Cargando…

A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology

The electrical membrane potential (V(m)) is one of the components of the electrochemical potential of protons across the biological membrane (proton motive force), which powers many vital cellular processes. Because V(m) also plays a role in signal transduction, measuring it is of great interest. Ov...

Descripción completa

Detalles Bibliográficos
Autores principales: Mancini, Leonardo, Terradot, Guillaume, Tian, Tian, Pu, YingYing, Li, Yingxing, Lo, Chien-Jung, Bai, Fan, Pilizota, Teuta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6950638/
https://www.ncbi.nlm.nih.gov/pubmed/31810660
http://dx.doi.org/10.1016/j.bpj.2019.10.030
_version_ 1783486119780810752
author Mancini, Leonardo
Terradot, Guillaume
Tian, Tian
Pu, YingYing
Li, Yingxing
Lo, Chien-Jung
Bai, Fan
Pilizota, Teuta
author_facet Mancini, Leonardo
Terradot, Guillaume
Tian, Tian
Pu, YingYing
Li, Yingxing
Lo, Chien-Jung
Bai, Fan
Pilizota, Teuta
author_sort Mancini, Leonardo
collection PubMed
description The electrical membrane potential (V(m)) is one of the components of the electrochemical potential of protons across the biological membrane (proton motive force), which powers many vital cellular processes. Because V(m) also plays a role in signal transduction, measuring it is of great interest. Over the years, a variety of techniques have been developed for the purpose. In bacteria, given their small size, Nernstian membrane voltage probes are arguably the favorite strategy, and their cytoplasmic accumulation depends on V(m) according to the Nernst equation. However, a careful calibration of Nernstian probes that takes into account the tradeoffs between the ease with which the signal from the dye is observed and the dyes’ interactions with cellular physiology is rarely performed. Here, we use a mathematical model to understand such tradeoffs and apply the results to assess the applicability of the Thioflavin T dye as a V(m) sensor in Escherichia coli. We identify the conditions in which the dye turns from a V(m) probe into an actuator and, based on the model and experimental results, propose a general workflow for the characterization of Nernstian dye candidates.
format Online
Article
Text
id pubmed-6950638
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Biophysical Society
record_format MEDLINE/PubMed
spelling pubmed-69506382020-10-10 A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology Mancini, Leonardo Terradot, Guillaume Tian, Tian Pu, YingYing Li, Yingxing Lo, Chien-Jung Bai, Fan Pilizota, Teuta Biophys J Articles The electrical membrane potential (V(m)) is one of the components of the electrochemical potential of protons across the biological membrane (proton motive force), which powers many vital cellular processes. Because V(m) also plays a role in signal transduction, measuring it is of great interest. Over the years, a variety of techniques have been developed for the purpose. In bacteria, given their small size, Nernstian membrane voltage probes are arguably the favorite strategy, and their cytoplasmic accumulation depends on V(m) according to the Nernst equation. However, a careful calibration of Nernstian probes that takes into account the tradeoffs between the ease with which the signal from the dye is observed and the dyes’ interactions with cellular physiology is rarely performed. Here, we use a mathematical model to understand such tradeoffs and apply the results to assess the applicability of the Thioflavin T dye as a V(m) sensor in Escherichia coli. We identify the conditions in which the dye turns from a V(m) probe into an actuator and, based on the model and experimental results, propose a general workflow for the characterization of Nernstian dye candidates. The Biophysical Society 2020-01-07 2019-11-15 /pmc/articles/PMC6950638/ /pubmed/31810660 http://dx.doi.org/10.1016/j.bpj.2019.10.030 Text en © 2019 Biophysical Society. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Mancini, Leonardo
Terradot, Guillaume
Tian, Tian
Pu, YingYing
Li, Yingxing
Lo, Chien-Jung
Bai, Fan
Pilizota, Teuta
A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title_full A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title_fullStr A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title_full_unstemmed A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title_short A General Workflow for Characterization of Nernstian Dyes and Their Effects on Bacterial Physiology
title_sort general workflow for characterization of nernstian dyes and their effects on bacterial physiology
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6950638/
https://www.ncbi.nlm.nih.gov/pubmed/31810660
http://dx.doi.org/10.1016/j.bpj.2019.10.030
work_keys_str_mv AT mancinileonardo ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT terradotguillaume ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT tiantian ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT puyingying ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT liyingxing ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT lochienjung ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT baifan ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT pilizotateuta ageneralworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT mancinileonardo generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT terradotguillaume generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT tiantian generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT puyingying generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT liyingxing generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT lochienjung generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT baifan generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology
AT pilizotateuta generalworkflowforcharacterizationofnernstiandyesandtheireffectsonbacterialphysiology