TY - JOUR
T1 - An optogenetic assay method for electrogenic transporters using Escherichia coli co-expressing light-driven proton pump
AU - Hayashi, Masahiro
AU - Kojima, Keiichi
AU - Sudo, Yuki
AU - Yamashita, Atsuko
N1 - Funding Information:
We thank Dr Teruhisa Hirai for providing the OxlT gene and valuable discussions. The authors would like to thank Enago ( www.enago.jp ) for the English language review. This work was financially supported by JSPS KAKENHI grant numbers JP18H02411, JP19H04727, JP19H05396, and JP20K21482 to Yuki Sudo and Research Fund from Koyanagi Foundation to Atsuko Yamashita. This research was partially supported by JST CREST (JPMJCR1656) to Yuki Sudo.
Publisher Copyright:
© 2021 The Protein Society.
PY - 2021/10
Y1 - 2021/10
N2 - In organisms, nutrients and wastes move across the cellular membrane, in which membrane-embedded transporters facilitate and inhibit the movement. Despite the physiological significances, the currently used assay methods for transporter activities require tedious preparation and analytical processes. In this study, we report the isotope-free and label-free measurement system for the transport activities of electrogenic transporters. In the system, two molecules, a light-driven inward proton pump rhodopsin, xenorhodopsin (XeR), and a representative of an electrogenic transporter, an oxalate transporter (OxlT), were co-expressed in Escherichia coli cells. The light illumination of the cells co-expressing XeR and OxlT showed an increase in the pH of the bulk solution and that the extent of the pH change is significantly enhanced by adding the oxalate, suggesting the light-induced inward proton transport by XeR coupled to the negative electrogenic transport by OxlT. Such a pH increase was dependent on the oxalate concentration, but not on the XeR expression level. Of note, pH increase was not observed for the nonfunctional mutants of OxlT, R272A, and K355Q, supporting the validity of the system. Thus, we successfully developed an optogenetic assay method for electrogenic transporters using E. coli co-expressing light-driven proton pump.
AB - In organisms, nutrients and wastes move across the cellular membrane, in which membrane-embedded transporters facilitate and inhibit the movement. Despite the physiological significances, the currently used assay methods for transporter activities require tedious preparation and analytical processes. In this study, we report the isotope-free and label-free measurement system for the transport activities of electrogenic transporters. In the system, two molecules, a light-driven inward proton pump rhodopsin, xenorhodopsin (XeR), and a representative of an electrogenic transporter, an oxalate transporter (OxlT), were co-expressed in Escherichia coli cells. The light illumination of the cells co-expressing XeR and OxlT showed an increase in the pH of the bulk solution and that the extent of the pH change is significantly enhanced by adding the oxalate, suggesting the light-induced inward proton transport by XeR coupled to the negative electrogenic transport by OxlT. Such a pH increase was dependent on the oxalate concentration, but not on the XeR expression level. Of note, pH increase was not observed for the nonfunctional mutants of OxlT, R272A, and K355Q, supporting the validity of the system. Thus, we successfully developed an optogenetic assay method for electrogenic transporters using E. coli co-expressing light-driven proton pump.
KW - E. coli
KW - electrogenic
KW - light-driven proton pump
KW - oxalate transporter
KW - transporter
KW - xenorhodopsin
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U2 - 10.1002/pro.4154
DO - 10.1002/pro.4154
M3 - Article
C2 - 34216503
AN - SCOPUS:85109922309
SN - 0961-8368
VL - 30
SP - 2161
EP - 2169
JO - Protein Science
JF - Protein Science
IS - 10
ER -