Fast 100-nm resolution three-dimensional microscope reveals structural plasticity of mitochondria in live yeast
暂无分享,去创建一个
[1] J. Reyes-Gómez,et al. The observation of ferroelastic/ferroelectric domains in synthetic Mn3B7O13X single‐crystal boracites by light and electron microscopy , 1997 .
[2] J. Goodman. Introduction to Fourier optics , 1969 .
[3] S. Hell,et al. Time multiplexing and parallelization in multifocal multiphoton microscopy , 2000, Journal of the Optical Society of America. A, Optics, image science, and vision.
[4] J. Shaw,et al. Mitochondrial dynamics in yeast. , 1998, Annual review of cell and developmental biology.
[5] S. Hell,et al. Fluorescence microscopy with diffraction resolution barrier broken by stimulated emission. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[6] J. G. Kuenen,et al. Effects of growth conditions on mitochondrial morphology inSaccharomyces cerevisiae , 2004, Antonie van Leeuwenhoek.
[7] G. Brakenhoff,et al. Confocal imaging with bilateral scanning and array detectors , 1992 .
[8] Schrader,et al. Ultrathin fluorescent layers for monitoring the axial resolution in confocal and two‐photon fluorescence microscopy , 1998, Journal of microscopy.
[9] M. Yaffe,et al. The machinery of mitochondrial inheritance and behavior. , 1999, Science.
[10] S W Hell,et al. Coherent use of opposing lenses for axial resolution increase in fluorescence microscopy. I. Comparative study of concepts. , 2001, Journal of the Optical Society of America. A, Optics, image science, and vision.
[11] A. Stemmer,et al. True optical resolution beyond the Rayleigh limit achieved by standing wave illumination. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[12] L. Pon,et al. Mitochondrial inheritance: cell cycle and actin cable dependence of polarized mitochondrial movements in Saccharomyces cerevisiae. , 1997, Cell motility and the cytoskeleton.
[13] O. Heinisch,et al. Pearce, S. C.: Biological Statistics, an Introduction. Mc‐Graw Hill Book Company, New York, London 1965. XIII + 212 S., Preis $ 9,50 , 1967 .
[14] Agard,et al. I5M: 3D widefield light microscopy with better than 100 nm axial resolution , 1999, Journal of microscopy.
[15] J. Boeke,et al. Designer deletion strains derived from Saccharomyces cerevisiae S288C: A useful set of strains and plasmids for PCR‐mediated gene disruption and other applications , 1998, Yeast.
[16] S. Hell,et al. Properties of a 4Pi confocal fluorescence microscope , 1992 .
[17] K J Halbhuber,et al. Pulse-length dependence of cellular response to intense near-infrared laser pulses in multiphoton microscopes. , 1999, Optics letters.
[18] Colin J. R. Sheppard,et al. Three-dimensional transfer functions in 4Pi confocal microscopes , 1994 .
[19] J. Chant,et al. Patterns of bud-site selection in the yeast Saccharomyces cerevisiae , 1995, The Journal of cell biology.
[20] S. Hell,et al. Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy. , 1994, Optics letters.
[21] M. Gustafsson. Surpassing the lateral resolution limit by a factor of two using structured illumination microscopy , 2000, Journal of microscopy.
[22] A. Murray,et al. Mitochondrial transmission during mating in Saccharomyces cerevisiae is determined by mitochondrial fusion and fission and the intramitochondrial segregation of mitochondrial DNA. , 1997, Molecular biology of the cell.
[23] H P Hoffmann,et al. Mitochondrion of Yeast: Ultrastructural Evidence for One Giant, Branched Organelle per Cell , 1973, Science.
[24] W. Neupert,et al. Mitochondria‐targeted green fluorescent proteins: convenient tools for the study of organelle biogenesis in Saccharomyces cerevisiae , 2000, Yeast.
[25] Buist,et al. Real time two‐photon absorption microscopy using multi point excitation , 1998 .
[26] S. Hell,et al. Time-multiplexed multifocal multiphoton microscope. , 2001, Optics letters.
[27] S. Hell,et al. Optical transfer functions of 4Pi confocal microscopes: theory and experiment. , 1997, Optics letters.
[28] S. Hell,et al. Refractive index mismatch induced intensity and phase variations in fluorescence confocal, multiphoton and 4Pi-microscopy. , 1998 .
[29] S. Hell,et al. 4Pi-confocal microscopy of live cells. , 2001 .
[30] Bence Ölveczky,et al. Rapid Diffusion of Green Fluorescent Protein in the Mitochondrial Matrix , 1998, The Journal of cell biology.
[31] S W Hell,et al. Far‐field fluorescence microscopy with three‐dimensional resolution in the 100‐nm range , 1997, Journal of microscopy.
[32] T G Frey,et al. The internal structure of mitochondria. , 2000, Trends in biochemical sciences.
[33] Stefan W. Hell,et al. Fundamental improvement of resolution with a 4Pi-confocal fluorescence microscope using two-photon excitation , 1992 .
[34] S W Hell,et al. Coherent use of opposing lenses for axial resolution increase. II. Power and limitation of nonlinear image restoration. , 2001, Journal of the Optical Society of America. A, Optics, image science, and vision.