Dual-polarity voltage imaging of the concurrent dynamics of multiple neuron types.
Madhuvanthi KannanGanesh VasanSimon HazizaCheng HuangRadoslaw ChrapkiewiczJunjie LuoJessica A CardinMark J SchnitzerVincent A PieribonePublished in: Science (New York, N.Y.) (2022)
Genetically encoded fluorescent voltage indicators are ideally suited to reveal the millisecond-scale interactions among and between targeted cell populations. However, current indicators lack the requisite sensitivity for in vivo multipopulation imaging. We describe next-generation green and red voltage sensors, Ace-mNeon2 and VARNAM2, and their reverse response-polarity variants pAce and pAceR. Our indicators enable 0.4- to 1-kilohertz voltage recordings from >50 spiking neurons per field of view in awake mice and ~30-minute continuous imaging in flies. Using dual-polarity multiplexed imaging, we uncovered brain state-dependent antagonism between neocortical somatostatin-expressing (SST<sup>+</sup>) and vasoactive intestinal peptide-expressing (VIP<sup>+</sup>) interneurons and contributions to hippocampal field potentials from cell ensembles with distinct axonal projections. By combining three mutually compatible indicators, we performed simultaneous triple-population imaging. These approaches will empower investigations of the dynamic interplay between neuronal subclasses at single-spike resolution.
Keyphrases
- high resolution
- single cell
- spinal cord injury
- squamous cell carcinoma
- stem cells
- spinal cord
- type diabetes
- mass spectrometry
- cell therapy
- skeletal muscle
- multiple sclerosis
- metabolic syndrome
- dna methylation
- blood brain barrier
- mesenchymal stem cells
- optical coherence tomography
- adipose tissue
- copy number
- peripheral nerve
- wild type