| Literature DB >> 33063984 |
Mikhail V Monakhov1,2, Mikhail E Matlashov2, Michelangelo Colavita3, Chenchen Song3, Daria M Shcherbakova2, Srdjan D Antic1, Vladislav V Verkhusha2, Thomas Knöpfel3.
Abstract
We developed genetically encoded voltage indicators using a transmembrane voltage-sensing domain and bright near-infrared fluorescent proteins derived from bacterial phytochromes. These new voltage indicators are excited by 640 nm light and emission is measured at 670 nm, allowing imaging in the near-infrared tissue transparency window. The spectral properties of our new indicators permit seamless voltage imaging with simultaneous blue-green light optogenetic actuator activation as well as simultaneous voltage-calcium imaging when paired with green calcium indicators. Iterative optimizations led to a fluorescent probe, here termed nirButterfly, which reliably reports neuronal activities including subthreshold membrane potential depolarization and hyperpolarization as well as spontaneous spiking or electrically- and optogenetically evoked action potentials. This enables largely improved all-optical causal interrogations of physiology.Entities:
Keywords: Butterfly; FRET; GEVI; all-optical electrophysiology; biosensor; iRFP
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Year: 2020 PMID: 33063984 DOI: 10.1021/acschemneuro.0c00046
Source DB: PubMed Journal: ACS Chem Neurosci ISSN: 1948-7193 Impact factor: 4.418