNA Damage and Replication Fork Stress , 2014, Journal of bacteriology.
[41] E. Lemke,et al. Genetic Encoding of a Bicyclo[6.1.0]nonyne‐Charged Amino Acid Enables Fast Cellular Protein Imaging by Metal‐Free Ligation , 2012, Chembiochem : a European journal of chemical biology.
[42] J. Helmann. Specificity of Metal Sensing: Iron and Manganese Homeostasis in Bacillus subtilis* , 2014, The Journal of Biological Chemistry.
[43] J. Alonso,et al. Bacillus subtilis RecO Nucleates RecA onto SsbA-coated Single-stranded DNA* , 2008, Journal of Biological Chemistry.
[44] C. Bustamante,et al. Dynamic SpoIIIE assembly mediates septal membrane fission during Bacillus subtilis sporulation. , 2010, Genes & development.
[45] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[46] J. Elf,et al. Direct measurement of transcription factor dissociation excludes a simple operator occupancy model for gene regulation , 2014, Nature Genetics.
[47] Mark Bates,et al. Three-Dimensional Super-Resolution Imaging by Stochastic Optical Reconstruction Microscopy , 2008, Science.
[48] R. Losick,et al. Protein subcellular localization in bacteria. , 2010, Cold Spring Harbor perspectives in biology.
[49] A. Grossman,et al. Beta clamp directs localization of mismatch repair in Bacillus subtilis. , 2008, Molecular cell.
[50] Leigh G. Monahan,et al. 3D-SIM Super Resolution Microscopy Reveals a Bead-Like Arrangement for FtsZ and the Division Machinery: Implications for Triggering Cytokinesis , 2012, PLoS biology.
[51] R. Tsien,et al. A monomeric red fluorescent protein , 2002, Proceedings of the National Academy of Sciences of the United States of America.