4.4 Article

A novel red fluorescence dopamine biosensor selectively detects dopamine in the presence of norepinephrine in vitro

Journal

MOLECULAR BRAIN
Volume 14, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s13041-021-00882-8

Keywords

GPCR; Dopamine; Norepinephrine; Fluorescence probe; Hippocampal neuron

Categories

Funding

  1. Japan Society for the Promotion of Science (JSPS) KAKENHI [19K16050, 19H03331, 18H04873]
  2. Lundbeck Foundation [R163-2013-16327, DANDRITER248-2016-2518]
  3. Independent Research Fund Denmark | Natural Sciences [8021-00173B]
  4. Novo Nordisk Foundation [NNF18OC0031226]
  5. Core Research for Evolutional Science and Technology | Japan Society for the Promotion of Science [JPMJCR1654]
  6. JSPS KAKENHI [16KT0069, 16H01425, 18H04754, 18H02444, 19H05798]
  7. ONO Medical Research Foundation
  8. Novo Nordisk Foundation Young Investigator Award 2017 [NNF17OC0026774]
  9. Aarhus Institute of Advanced Studies (AIAS)-EU FP7 Cofund programme [754513]
  10. PROMEMO-Center for Proteins in Memory, a Center of Excellence - Danish National Research Foundation [DNRF133]
  11. Cooperative Study Program of National Institute for Physiological Sciences [20-105]
  12. Grants-in-Aid for Scientific Research [16H01425, 16KT0069, 18H02444, 18H04873, 18H04754, 19K16050, 19H05798, 19H03331] Funding Source: KAKEN

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This study introduces a red fluorescent genetically encoded GPCR-activation reporter for dopamine, which offers high selectivity and provides new opportunities for multiplex imaging of neurotransmitters in the brain.
Dopamine (DA) and norepinephrine (NE) are pivotal neuromodulators that regulate a broad range of brain functions, often in concert. Despite their physiological importance, untangling the relationship between DA and NE in the fine control of output function is currently challenging, primarily due to a lack of techniques to allow the observation of spatiotemporal dynamics with sufficiently high selectivity. Although genetically encoded fluorescent biosensors have been developed to detect DA, their poor selectivity prevents distinguishing DA from NE. Here, we report the development of a red fluorescent genetically encoded GPCR (G protein-coupled receptor)-activation reporter for DA termed 'R-GenGAR-DA'. More specifically, a circular permutated red fluorescent protein (cpmApple) was replaced by the third intracellular loop of human DA receptor D1 (DRD1) followed by the screening of mutants within the linkers between DRD1 and cpmApple. We developed two variants: R-GenGAR-DA1.1, which brightened following DA stimulation, and R-GenGAR-DA1.2, which dimmed. R-GenGAR-DA1.2 demonstrated a reasonable dynamic range (Delta F/F-0 = - 43%), DA affinity (EC50 = 0.92 mu M) and high selectivity for DA over NE (66-fold) in HeLa cells. Taking advantage of the high selectivity of R-GenGAR-DA1.2, we monitored DA in presence of NE using dual-color fluorescence live imaging, combined with the green-NE biosensor GRAB(NE1m), which has high selectivity for NE over DA (> 350-fold) in HeLa cells and hippocampal neurons grown from primary culture. Thus, this is a first step toward the multiplex imaging of these neurotransmitters in, for example, freely moving animals, which will provide new opportunities to advance our understanding of the high spatiotemporal dynamics of DA and NE in normal and abnormal brain function.

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