4.7 Article

Strobe photography mapping of cell membrane potential with nanosecond resolution

Journal

BIOELECTROCHEMISTRY
Volume 142, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.bioelechem.2021.107929

Keywords

FluoVolt (TM); Strobe photography; Membrane potential; CHO-K1

Funding

  1. USAF [FA8650-19-C-6024]
  2. Oak Ridge Institute for Science and Education (ORISE)
  3. AFOSR [17RHCOR483, 20RHCOR051]

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The development of a high-speed strobe microscopy system allows for direct observation and comparison of membrane potential charging dynamics in a full microscopic field of view, aiding in validating and comparing cellular responses to external electric fields at different cell locations.
The ability to directly observe membrane potential charging dynamics across a full microscopic field of view is vital for understanding interactions between a biological system and a given electrical stimulus. Accurate empirical knowledge of cell membrane electrodynamics will enable validation of fundamental hypotheses posited by the single shell model, which includes the degree of voltage change across a membrane and cellular sensitivity to external electric field non-uniformity and directionality. To this end, we have developed a high-speed strobe microscopy system with a time resolution of similar to 6 ns that allows us to acquire time-sequential data for temporally repeatable events (non-injurious electrostimulation). The imagery from this system allows for direct comparison of membrane voltage change to both computationally simulated external electric fields and time-dependent membrane charging models. Acquisition of a full microscope field of view enables the selection of data from multiple cell locations experiencing different electrical fields in a single image sequence for analysis. Using this system, more realistic membrane parameters can be estimated from living cells to better inform predictive models. As a proof of concept, we present evidence that within the range of membrane conductivity used in simulation literature, higher values are likely more valid. Published by Elsevier B.V.

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