Simultaneous recording of multiple cellular signaling events by frequency- and spectrally-tuned multiplexing of fluorescent probes
- PMID: 34859780
- PMCID: PMC8700268
- DOI: 10.7554/eLife.63129
Simultaneous recording of multiple cellular signaling events by frequency- and spectrally-tuned multiplexing of fluorescent probes
Abstract
Fluorescent probes that change their spectral properties upon binding to small biomolecules, ions, or changes in the membrane potential (Vm) are invaluable tools to study cellular signaling pathways. Here, we introduce a novel technique for simultaneous recording of multiple probes at millisecond time resolution: frequency- and spectrally-tuned multiplexing (FASTM). Different from present multiplexing approaches, FASTM uses phase-sensitive signal detection, which renders various combinations of common probes for Vm and ions accessible for multiplexing. Using kinetic stopped-flow fluorimetry, we show that FASTM allows simultaneous recording of rapid changes in Ca2+, pH, Na+, and Vm with high sensitivity and minimal crosstalk. FASTM is also suited for multiplexing using single-cell microscopy and genetically encoded FRET biosensors. Moreover, FASTM is compatible with optochemical tools to study signaling using light. Finally, we show that the exceptional time resolution of FASTM also allows resolving rapid chemical reactions. Altogether, FASTM opens new opportunities for interrogating cellular signaling.
Keywords: Arbacia punctulata; cell biology; fluorescence multiplexing; signal transduction; voltage-sensitive dye.
© 2021, Kierzek et al.
Conflict of interest statement
MK, PD, EM, SM, DW, AB, UK, TS, CB No competing interests declared
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References
-
- Ait Ouares K, Filipis L, Tzilivaki A, Poirazi P, Canepari M. Two Distinct Sets of Ca2+ and K+ Channels Are Activated at Different Membrane Potentials by the Climbing Fiber Synaptic Potential in Purkinje Neuron Dendrites. The Journal of Neuroscience. 2019;39:1969–1981. doi: 10.1523/JNEUROSCI.2155-18.2018. - DOI - PMC - PubMed
-
- Aslund N, Carlsson K. Confocal scanning microfluorometry of dual-labelled specimens using two excitation wavelengths and lock-in detection technique. Micron. 1993;24:603–609. doi: 10.1016/0968-4328(93)90038-3. - DOI
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