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A neuron-based screening platform for optimizing genetically-encoded calcium indicators.

Authors :
Wardill TJ
Chen TW
Schreiter ER
Hasseman JP
Tsegaye G
Fosque BF
Behnam R
Shields BC
Ramirez M
Kimmel BE
Kerr RA
Jayaraman V
Looger LL
Svoboda K
Kim DS
Source :
PloS one [PLoS One] 2013 Oct 14; Vol. 8 (10), pp. e77728. Date of Electronic Publication: 2013 Oct 14 (Print Publication: 2013).
Publication Year :
2013

Abstract

Fluorescent protein-based sensors for detecting neuronal activity have been developed largely based on non-neuronal screening systems. However, the dynamics of neuronal state variables (e.g., voltage, calcium, etc.) are typically very rapid compared to those of non-excitable cells. We developed an electrical stimulation and fluorescence imaging platform based on dissociated rat primary neuronal cultures. We describe its use in testing genetically-encoded calcium indicators (GECIs). Efficient neuronal GECI expression was achieved using lentiviruses containing a neuronal-selective gene promoter. Action potentials (APs) and thus neuronal calcium levels were quantitatively controlled by electrical field stimulation, and fluorescence images were recorded. Images were segmented to extract fluorescence signals corresponding to individual GECI-expressing neurons, which improved sensitivity over full-field measurements. We demonstrate the superiority of screening GECIs in neurons compared with solution measurements. Neuronal screening was useful for efficient identification of variants with both improved response kinetics and high signal amplitudes. This platform can be used to screen many types of sensors with cellular resolution under realistic conditions where neuronal state variables are in relevant ranges with respect to timing and amplitude.

Details

Language :
English
ISSN :
1932-6203
Volume :
8
Issue :
10
Database :
MEDLINE
Journal :
PloS one
Publication Type :
Academic Journal
Accession number :
24155972
Full Text :
https://doi.org/10.1371/journal.pone.0077728