Fluorescence-Amplified Detection of Redox Turnovers in Supported Lipid Bilayers Illuminates Redox Processes of α-Tocopherol

ACS Appl Mater Interfaces. 2022 Mar 23;14(11):13872-13882. doi: 10.1021/acsami.1c23931. Epub 2022 Mar 10.

Abstract

Electron-transfer processes in lipid membranes are key to biological functions, yet challenging to study because of the intrinsic heterogeneity of the systems. Here, we report spectro-electrochemical measurements on indium tin oxide-supported lipid bilayers toward the selective induction and sensing of redox processes in membranes. Working at neutral pH with a fluorogenic α-tocopherol analogue, the dynamics of the two-electron oxidation of the chromanol to a chromanone and the rapid thermal decay of the latter to a chromoquinone are recorded as a rapid surge and drop in intensity, respectively. Continuous voltage cycling reveals rapid chromoquinone two-electron, two-proton reduction to dihydrochromoquinone at negative bias, followed by slow regeneration of the former at positive bias. The kinetic parameters of these different transitions are readily obtained as a function of applied potentials. The sensitivity and selectivity afforded by the reported method enables monitoring signals equivalent to femtoampere currents with a high signal-to-background ratio. The study provides a new method to monitor membrane redox processes with high sensitivity and minimal concentrations and unravels key dynamic aspects of α-tocopherol redox chemistry.

Keywords: fluorescence microscopy; heterogeneous electron-transfer kinetics; membrane redox reactions; redox-active fluorogenic probes; spectro-electrochemistry.

MeSH terms

  • Fluorescence
  • Kinetics
  • Lipid Bilayers*
  • Oxidation-Reduction
  • alpha-Tocopherol*

Substances

  • Lipid Bilayers
  • alpha-Tocopherol