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尼玛87篇参考文献就不能加一篇施教授或能教授的CNS?

References1. Ruska, E., Nobel Lectures, Physics 1981-1990, Tore Frängsmyr andGösta Ekspong, Eds. (1993) World Scientific Publishing, Singapore2. Marton, L. (1934) Electron microscopy of biological objects. Nature133, 911-9113. Althoff, T., Mills, D. J., Popot, J. L., and Kühlbrandt, W. (2011)Arrangement of electron transport chain components in bovine mitochondrialsupercomplex I1III2IV1. The EMBO Journal 30, 4652-46644. Letts, J. A., Fiedorczuk, K., and Sazanov, L. A. (2016) Thearchitecture of respiratory supercomplexes.Nature537, 644-6485. Hall, C. E., Jakus, M. A., and Schmitt, F. O. (1945) The structure ofcertain muscle fibrils as revealed by the use of electron stains. J. AppliedPhysics 16, 459-4656. Brenner, S., and Horne, R. W. (1959) A negative staining method forhigh resolution electron microscopy of viruses. Biochim. Biophys. Acta 34,103-1107. Huxley, H. E., and Zubay, G. (1961) Preferential staining of nucleicacid-containing structures for electron microscopy. J. Biophys. Biochem.Cytology 11, 273-2968. Klug, A., and Finch, J. T. (1965) Structure of viruses of thepapilloma-polyoma type. I. human wart.J. Mol. Biol. 11, 403-4239. Klug, A., and Berger, J. E. (1964) An optical method for the analysisof periodicities in electron. J. Mol. Biol. 10, 565-56910. Klug, A., and De Rosier, D. J. (1966) Optical filtering of electronmicrographs: reconstruction of one- sided images. Nature 212, 29-3211. Erickson, H. P., and Klug, A. (1970) The Fourier transform of anelectron micrograph: effects of defocussing and aberrations, andimplications for the use of underfocus contrast enhancement. Berichte derBunsengesellschaft für physikalische Chemie 74, 1129-113712. Hoppe, W., Langer, R., Knesch, G., and Poppe, C. (1968) Protein-kristallstrukturanalyse mit elektronenstrahlen. Naturwissenschaften 55, 333-33613. Hoppe, W., Gassmann, J., Hunsmann, N., Schramm, H. J., and Sturm, M.(1974) Three dimensional reconstruction of individual negatively stainedyeast fatty acid synthetase molecules from tilt series in the electronmicroscope. Hoppe-Seyler''s Z. Physiol. Chem. 355, 1483-148714. DeRosier, D. J., and Klug, A. (1968) Reconstruction of threedimensional structures from electron micrographs. Nature 217, 130-13415. Crowther, R. A., Amos, L. A., Finch, J. T., DeRosier, D. J., and Klug, A. (1970) Three dimensional reconstructions of spherical viruses byFourier synthesis from electron micrographs. Nature 226, 421- 42516. Crowther, R. A., DeRosier, D. J., and Klug, A. (1970) Thereconstruction of a three-dimensional structure from projections and itsapplication to electron microscopy. Proc. R. Soc. London. A 317, 319-34017. Parsons, D. F. (1974) Structure of wet specimens in electronmicroscopy. Improved environmental chambers make it possible to examine wetspecimens easily. Science 186, 407-41418. Matricardi, V. R., Moretz, R. C., and Parsons, D. F. (1972) Electrondiffraction of wet proteins: catalase.Science 177, 268-27019. Glaeser, R. M. (1971) Limitations to significant information inbiological electron microscopy as a result of radiation damage. J.Ultrastruct. Res. 36, 466-48220. Frank, J. (1975) Averaging of low exposure electron micrographs ofnon-periodic objects.Ultramicroscopy 1, 159-16221. Kuo, I. A. M., and Glaeser, R. M. (1975) Development of methodologyfor low exposure, high resolution electron microscopy of biologicalspecimens. Ultramicroscopy 1, 53-6622. Unwin, P. N. T., and Henderson, R. (1975) Molecular structuredetermination by electron microscopy of unstained crystalline specimens. J.Mol. Biol. 94, 425-43223. Henderson, R., and Unwin, P. N. T. (1975) Three-dimensional model ofpurple membrane obtained by electron microscopy. Nature 257, 28-3224. Erickson, H. P., and Klug, A. (1971) Measurement and compensation ofdefocusing and aberrations by fourier processing of electron micrographs.Philos. Trans. R. Soc., B 261, 105-11825. Fernández-Morán, H. (1960) Low-temperature preparation techniquesfor electron microscopy of biological specimens based on rapid freezing withliquid Helium II. In Annals of the New York Academy of Sciences 85, 689-71326. Schmidt, P. J. (2006) Basile J. Luyet and the beginnings oftransfusion cryobiology. Transfusion Medicine Reviews 20, 242-24627. Haas, D. J. (1968) X-ray studies on lysozyme crystals at–50° C.Acta Cryst. B 24, 604-60428. Haas, D. J., and Rossmann, M. G. (1970) Crystallographic studies onlactate dehydrogenase at-75 degrees C. Acta Crystallogr B 26, 998-100429. Taylor, K. A., and Glaeser, R. M. (1974) Electron diffraction offrozen, hydrated protein crystals.

