Two-photon fluorescence lifetime imaging monitors metabolic changes during wound healing of corneal epithelial cells in vitro
暂无分享,去创建一个
Friedrich Paulsen | Andreas Gebert | Norbert Koop | A. Gebert | F. Paulsen | U. Gehlsen | P. Steven | G. Huettmann | N. Koop | Philipp Steven | Uta Gehlsen | Gereon Huettmann | Márta Szaszák | Andrea Oetke | M. Szaszák | A. Oetke
[1] Dennis D Spencer,et al. Multiphoton fluorescence lifetime imaging of intrinsic fluorescence in human and rat brain tissue reveals spatially distinct NADH binding. , 2008, Optics express.
[2] Gereon Hüttmann,et al. Fluorescence Lifetime Imaging Unravels C. trachomatis Metabolism and Its Crosstalk with the Host Cell , 2011, PLoS pathogens.
[3] Watt W Webb,et al. Two-photon fluorescence spectroscopy and microscopy of NAD(P)H and flavoprotein. , 2002, Biophysical journal.
[4] G. Hüttmann,et al. Intravital Two-Photon Microscopy of Immune Cell Dynamics in Corneal Lymphatic Vessels , 2011, PloS one.
[5] H. Dua,et al. Limbal stem cell deficiency: concept, aetiology, clinical presentation, diagnosis and management. , 2000, Indian journal of ophthalmology.
[6] T. Chikama,et al. Persistent Epithelial Defects Due to Neurotrophic Keratopathy Treated with a Substance P-Derived Peptide and Insulin-Like Growth Factor 1 , 2007, Japanese Journal of Ophthalmology.
[7] Dong Li,et al. Two-photon autofluorescence microscopy of multicolor excitation. , 2009, Optics letters.
[8] D. Ray,et al. Temperature dependence and temperature compensation of kinetics of chemical oscillations; Belousov-Zhabotinskii reaction, glycolysis and circadian rhythms. , 2008, Journal of theoretical biology.
[9] J. Lakowicz,et al. Fluorescence lifetime imaging of free and protein-bound NADH. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[10] R. Anderson. Actin filaments in normal and migrating corneal epithelial cells. , 1977, Investigative ophthalmology & visual science.
[11] Y. Ohashi,et al. Corneal Epithelial Deficiency Induced by the Use of β-Blocker Eye Drops , 1997 .
[12] S. Tseng,et al. Corneal epithelial wound healing in partial limbal deficiency. , 1990, Investigative ophthalmology & visual science.
[13] N. Ramanujam,et al. Metabolic mapping of MCF10A human breast cells via multiphoton fluorescence lifetime imaging of the coenzyme NADH. , 2005, Cancer research.
[14] S. Klyce,et al. Epithelial wound closure in the rabbit cornea. A biphasic process. , 1986, Investigative ophthalmology & visual science.
[15] Gereon Hüttmann,et al. Imaging corneal crosslinking by autofluorescence 2‐photon microscopy, second harmonic generation, and fluorescence lifetime measurements , 2010, Journal of cataract and refractive surgery.
[16] A. Heikal,et al. Two-photon autofluorescence dynamics imaging reveals sensitivity of intracellular NADH concentration and conformation to cell physiology at the single-cell level. , 2009, Journal of photochemistry and photobiology. B, Biology.
[17] G. Hüttmann,et al. Comparison of Cornea Module and DermaInspect for noninvasive imaging of ocular surface pathologies. , 2009, Journal of biomedical optics.
[18] E. Hillman,et al. Hyperspectral in vivo two-photon microscopy of intrinsic contrast. , 2008, Optics letters.
[19] W. Webb,et al. Conformational Dependence of Intracellular NADH on Metabolic State Revealed by Associated Fluorescence Anisotropy*♦ , 2005, Journal of Biological Chemistry.
[20] S. Sel,et al. Intestinal Trefoil Factor/TFF3 Promotes Re-epithelialization of Corneal Wounds* , 2008, Journal of Biological Chemistry.
[21] Sanjay V. Patel,et al. Confocal microscopy in ophthalmology. , 2009, American journal of ophthalmology.
[22] G. Hüttmann,et al. Intravital multidimensional real-time imaging of the conjunctival immune system. , 2010, Developments in ophthalmology.
[23] Gereon Hüttmann,et al. Experimental induction and three-dimensional two-photon imaging of conjunctiva-associated lymphoid tissue. , 2008, Investigative ophthalmology & visual science.
[24] D. Cogan,et al. Sliding of the epithelium in experimental corneal wounds. , 1976, Investigative ophthalmology.
[25] Iris Riemann,et al. High-resolution multiphoton tomography of human skin with subcellular spatial resolution and picosecond time resolution. , 2003, Journal of biomedical optics.
[26] I. Silver,et al. Limitation of glycolysis by hexokinase in rat brain synaptosomes during intense ion pumping , 1996, Brain Research.
[27] R Birngruber,et al. [Optical coherence tomography: from retina imaging to intraoperative use - a review]. , 2009, Klinische Monatsblatter fur Augenheilkunde.
[28] N. Ramanujam,et al. In vivo multiphoton microscopy of NADH and FAD redox states, fluorescence lifetimes, and cellular morphology in precancerous epithelia , 2007, Proceedings of the National Academy of Sciences.
[29] W. Webb,et al. Three‐dimensionally resolved NAD(P)H cellular metabolic redox imaging of the in situ cornea with two‐photon excitation laser scanning microscopy , 1995, Journal of microscopy.
[30] Herbert Schneckenburger,et al. Autofluorescence Lifetime Imaging of Cultivated Cells Using a UV Picosecond Laser Diode , 2004, Journal of Fluorescence.
[31] G. Somero. Temperature as a selective factor in protein evolution: the adaptational strategy of "compromise". , 1975, The Journal of experimental zoology.
[32] A. Kiemer,et al. Non-invasive live-cell measurement of changes in macrophage NAD(P)H by two-photon microscopy. , 2005, Immunology letters.