scholarly journals Spectroscopic Studies of Model Photo-Receptors: Validation of a Nanosecond Time-Resolved Micro-Spectrophotometer Design Using Photoactive Yellow Protein and α-Phycoerythrocyanin

2013 ◽  
Vol 14 (9) ◽  
pp. 18881-18898 ◽  
Author(s):  
Namrta Purwar ◽  
Jason Tenboer ◽  
Shailesh Tripathi ◽  
Marius Schmidt
2020 ◽  
Author(s):  
Matthew Romei ◽  
Chi-Yun Lin ◽  
Steven Boxer

Photo-induced structural rearrangements of chromophore-containing proteins are essential for various light-dependent signaling pathways and optogenetic applications. Ultrafast structural and spectroscopic methods have offered insights into these structural rearrangements across many timescales. However, questions still remain about exact mechanistic details, especially regarding photoisomerization of the chromophore within these proteins femtoseconds to picoseconds after photoexcitation. Instrumentation advancements for time-resolved crystallography and ultrafast electron diffraction provide a promising opportunity to study these reactions, but achieving enough signal-to-noise is a constant challenge. Here we present four new photoactive yellow protein constructs and one new fluorescent protein construct that contain heavy atoms either within or around the chromophore and can be expressed with high yields. Structural characterization of these constructs, most at atomic resolution, show minimal perturbation caused by the heavy atoms compared to wild-type structures. Spectroscopic studies report the effects of the heavy atom identity and location on the chromophore’s photophysical properties. None of the substitutions prevent photoisomerization, although certain rates within the photocycle may be affected. Overall, these new proteins containing heavy atoms are ideal samples for state-of-the-art time-resolved crystallography and electron diffraction experiments to elucidate crucial mechanistic information of photoisomerization.


2020 ◽  
Author(s):  
Matthew Romei ◽  
Chi-Yun Lin ◽  
Steven Boxer

Photo-induced structural rearrangements of chromophore-containing proteins are essential for various light-dependent signaling pathways and optogenetic applications. Ultrafast structural and spectroscopic methods have offered insights into these structural rearrangements across many timescales. However, questions still remain about exact mechanistic details, especially regarding photoisomerization of the chromophore within these proteins femtoseconds to picoseconds after photoexcitation. Instrumentation advancements for time-resolved crystallography and ultrafast electron diffraction provide a promising opportunity to study these reactions, but achieving enough signal-to-noise is a constant challenge. Here we present four new photoactive yellow protein constructs and one new fluorescent protein construct that contain heavy atoms either within or around the chromophore and can be expressed with high yields. Structural characterization of these constructs, most at atomic resolution, show minimal perturbation caused by the heavy atoms compared to wild-type structures. Spectroscopic studies report the effects of the heavy atom identity and location on the chromophore’s photophysical properties. None of the substitutions prevent photoisomerization, although certain rates within the photocycle may be affected. Overall, these new proteins containing heavy atoms are ideal samples for state-of-the-art time-resolved crystallography and electron diffraction experiments to elucidate crucial mechanistic information of photoisomerization.


1968 ◽  
Vol 213 (3) ◽  
pp. 215-226 ◽  
Author(s):  
J. E. Persson ◽  
S. K. HÄndel ◽  
A. Englund ◽  
A. Dejke

1984 ◽  
Vol 25 (18) ◽  
pp. 1933-1936
Author(s):  
Shigeru Murata ◽  
Tadashi Sugawara ◽  
Nobuaki Nakashima ◽  
Keitaro Yoshihara ◽  
Hiizu Iwamura

2004 ◽  
Vol 44 (supplement) ◽  
pp. S101
Author(s):  
K. Koike ◽  
K. Kawaguchi ◽  
A. Kimura ◽  
T. Yamato

RSC Advances ◽  
2016 ◽  
Vol 6 (5) ◽  
pp. 3792-3805 ◽  
Author(s):  
Santosh K. Gupta ◽  
K. Sudarshan ◽  
P. S. Ghosh ◽  
K. Sanyal ◽  
A. P. Srivastava ◽  
...  

Effect of annealing temperature on photophysical characteristics of pure and SrWO4:Eu3+ nanoparticles were investigated and the changes observed correlated with density function theory (DFT) and positron annihilation lifetime spectroscopy (PALS).


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