Science 186, 1036-103730. Taylor, K. A., and Glaeser, R. M. (1976) Electron microscopy offrozen hydrated biological specimens.J. Ultrastruct. Res. 55, 448-45631. Henderson, R., Baldwin, J. M., Ceska, T. A., Zemlin, F., Beckmann, E., and Downing, K. H. (1990) Model for the structure of bacteriorhodopsinbased on high-resolution electron cryo-microscopy. J. Mol. Biol. 213, 899-92932. Kühlbrandt, W., Wang, D. N., and Fujiyoshi, Y. (1994) Atomic modelof plant light-harvesting complex by electron crystallography. Nature 367,614-62133. Wang, D. N., and Kühlbrandt, W. (1991) High-resolution electroncrystallography of light-harvesting chlorophyll ab-protein complex in threedifferent media. J. Mol. Biol. 217, 691-69934. Nogales, E., Wolf, S. G., and Downing, K. H. (1998) Structure of theαβ tubulin dimer by electron crystallography. Nature 391, 199-20335. Murata, K., Mitsuoka, K., Hiral, T., Walz, T., Agre, P., Heymann, J.B., Engel, A., and Fujiyoshi, Y. (2000) Structural determinants of waterpermeation through aquaporin-1. Nature 407, 599-60536. Glaeser, R. M. (1999) Review: Electron crystallography: presentexcitement, a nod to the past, anticipating the future. J. Struct. Biol. 128, 3-1437. Henderson, R. (1995) The potential and limitations of neutrons,electrons and X-rays for atomic resolution microscopy of unstainedbiological molecules. Q. Rev. Biophys. 28, 171-19338. Merk, A., Bartesaghi, A., Banerjee, S., Falconieri, V., Rao, P.,Davis, M. I., Pragani, R., Boxer, M. B., Earl, L. A., Milne, J. L. S., andSubramaniam, S. (2016) Breaking cryo-EM resolution barriers to facilitatedrug discovery. Cell 165, 1698-170739. Khoshouei, M., Radjainia, M., Baumeister, W., and Danev, R. (2017)Cryo-EM structure of haemoglobin at 3.2 Å determined with the Voltaphase plate. Nature Comm. 8, 1609940. Rosenthal, P. B., and Henderson, R. (2003) Optimal determination ofparticle orientation, absolute hand, and contrast loss in single-particleelectron cryomicroscopy. J. Mol. Biol. 333, 721-74541. Saxton, W. O., and Frank, J. (1977) Motif detection in quantum noise-limited electron micrographs by cross-correlation. Ultramicroscopy 2, 219-22742. Frank, J., and Al-Ali, L. (1975) Signal-to-noise ratio of electronmicrographs obtained by cross correlation. Nature 256, 376-37943. Frank, J., Goldfarb, W., Eisenberg, D., and Baker, T. S. (1978)Reconstruction of glutamine synthetase using computer averaging.Ultramicroscopy 3, 283-29044. van Heel, M., and Frank, J. (1981) Use of multivariates statistics inanalysing the images of biological macromolecules. Ultramicroscopy 6, 187-19445. Frank, J., and van Heel, M. (1982) Correspondence analysis of alignedimages of biological particles.J. Mol. Biol. 161, 134-13746. Radermacher, M., Wagenknecht, T., Verschoor, A., and Frank, J. (1986)A new 3D reconstruction scheme applied to the 50s ribosomal subunit of E.coli. J. Microsc. 141, RP1-RP247. Radermacher, M., Wagenknecht, T., Verschoor, A., and Frank, J. (1987)Three-dimensional reconstruction from a single-exposure, random conicaltilt series applied to the 50S ribosomal subunit of Escherichia coli. J.Microsc. 146, 113-13648. Radermacher, M. (1980) Dreidimensionale Rekonstruktion bei kegelförmiger Kippung im Elektronenmikroskop. Thesis, Technical University,Munich.

