Back

Multimodal Detection of Dopamine by Sniffer Cells Expressing Genetically Encoded Fluorescence Sensors

Herenbrink, C. K.; Stoier, J. F.; Reith, W. D.; Dagra, A.; Gregorek, M. A. C.; Li, Y.; Tian, L.; Gether, U.; Herborg, F.

2021-09-17 neuroscience
10.1101/2021.09.16.460471 bioRxiv
Show abstract

Dopamine serves an important role in supporting both locomotor control and higher brain functions such as motivation and learning. Dopaminergic dysfunction is implicated in an equally multidimensional spectrum of neurological and neuropsychiatric diseases. Extracellular dopamine levels are known to be tightly controlled by presynaptic dopamine transporters (DAT), which is also a main target of psychostimulants. Still, detailed data on dopamine dynamics in space and time is needed to fully understand how dopamine signals are encoded and translated into cellular and behavioral responses, and to uncover the pathological effects of dopamine-related diseases. The recently developed genetically encoded fluorescent dopamine sensors enable unprecedented monitoring of dopamine dynamics and have changed the field of in vivo dopamine recording. However, the potential of these sensors to be used for in vitro and ex vivo assays remains unexplored. Here, we demonstrate a generalizable blueprint for making "sniffer" dopamine cells for multimodal detection of dopamine in vitro and ex vivo. We generated sniffer cell lines with inducible expression of six different dopamine sensors and performed a head-to-head comparison of sensor properties to guide users in sensor selection. In proof-of-principle experiments, we show how the sniffer cells can be applied to measure release of endogenous dopamine from cultured neurons and striatal slices, and for determining total dopamine content in striatal tissue. Furthermore, we use the sniffer cells to quantify DAT-mediated dopamine uptake, and AMPH-induced and constitutive dopamine efflux as a radiotracer free, high-throughput alternative to electrochemical- and radiotracer-based assays. Importantly, the sniffer cells framework can readily be applied to other transmitter systems for which the list of genetically encoded fluorescent sensors is rapidly growing.

Matching journals

The top 3 journals account for 50% of the predicted probability mass.

1
ACS Chemical Neuroscience
67 papers in training set
Top 0.1%
34.8%
2
Scientific Reports
3612 papers in training set
Top 5%
9.0%
3
Nature Communications
5641 papers in training set
Top 25%
6.3%
50% of probability mass above
4
Communications Biology
993 papers in training set
Top 2%
4.9%
5
eLife
5828 papers in training set
Top 24%
4.9%
6
Science Advances
1243 papers in training set
Top 6%
4.4%
7
npj Parkinson's Disease
105 papers in training set
Top 0.5%
4.1%
8
Translational Psychiatry
260 papers in training set
Top 2%
1.9%
9
Proceedings of the National Academy of Sciences
2444 papers in training set
Top 26%
1.9%
10
eneuro
439 papers in training set
Top 4%
1.8%
11
Neuropsychopharmacology
153 papers in training set
Top 1%
1.8%
12
Journal of Neurochemistry
53 papers in training set
Top 0.8%
1.4%
13
Analytical Chemistry
218 papers in training set
Top 2%
1.4%
14
Cell Reports
1498 papers in training set
Top 23%
1.1%
15
Cell Reports Methods
165 papers in training set
Top 3%
1.1%
16
SLAS Discovery
25 papers in training set
Top 0.2%
1.1%
17
iScience
1154 papers in training set
Top 30%
1.0%
18
International Journal of Molecular Sciences
494 papers in training set
Top 15%
0.9%
19
Lab on a Chip
96 papers in training set
Top 1.0%
0.9%
20
Molecular Psychiatry
282 papers in training set
Top 5%
0.9%
21
The Journal of Neuroscience
1025 papers in training set
Top 10%
0.6%
22
European Journal of Neuroscience
189 papers in training set
Top 4%
0.6%
23
Neurobiology of Disease
148 papers in training set
Top 4%
0.6%