Bioactive Functionalized Monolayer Graphene for High-Resolution Cryo-Electron Microscopy.
暂无分享,去创建一个
Xing Zhang | Peng Gao | Kui Xu | Hailin Peng | Zhongfan Liu | H. Peng | Hongwei Wang | Kui Xu | Shulin Chen | P. Gao | Zhipu Luo | Jincan Zhang | Kaicheng Jia | Zhongfan Liu | Hong-Wei Wang | Shulin Chen | Zhipu Luo | Nan Liu | Jincan Zhang | Yanan Chen | Chuan Liu | Jie Wen | Kaicheng Jia | Xing Zhang | Yanan Chen | Nan Liu | Chuan Liu | Jie Wen
[1] Justin M Kollman,et al. Vitrification after multiple rounds of sample application and blotting improves particle density on cryo-electron microscopy grids , 2016, bioRxiv.
[2] Joachim Frank,et al. Preparation of macromolecular complexes for cryo-electron microscopy , 2007, Nature Protocols.
[3] R. Henderson,et al. Optimal determination of particle orientation, absolute hand, and contrast loss in single-particle electron cryomicroscopy. , 2003, Journal of molecular biology.
[4] Lori A. Passmore,et al. Controlling protein adsorption on graphene for cryo-EM using low-energy hydrogen plasmas , 2014, Nature Methods.
[5] Rendering graphene supports hydrophilic with non-covalent aromatic functionalization for transmission electron microscopy , 2014, 1403.6976.
[6] Jingyu Sun,et al. Rapid Growth of Large Single‐Crystalline Graphene via Second Passivation and Multistage Carbon Supply , 2016, Advanced materials.
[7] Steven D. Lacey,et al. Reduced graphene oxide film with record-high conductivity and mobility , 2017 .
[8] B. Carragher,et al. Spotiton: a prototype for an integrated inkjet dispense and vitrification system for cryo-TEM. , 2012, Journal of structural biology.
[9] W. Dang,et al. Clean Transfer of Large Graphene Single Crystals for High‐Intactness Suspended Membranes and Liquid Cells , 2017, Advanced materials.
[10] D. Mastronarde. Dual-axis tomography: an approach with alignment methods that preserve resolution. , 1997, Journal of structural biology.
[11] M. Llaguno,et al. Chemically functionalized carbon films for single molecule imaging. , 2014, Journal of structural biology.
[12] D. Agard,et al. MotionCor2: anisotropic correction of beam-induced motion for improved cryo-electron microscopy , 2017, Nature Methods.
[13] David N Mastronarde,et al. Automated electron microscope tomography using robust prediction of specimen movements. , 2005, Journal of structural biology.
[14] J R Kremer,et al. Computer visualization of three-dimensional image data using IMOD. , 1996, Journal of structural biology.
[15] Yonggang Yao,et al. Ultra-fast self-assembly and stabilization of reactive nanoparticles in reduced graphene oxide films , 2016, Nature Communications.
[16] C. N. Lau,et al. Superior thermal conductivity of single-layer graphene. , 2008, Nano letters.
[17] Conrad C. Huang,et al. UCSF Chimera—A visualization system for exploratory research and analysis , 2004, J. Comput. Chem..
[18] J. Dubochet,et al. Cryo-electron microscopy of viruses , 1984, Nature.
[19] Chaoji Chen,et al. Sandwich-like Ni2P nanoarray/nitrogen-doped graphene nanoarchitecture as a high-performance anode for sodium and lithium ion batteries , 2018, Data in brief.
[20] Thomas Walz,et al. Strategy for the use of affinity grids to prepare non-His-tagged macromolecular complexes for single-particle electron microscopy. , 2010, Journal of molecular biology.
[21] Yifan Cheng. Single-Particle Cryo-EM at Crystallographic Resolution , 2015, Cell.
[22] N. Grigorieff,et al. CTFFIND4: Fast and accurate defocus estimation from electron micrographs , 2015, bioRxiv.
[23] R. Glaeser. PROTEINS, INTERFACES, AND CRYO-EM GRIDS. , 2017, Current opinion in colloid & interface science.
[24] J. Frank,et al. RF3 Induces Ribosomal Conformational Changes Responsible for Dissociation of Class I Release Factors , 2007, Cell.
[25] Wen Jiang,et al. Antibody-based affinity cryo-EM grid. , 2016, Methods.
[26] Yifan Cheng,et al. Interactions of PAN's C‐termini with archaeal 20S proteasome and implications for the eukaryotic proteasome–ATPase interactions , 2010, The EMBO journal.
