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Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence

[Image: see text] The protein–water interface is a critical determinant of protein structure and function, yet the precise nature of dynamics in this complex system remains elusive. Tryptophan fluorescence has become the probe of choice for such dynamics on the picosecond time scale (especially via...

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Autores principales: Biesso, Arianna, Xu, Jianhua, Muíño, Pedro L., Callis, Patrik R., Knutson, Jay R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004251/
https://www.ncbi.nlm.nih.gov/pubmed/24456037
http://dx.doi.org/10.1021/ja406126a
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author Biesso, Arianna
Xu, Jianhua
Muíño, Pedro L.
Callis, Patrik R.
Knutson, Jay R.
author_facet Biesso, Arianna
Xu, Jianhua
Muíño, Pedro L.
Callis, Patrik R.
Knutson, Jay R.
author_sort Biesso, Arianna
collection PubMed
description [Image: see text] The protein–water interface is a critical determinant of protein structure and function, yet the precise nature of dynamics in this complex system remains elusive. Tryptophan fluorescence has become the probe of choice for such dynamics on the picosecond time scale (especially via fluorescence “upconversion”). In the absence of ultrafast (“quasi-static”) quenching from nearby groups, the TDFSS (time-dependent fluorescence Stokes shift) for exposed Trp directly reports on dipolar relaxation near the interface (both water and polypeptide). The small protein GB1 contains a single Trp (W43) of this type, and its structure is refractory to pH above 3. Thus, it can be used to examine the dependence of dipolar relaxation upon charge reconfiguration with titration. Somewhat surprisingly, the dipolar dynamics in the 100 fs to 100 ps range were unchanged with pH, although nanosecond yield, rates, and access all changed. These results were rationalized with the help of molecular dynamics (including QM-MM) simulations that reveal a balancing, sometimes even countervailing influence of protein and water dipoles. Interestingly, these simulations also showed the dominant influence of water molecules which are associated with the protein interface for up to 30 ps yet free to rotate at approximately “bulk” water rates.
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spelling pubmed-40042512015-01-23 Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence Biesso, Arianna Xu, Jianhua Muíño, Pedro L. Callis, Patrik R. Knutson, Jay R. J Am Chem Soc [Image: see text] The protein–water interface is a critical determinant of protein structure and function, yet the precise nature of dynamics in this complex system remains elusive. Tryptophan fluorescence has become the probe of choice for such dynamics on the picosecond time scale (especially via fluorescence “upconversion”). In the absence of ultrafast (“quasi-static”) quenching from nearby groups, the TDFSS (time-dependent fluorescence Stokes shift) for exposed Trp directly reports on dipolar relaxation near the interface (both water and polypeptide). The small protein GB1 contains a single Trp (W43) of this type, and its structure is refractory to pH above 3. Thus, it can be used to examine the dependence of dipolar relaxation upon charge reconfiguration with titration. Somewhat surprisingly, the dipolar dynamics in the 100 fs to 100 ps range were unchanged with pH, although nanosecond yield, rates, and access all changed. These results were rationalized with the help of molecular dynamics (including QM-MM) simulations that reveal a balancing, sometimes even countervailing influence of protein and water dipoles. Interestingly, these simulations also showed the dominant influence of water molecules which are associated with the protein interface for up to 30 ps yet free to rotate at approximately “bulk” water rates. American Chemical Society 2014-01-23 2014-02-19 /pmc/articles/PMC4004251/ /pubmed/24456037 http://dx.doi.org/10.1021/ja406126a Text en Copyright © 2014 American Chemical Society
spellingShingle Biesso, Arianna
Xu, Jianhua
Muíño, Pedro L.
Callis, Patrik R.
Knutson, Jay R.
Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title_full Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title_fullStr Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title_full_unstemmed Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title_short Charge Invariant Protein–Water Relaxation in GB1 via Ultrafast Tryptophan Fluorescence
title_sort charge invariant protein–water relaxation in gb1 via ultrafast tryptophan fluorescence
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004251/
https://www.ncbi.nlm.nih.gov/pubmed/24456037
http://dx.doi.org/10.1021/ja406126a
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