49. Frank, J., and Shimkin, B. (1978) A new image processing softwaresystem for structural analysis and contrast enhancement. In: Proc. 9thIntern. Congr. on Electron Microscopy, Ed. J.M. Sturgess (Microscopical Soc.Canada, Toronto, Ontario, 1978) I, 21050. Frank, J., Shimkin, B., and Dowse, H. (1981) SPIDER-A modularsoftware system for electron image processing. Ultramicroscopy 6, 343-35751. Burton, E. F., and Oliver, W. F. (1935) X-Ray diffraction patterns ofice. Nature 135, 505-50652. Dowell, L. G., and Rinfret, A. P. (1960) Low-temperature forms of iceas studied by X-ray diffraction.Nature 188, 1144-114853. Brüggeller, P., and Mayer, E. (1980) Complete vitrification in pureliquid water and dilute aqueous solutions. Nature 288, 569-57154. Jenniskens, P., and Blake, D. F. (1994) Structural transitions inamorphous water ice and astrophysical implications. Science 265, 753-75655. Dubochet, J., Adrian, M., Chang, J.-J., Homo, J.-C., Lepault, J.,McDowall, A. W., and Schultz, P. (1988) Cryo-electron microscopy of vitrified specimens. Q. Rev. Biophys. 21, 129-22856. Dubochet, J., and McDowall, A. W. (1981) Vitrification of pure water for electron microscopy.J. Microsc. 124, 3-457. Adrian, M., Dubochet, J., Lepault, J., and McDowall, A. W. (1984)Cryo-electron microscopy of viruses.Nature 308, 32-3658. Lepault, J., Booy, F. P., and Dubochet, J. (1983) Electron microscopy of frozen biological suspensions.J. Microsc. 129, 89-10259. Dubochet, J., Chang, J. J., Freeman, R., Lepault, J., and McDowall, A. W. (1982) Frozen aqueous suspensions. Ultramicroscopy 10, 55-6160. Dubochet, J., Lepault, J., Freeman, R., Berriman, J. A., and Homo, J.C. (1982) Electron microscopy of frozen water and aqueous solutions. J.Microsc. 128, 219-23761. Dubochet, J., Adrian, M., Lepault, J., and McDowall, A. W. (1985) Emerging techniques: Cryo-electron microscopy of vitrified biological specimens. Trends Biochem. Sci. 10, 143-14662. Faruqi, A. R., Cattermole, D. M., and Raeburn, C. (2003) Direct electron detection methods in electron microscopy. Nuclear Instruments and Methods in Physics Research, A 513, 317-32163. Faruqi, A. R., Henderson, R., Pryddetch, M., Allport, P., and Evans,A. (2005) Direct single electron detection with a CMOS detector for electron microscopy. Nuclear Instruments and Methods in Physics Research, A 546, 170-17564. Xuong, N. H., Milazzo, A. C., Leblanc, P., Duttweiler, F., Bouwer, J., Peltier, S., Ellisman, M., Denes, P., Bieser, F., Matis, H. S., Wieman, H., and Kleinfelder, S. (2004) First use of a high sensitivity active pixel sensor array as a detector for electron microscopy. In Proceedings of SPIE -the International Society for Optical Engineering65. Milazzo, A. C., Leblanc, P., Duttweiler, F., Jin, L., Bouwer, J. C.,Peltier, S., Ellisman, M., Bieser, F., Matis, H. S., Wieman, H., Denes, P.,Kleinfelder, S., and Xuong, N. H. (2005) Active pixel sensor array as adetector for electron microscopy. Ultramicroscopy 104, 152-15966. McMullan, G., Faruqi, A. R., and Henderson, R. (2016) Directelectrondetectors. In Methods in Enzymology (Crowther, R. A. ed.), Academic Press. pp 1-1767. Li, X., Mooney, P., Zheng, S., Booth, C. R., Braunfeld, M. B.,Gubbens, S., Agard, D. A., and Cheng, Y. (2013) Electron counting and beam-induced motion correction enable near-atomic-resolution single- particle cryo-EM. Nature Methods 10, 584-59068. McMullan, G., Clark, A. T., Turchetta, R., and