[27] Priyanka D Abeyrathne,et al. The Affinity Grid: a pre-fabricated EM grid for monolayer purification. , 2008, Journal of molecular biology.
[28] A. Turberfield,et al. DNA-templated protein arrays for single-molecule imaging. , 2011, Nano letters.
[29] Wei Luo,et al. Reduced Graphene Oxide Films with Ultrahigh Conductivity as Li-Ion Battery Current Collectors. , 2016, Nano letters.
[30] Wen Jiang,et al. Selective Capture of Histidine-tagged Proteins from Cell Lysates Using TEM grids Modified with NTA-Graphene Oxide , 2016, Scientific Reports.
[31] Tolou Shokuhfar,et al. High‐Resolution Electron Microscopy and Spectroscopy of Ferritin in Biocompatible Graphene Liquid Cells and Graphene Sandwiches , 2014, Advanced materials.
[32] David A Agard,et al. A simple and robust procedure for preparing graphene-oxide cryo-EM grids , 2018, bioRxiv.
[33] S. Scheres,et al. How cryo-EM is revolutionizing structural biology. , 2015, Trends in biochemical sciences.
[34] Deborah F. Kelly,et al. Monolayer purification: A rapid method for isolating protein complexes for single-particle electron microscopy , 2008, Proceedings of the National Academy of Sciences.
[35] Sjors H.W. Scheres,et al. RELION: Implementation of a Bayesian approach to cryo-EM structure determination , 2012, Journal of structural biology.
[36] Kun Fu,et al. Flexible, High Temperature, Planar Lighting with Large Scale Printable Nanocarbon Paper , 2016, Advanced materials.
[37] Shengtao Yang,et al. Influence of graphene oxide and reduced graphene oxide on the activity and conformation of lysozyme. , 2017, Colloids and surfaces. B, Biointerfaces.
[38] R. Glaeser,et al. Opinion: hazards faced by macromolecules when confined to thin aqueous films , 2016, Biophysics reports.
[39] R. Ruoff,et al. Oxidative doping renders graphene hydrophilic, facilitating its use as a support in biological TEM. , 2011, Nano letters.
[40] Monolayer-crystal streptavidin support films provide an internal standard of cryo-EM image quality. , 2017, Journal of structural biology.
[41] Joachim Frank,et al. A Fast and Effective Microfluidic Spraying-Plunging Method for High-Resolution Single-Particle Cryo-EM. , 2017, Structure.
[42] J. Kysar,et al. Measurement of the Elastic Properties and Intrinsic Strength of Monolayer Graphene , 2008, Science.
[43] Yong Zi Tan,et al. Reducing effects of particle adsorption to the air-water interface in cryoEM , 2018, Nature Methods.
[44] Bin Wang,et al. Graphene Coatings as Barrier Layers to Prevent the Water-Induced Corrosion of Silicate Glass. , 2016, ACS nano.
[45] D. Agard,et al. Electron counting and beam-induced motion correction enable near atomic resolution single particle cryoEM , 2013, Nature Methods.
[46] David W. Taylor,et al. An RNA Degradation Machine Sculpted by Ro Autoantigen and Noncoding RNA , 2013, Cell.
[47] Andrej Bieri,et al. Blotting-free and lossless cryo-electron microscopy grid preparation from nanoliter-sized protein samples and single-cell extracts. , 2017, Journal of structural biology.
[48] Yifan Cheng,et al. Mechanistic insights into the recycling machine of the SNARE complex , 2014, Nature.
[49] Wolfgang Baumeister,et al. Graphene oxide: a substrate for optimizing preparations of frozen-hydrated samples. , 2010, Journal of structural biology.
[50] G. Wallace,et al. Processable aqueous dispersions of graphene nanosheets. , 2008, Nature nanotechnology.
[51] J. Woolford,et al. Structural snapshot of cytoplasmic pre-60S ribosomal particles bound by Nmd3, Lsg1, Tif6 and Reh1 , 2017, Nature Structural &Molecular Biology.
[52] Robert M Glaeser,et al. Retrospective on the early development of cryoelectron microscopy of macromolecules and a prospective on opportunities for the future. , 2008, Journal of structural biology.
[53] Liguo Wang,et al. Streptavidin crystals as nanostructured supports and image-calibration references for cryo-EM data collection. , 2008, Journal of structural biology.
[54] Andre K. Geim,et al. The rise of graphene. , 2007, Nature materials.
[55] Yifan Cheng,et al. Mechanism of gate opening in the 20S proteasome by the proteasomal ATPases. , 2008, Molecular cell.