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Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor

Adenosine 5’ triphosphate (ATP) is a ubiquitous extracellular signaling messenger. Here, we describe a method for in-vivo imaging of extracellular ATP with high spatiotemporal resolution. We prepared a comprehensive set of cysteine-substitution mutants of ATP-binding protein, Bacillus FoF(1)-ATP syn...

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Autores principales: Kitajima, Nami, Takikawa, Kenji, Sekiya, Hiroshi, Satoh, Kaname, Asanuma, Daisuke, Sakamoto, Hirokazu, Takahashi, Shodai, Hanaoka, Kenjiro, Urano, Yasuteru, Namiki, Shigeyuki, Iino, Masamitsu, Hirose, Kenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7398694/
https://www.ncbi.nlm.nih.gov/pubmed/32648544
http://dx.doi.org/10.7554/eLife.57544
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author Kitajima, Nami
Takikawa, Kenji
Sekiya, Hiroshi
Satoh, Kaname
Asanuma, Daisuke
Sakamoto, Hirokazu
Takahashi, Shodai
Hanaoka, Kenjiro
Urano, Yasuteru
Namiki, Shigeyuki
Iino, Masamitsu
Hirose, Kenzo
author_facet Kitajima, Nami
Takikawa, Kenji
Sekiya, Hiroshi
Satoh, Kaname
Asanuma, Daisuke
Sakamoto, Hirokazu
Takahashi, Shodai
Hanaoka, Kenjiro
Urano, Yasuteru
Namiki, Shigeyuki
Iino, Masamitsu
Hirose, Kenzo
author_sort Kitajima, Nami
collection PubMed
description Adenosine 5’ triphosphate (ATP) is a ubiquitous extracellular signaling messenger. Here, we describe a method for in-vivo imaging of extracellular ATP with high spatiotemporal resolution. We prepared a comprehensive set of cysteine-substitution mutants of ATP-binding protein, Bacillus FoF(1)-ATP synthase ε subunit, labeled with small-molecule fluorophores at the introduced cysteine residue. Screening revealed that the Cy3-labeled glutamine-105 mutant (Q105C-Cy3; designated ATPOS) shows a large fluorescence change in the presence of ATP, with submicromolar affinity, pH-independence, and high selectivity for ATP over ATP metabolites and other nucleotides. To enable in-vivo validation, we introduced BoNT/C-Hc for binding to neuronal plasma membrane and Alexa Fluor 488 for ratiometric measurement. The resulting ATPOS complex binds to neurons in cerebral cortex of living mice, and clearly visualized a concentrically propagating wave of extracellular ATP release in response to electrical stimulation. ATPOS should be useful to probe the extracellular ATP dynamics of diverse biological processes in vivo.
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spelling pubmed-73986942020-08-05 Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor Kitajima, Nami Takikawa, Kenji Sekiya, Hiroshi Satoh, Kaname Asanuma, Daisuke Sakamoto, Hirokazu Takahashi, Shodai Hanaoka, Kenjiro Urano, Yasuteru Namiki, Shigeyuki Iino, Masamitsu Hirose, Kenzo eLife Biochemistry and Chemical Biology Adenosine 5’ triphosphate (ATP) is a ubiquitous extracellular signaling messenger. Here, we describe a method for in-vivo imaging of extracellular ATP with high spatiotemporal resolution. We prepared a comprehensive set of cysteine-substitution mutants of ATP-binding protein, Bacillus FoF(1)-ATP synthase ε subunit, labeled with small-molecule fluorophores at the introduced cysteine residue. Screening revealed that the Cy3-labeled glutamine-105 mutant (Q105C-Cy3; designated ATPOS) shows a large fluorescence change in the presence of ATP, with submicromolar affinity, pH-independence, and high selectivity for ATP over ATP metabolites and other nucleotides. To enable in-vivo validation, we introduced BoNT/C-Hc for binding to neuronal plasma membrane and Alexa Fluor 488 for ratiometric measurement. The resulting ATPOS complex binds to neurons in cerebral cortex of living mice, and clearly visualized a concentrically propagating wave of extracellular ATP release in response to electrical stimulation. ATPOS should be useful to probe the extracellular ATP dynamics of diverse biological processes in vivo. eLife Sciences Publications, Ltd 2020-07-10 /pmc/articles/PMC7398694/ /pubmed/32648544 http://dx.doi.org/10.7554/eLife.57544 Text en © 2020, Kitajima et al http://creativecommons.org/licenses/by/4.0/ http://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Kitajima, Nami
Takikawa, Kenji
Sekiya, Hiroshi
Satoh, Kaname
Asanuma, Daisuke
Sakamoto, Hirokazu
Takahashi, Shodai
Hanaoka, Kenjiro
Urano, Yasuteru
Namiki, Shigeyuki
Iino, Masamitsu
Hirose, Kenzo
Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title_full Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title_fullStr Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title_full_unstemmed Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title_short Real-time in vivo imaging of extracellular ATP in the brain with a hybrid-type fluorescent sensor
title_sort real-time in vivo imaging of extracellular atp in the brain with a hybrid-type fluorescent sensor
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7398694/
https://www.ncbi.nlm.nih.gov/pubmed/32648544
http://dx.doi.org/10.7554/eLife.57544
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