Primary conformation change in bacteriorhodopsin on photoexcitation.
暂无分享,去创建一个
[1] M. El-Sayed,et al. Primary Step in Bacteriorhodopsin Photosynthesis: Bond Stretch Rather than Angle Twist of Its Retinal Excited-State Structure , 1998 .
[2] J. Likforman,et al. Control of the spectral-oscillation artifact in femtosecond pump-probe spectroscopy. , 1995, Optics letters.
[3] M. El-Sayed,et al. pH Dependence of the Rate and Quantum Yield of the Retinal Photoisomerization in Bacteriorhodopsin , 1994 .
[4] Takayoshi Kobayashi,et al. FEMTOSECOND STUDIES OF PRIMARY PHOTOPROCESSES IN OCTOPUS RHODOPSIN , 1992 .
[5] Takayoshi Kobayashi,et al. Dynamic Intensity Borrowing in Porphyrin J-Aggregates Revealed by Sub-5-fs Spectroscopy , 2000 .
[6] Investigations of amplitude and phase excitation profiles in femtosecond coherence spectroscopy , 2000, physics/0008221.
[7] M. Sheves,et al. Comparing photoinduced vibrational coherences in bacteriorhodopsin and in native and locked retinal protonated Schiff bases , 2003 .
[8] M. Murakami,et al. Specific damage induced by X-ray radiation and structural changes in the primary photoreaction of bacteriorhodopsin. , 2002, Journal of molecular biology.
[9] Robert R. Birge,et al. Volumetric optical memory based on bacteriorhodopsin , 2002 .
[10] M. Joffre,et al. Coherent effects in pump-probe spectroscopy of excitons. , 1988, Optics letters.
[11] R. Mathies,et al. Assignment and interpretation of hydrogen out-of-plane vibrations in the resonance Raman spectra of rhodopsin and bathorhodopsin. , 1982, Biochemistry.
[12] T. Kobayashi,et al. Adaptive shaping of two-cycle visible pulses using a flexible mirror , 2002 .
[13] Oliver Weingart,et al. The twisted C11=C12 bond of the rhodopsin chromophore--a photochemical hot spot. , 2007, Journal of the American Chemical Society.
[14] A. Zewail,et al. Femtosecond real‐time observation of wave packet oscillations (resonance) in dissociation reactions , 1988 .
[15] Wolfgang Kaiser,et al. Excited-state reaction dynamics of bacteriorhodopsin studied by femtosecond spectroscopy , 1988 .
[16] Henry Tauber,et al. Methods of Enzymology. , 1956 .
[17] Andrew C. Terentis,et al. Picosecond Time-Resolved Coherent Anti-Stokes Raman Spectroscopy of the Artificial Bacteriorhodopsin Pigment, BR6.11† , 2003 .
[18] Shin‐Tson Wu,et al. All-optical switching characteristics in bacteriorhodopsin and its applications in integrated optics. , 2004, Optics express.
[19] R. Mathies,et al. Thermal Effects in Resonance Raman Scattering: Analysis of the Raman Intensities of Rhodopsin and of the Time-Resolved Raman Scattering of Bacteriorhodopsin , 1995 .
[20] Johannes Herbst,et al. Femtosecond Infrared Spectroscopy of Bacteriorhodopsin Chromophore Isomerization , 2002, Science.
[21] Takashi Saito,et al. Real-time spectroscopy of transition states in bacteriorhodopsin during retinal isomerization , 2001, Nature.
[22] R. Mathies,et al. DIRECT OBSERVATION OF THE EXCITED-STATE CIS-TRANS PHOTOISOMERIZATION OF BACTERIORHODOPSIN - MULTILEV , 1989 .
[23] C. Shank,et al. Femtosecond Chirped Pulse Excitation of Vibrational Wave Packets in LD690 and Bacteriorhodopsin , 1998 .
[24] H. Abramczyk,et al. Primary events in the bacteriorhodopsin photocycle: Torsional vibrational dephasing in the first excited electronic state , 2005 .
[25] Klaus Schulten,et al. Structural changes during the formation of early intermediates in the bacteriorhodopsin photocycle. , 2002, Biophysical journal.
