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Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation

[Image: see text] The site-specific incorporation of three new coumarin lysine analogues into proteins was achieved in bacterial and mammalian cells using an engineered pyrrolysyl-tRNA synthetase system. The genetically encoded coumarin lysines were successfully applied as fluorescent cellular probe...

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Autores principales: Luo, Ji, Uprety, Rajendra, Naro, Yuta, Chou, Chungjung, Nguyen, Duy P., Chin, Jason W., Deiters, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4333581/
https://www.ncbi.nlm.nih.gov/pubmed/25341086
http://dx.doi.org/10.1021/ja5055862
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author Luo, Ji
Uprety, Rajendra
Naro, Yuta
Chou, Chungjung
Nguyen, Duy P.
Chin, Jason W.
Deiters, Alexander
author_facet Luo, Ji
Uprety, Rajendra
Naro, Yuta
Chou, Chungjung
Nguyen, Duy P.
Chin, Jason W.
Deiters, Alexander
author_sort Luo, Ji
collection PubMed
description [Image: see text] The site-specific incorporation of three new coumarin lysine analogues into proteins was achieved in bacterial and mammalian cells using an engineered pyrrolysyl-tRNA synthetase system. The genetically encoded coumarin lysines were successfully applied as fluorescent cellular probes for protein localization and for the optical activation of protein function. As a proof-of-principle, photoregulation of firefly luciferase was achieved in live cells by caging a key lysine residue, and excellent OFF to ON light-switching ratios were observed. Furthermore, two-photon and single-photon optochemical control of EGFP maturation was demonstrated, enabling the use of different, potentially orthogonal excitation wavelengths (365, 405, and 760 nm) for the sequential activation of protein function in live cells. These results demonstrate that coumarin lysines are a new and valuable class of optical probes that can be used for the investigation and regulation of protein structure, dynamics, function, and localization in live cells. The small size of coumarin, the site-specific incorporation, the application as both a light-activated caging group and as a fluorescent probe, and the broad range of excitation wavelengths are advantageous over other genetically encoded photocontrol systems and provide a precise and multifunctional tool for cellular biology.
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spelling pubmed-43335812015-02-19 Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation Luo, Ji Uprety, Rajendra Naro, Yuta Chou, Chungjung Nguyen, Duy P. Chin, Jason W. Deiters, Alexander J Am Chem Soc [Image: see text] The site-specific incorporation of three new coumarin lysine analogues into proteins was achieved in bacterial and mammalian cells using an engineered pyrrolysyl-tRNA synthetase system. The genetically encoded coumarin lysines were successfully applied as fluorescent cellular probes for protein localization and for the optical activation of protein function. As a proof-of-principle, photoregulation of firefly luciferase was achieved in live cells by caging a key lysine residue, and excellent OFF to ON light-switching ratios were observed. Furthermore, two-photon and single-photon optochemical control of EGFP maturation was demonstrated, enabling the use of different, potentially orthogonal excitation wavelengths (365, 405, and 760 nm) for the sequential activation of protein function in live cells. These results demonstrate that coumarin lysines are a new and valuable class of optical probes that can be used for the investigation and regulation of protein structure, dynamics, function, and localization in live cells. The small size of coumarin, the site-specific incorporation, the application as both a light-activated caging group and as a fluorescent probe, and the broad range of excitation wavelengths are advantageous over other genetically encoded photocontrol systems and provide a precise and multifunctional tool for cellular biology. American Chemical Society 2014-10-23 2014-11-05 /pmc/articles/PMC4333581/ /pubmed/25341086 http://dx.doi.org/10.1021/ja5055862 Text en Copyright © 2014 American Chemical Society
spellingShingle Luo, Ji
Uprety, Rajendra
Naro, Yuta
Chou, Chungjung
Nguyen, Duy P.
Chin, Jason W.
Deiters, Alexander
Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title_full Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title_fullStr Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title_full_unstemmed Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title_short Genetically Encoded Optochemical Probes for Simultaneous Fluorescence Reporting and Light Activation of Protein Function with Two-Photon Excitation
title_sort genetically encoded optochemical probes for simultaneous fluorescence reporting and light activation of protein function with two-photon excitation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4333581/
https://www.ncbi.nlm.nih.gov/pubmed/25341086
http://dx.doi.org/10.1021/ja5055862
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