Faruqi, A. R. (2009)Enhanced imaging in low dose electron microscopy using electron counting.Ultramicroscopy 109, 1411-141669. Brilot, A. F., Chen, J. Z., Cheng, A., Pan, J., Harrison, S. C.,Potter, C. S., Carragher, B., Henderson, R., and Grigorieff, N. (2012) Beam-induced motion of vitrified specimen on holey carbon film. J. Struct. Biol.177, 630-63770. Campbell, M. G., Cheng, A., Brilot, A. F., Moeller, A., Lyumkis, D.,Veesler, D., Pan, J., Harrison, S. C., Potter, C. S., Carragher, B., and Grigorieff, N. (2012) Movies of ice-embedded particles enhance resolution inelectron cryo-microscopy. Structure 20, 1823-182871. Ripstein, Z. A., and Rubinstein, J. L. (2016) Processing of cryo-EMmovie data. In Methods in Enzymology 579, 103-12472. Rubinstein, J. L., and Brubaker, M. A. (2015) Alignment of cryo-EMmovies of individual particles by optimization of image translations. J.Struct. Biol. 192, 188-19573. Heide, H. G. (1982) Design and operation of cold stages.Ultramicroscopy 10, 125-15474. Danev, R., Buijsse, B., Khoshouei, M., Plitzko, J. M., and Baumeister, W. (2014) Volta potential phase plate for in-focus phase contrasttransmission electron microscopy. Proc. Natl. Acad. Sci. USA 111, 15635-1564075. Suloway, C., Pulokas, J., Fellmann, D., Cheng, A., Guerra, F., Quispe, J., Stagg, S., Potter, C. S., and Carragher, B. (2005) Automated molecular microscopy: The new Leginon system. J. Struct. Biol. 151, 41-6076. Sigworth, F. J. (1998) A maximum-likelihood approach to single-particle image refinement. J. Struct. Biol. 122, 328-33977. Scheres, S. H. W., Gao, H., Valle, M., Herman, G. T., Eggermont, P. P. B., Frank, J., and Carazo, J. M. (2007) Disentangling conformational states of macromolecules in 3D-EM through likelihood optimization. Nature Methods 4, 27-2978. Liao, M., Cao, E., Julius, D., and Cheng, Y. (2013) Structure of theTRPV1 ion channel determined by electron cryo-microscopy. Nature 504, 107-11279. Beck, M., and Baumeister, W. (2016) Cryo-electron tomography: can itreveal the molecular sociology of cells in atomic detail? Trends Cell Biol.26, 825-83780. Oikonomou, C. M., and Jensen, G. J. (2017) Cellular electroncryotomography: toward structural biology in situ. Annu. Rev. Biochem. 86,873-89681. Rubinstein, J. L. (2017) Cryo-EM captures the dynamics of ion channelopening. Cell 168, 341-34382. Fischer, N., Konevega, A. L., Wintermeyer, W., Rodnina, M. V., andStark, H. (2010) Ribosome dynamics and tRNA movement by time-resolvedelectron cryomicroscopy. Nature 466, 329-33383. Hite, R. K., and MacKinnon, R. (2017) Structural titration of Slo2.2,a Na+-dependent K+ channel. Cell 168, 390-39984. Zhao, J., Benlekbir, S., and Rubinstein, J. L. (2015) Electroncryomicroscopy observation of rotational states in a eukaryotic V-ATPase.Nature 521, 241-24585. Dashti, A., Ben Hail, D., Mashayekhi, G., Schwander, P., des Georges,A., Frank, J., and Ourmazd, A. (2017) Conformational dynamics and energy landscapes of ligand binding in RyR1. bioRxiv, DOI: 10.1101/16708086. Dashti, A., Schwander, P., Langlois, R., Fung, R., Li, W.,Hosseinizadeh, A., Liao, H. Y., Pallesen, J., Sharma, G., Stupina, V. A.,Simon, A. E., Dinman, J. D., Frank, J., and Ourmazd, A. (2014) Trajectoriesof the ribosome as a Brownian nanomachine. Proc. Natl. Acad. Sci. USA 111,17492-1749787. Kühlbrandt, W. (2014) The resolution revolution. Science 343, 1443-1444

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