[26] S. Chekalin,et al. Primary events in bacteriorhodopsin probed by subpicosecond spectroscopy , 1985 .
[27] R. Hochstrasser,et al. EXCITED STATE DYNAMICS OF BACTERIORHODOPSIN REVEALED BY TRANSIENT STIMULATED EMISSION SPECTRA , 1996 .
[28] R. Baughman,et al. Raman spectral shifts relevant to electron delocalization in polydiacetylenes , 1974 .
[29] Richard A. Mathies,et al. Picosecond time-resolved resonance Raman spectroscopy of bacteriorhodopsin's J, K, and KL intermediates , 1991 .
[30] Ahmed H. Zewail,et al. Direct Observation of the Transition State , 1995 .
[31] R. Mathies,et al. Vibrational analysis of the all-trans-retinal chromophore in light-adapted bacteriorhodopsin , 1987 .
[32] R.,et al. Femtosecond time-resolved fluorescence spectroscopy of bacteriorhodopsin : Direct observation of excited state dynamics in the primary step of the proton pump cycle , 2001 .
[33] Richard A Mathies,et al. Femtosecond Broadband Stimulated Raman: A New Approach for High-Performance Vibrational Spectroscopy , 2003, Applied spectroscopy.
[34] F. Schotte,et al. Picosecond time-resolved X-ray crystallography: probing protein function in real time. , 2004, Journal of structural biology.
[35] M. Olivucci,et al. A tiny excited-state barrier can induce a multiexponential decay of the retinal chromophore: a quantum dynamics investigation. , 2005, Angewandte Chemie.
[36] P. Anfinrud,et al. Chemical dynamics in proteins: the photoisomerization of retinal in bacteriorhodopsin. , 1998, Science.
[37] V. Hornak,et al. Crystallographic structure of the K intermediate of bacteriorhodopsin: conservation of free energy after photoisomerization of the retinal. , 2002, Journal of molecular biology.
[38] Villeneuve,et al. Observation of fractional revivals of a molecular wave packet. , 1996, Physical review. A, Atomic, molecular, and optical physics.
[39] W. Stoeckenius,et al. Effect of acid pH on the absorption spectra and photoreactions of bacteriorhodopsin. , 1979, Biochemistry.
[40] R. Casadio,et al. Light-dark adaptation of bacteriorhodopsin in triton-treated purple membrane. , 1980, Biochimica et biophysica acta.
[41] Jason R. Dwyer,et al. An Atomic-Level View of Melting Using Femtosecond Electron Diffraction , 2003, Science.
[42] R. Mathies,et al. Theory of dynamic absorption spectroscopy of nonstationary states. 4. Application to 12-fs resonant impulsive Raman spectroscopy of bacteriorhodopsin , 1992 .
[43] M Olivucci,et al. Computational evidence in favor of a two-state, two-mode model of the retinal chromophore photoisomerization. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[44] Shoujun Xu,et al. Dark Structures in Molecular Radiationless Transitions Determined by Ultrafast Diffraction , 2005, Science.
[45] M. Sheves,et al. Following photoinduced dynamics in bacteriorhodopsin with 7-fs impulsive vibrational spectroscopy. , 2007, Journal of the American Chemical Society.
[46] G. Scuseria,et al. Gaussian 03, Revision E.01. , 2007 .
[47] K Schulten,et al. Three electronic state model of the primary phototransformation of bacteriorhodopsin. , 1998, Biophysical journal.
[48] K. Schulten,et al. Molecular dynamics simulation of bacteriorhodopsin's photoisomerization using ab initio forces for the excited chromophore. , 2003, Biophysical journal.
[49] P. Anfinrud,et al. The photoisomerization of retinal in bacteriorhodospin: experimental evidence for a three-state model. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[50] V. Batista,et al. The MP/SOFT methodology for simulations of quantum dynamics: Model study of the photoisomerization of the retinyl chromophore in visual rhodopsin , 2007 .
[51] S Haacke,et al. Probing the Ultrafast Charge Translocation of Photoexcited Retinal in Bacteriorhodopsin , 2005, Science.