The nature of the optical cycle of photoactive yellow protein (PYP) makes its elucidation challenging for both experiment and theory. The long transition times render conventional simulation methods ineffective, and yet the short signaling-state lifetime makes experimental data difficult to obtain and interpret. Here, through an innovative combination of computational methods, a prediction and analysis of the biological signaling state of PYP is presented. Coarse-grained modeling and locally scaled diffusion map are first used to obtain a rough bird's-eye view of the free energy landscape of photo-activated PYP. Then all-atom reconstruction, followed by an enhanced sampling scheme; diffusion map-directed-molecular dynamics are used to focus...
Photoactive Yellow Protein (PYP) belongs to a class of sensory proteins, within the Xanthopsin famil...
Biological structures able to sense light and convert it in biological signals are widespread in Nat...
The ultrafast excited-state dynamics underlying the receptor state photorecovery is resolved in the ...
The nature of the optical cycle of photoactive yellow protein (PYP) makes its elucidation challengin...
As a bacterial blue light sensor the photoactive yellow protein (PYP) undergoes conformational chang...
AbstractAs a bacterial blue light sensor the photoactive yellow protein (PYP) undergoes conformation...
Understanding the dynamics of large-scale conformational changes in proteins still poses a challenge...
Photoactive Yellow Protein (PYP), a phototaxis photoreceptor from Ectothiorhodospira halophila, is a...
Biological photoreceptors are very suitable for studies of the structure-function relationship in pr...
Molecular dynamics simulation techniques together with time-dependent density functional theory calc...
SummaryIn the bacterial photoreceptor photoactive yellow protein (PYP), absorption of blue light by ...
We discuss the role of the protein in controlling the absorption spectra of photoactive yellow prote...
Photoactive Yellow Protein (PYP), discovered almost 20 years ago in Ectothiorhodospira (Halorhodospi...
Photoactive proteins such as PYP (photoactive yellow protein) are generally accepted as model system...
Using various spectroscopic techniques such as UV–visible spectroscopy, circular dichroism spectrosc...
Photoactive Yellow Protein (PYP) belongs to a class of sensory proteins, within the Xanthopsin famil...
Biological structures able to sense light and convert it in biological signals are widespread in Nat...
The ultrafast excited-state dynamics underlying the receptor state photorecovery is resolved in the ...
The nature of the optical cycle of photoactive yellow protein (PYP) makes its elucidation challengin...
As a bacterial blue light sensor the photoactive yellow protein (PYP) undergoes conformational chang...
AbstractAs a bacterial blue light sensor the photoactive yellow protein (PYP) undergoes conformation...
Understanding the dynamics of large-scale conformational changes in proteins still poses a challenge...
Photoactive Yellow Protein (PYP), a phototaxis photoreceptor from Ectothiorhodospira halophila, is a...
Biological photoreceptors are very suitable for studies of the structure-function relationship in pr...
Molecular dynamics simulation techniques together with time-dependent density functional theory calc...
SummaryIn the bacterial photoreceptor photoactive yellow protein (PYP), absorption of blue light by ...
We discuss the role of the protein in controlling the absorption spectra of photoactive yellow prote...
Photoactive Yellow Protein (PYP), discovered almost 20 years ago in Ectothiorhodospira (Halorhodospi...
Photoactive proteins such as PYP (photoactive yellow protein) are generally accepted as model system...
Using various spectroscopic techniques such as UV–visible spectroscopy, circular dichroism spectrosc...
Photoactive Yellow Protein (PYP) belongs to a class of sensory proteins, within the Xanthopsin famil...
Biological structures able to sense light and convert it in biological signals are widespread in Nat...
The ultrafast excited-state dynamics underlying the receptor state photorecovery is resolved in the ...