Förster resonance energy transfer (FRET) biosensors represent invaluable tools to detect the spatiotemporal context of second messenger production and intracellular signaling that cannot be attained using traditional methods. Here, we describe a detailed protocol for the use of high content imaging in combination with FRET biosensors to assess second messenger production and intracellular signaling in a time-effective manner. We use four different FRET biosensors to measure cAMP levels, kinase (ERK and PKC), and GTPase activity. Importantly, we provide the protocols to express and measure these sensors in a variety of model cell lines and primary dorsal root ganglia neurons
International audienceCyclic adenosine monophosphate (cAMP) and the cyclic-AMP-dependent protein kin...
The aim of the research presented in this thesis was to gain a better understanding of how intracell...
Second messenger molecules in eukaryotic cells relay the signals from activated cell surface recepto...
In this chapter, we introduce the combined use of FRET-based biosensors and synaptic markers as an e...
Cyclic AMP governs many fundamental signaling events in eukaryotic cells. Although cAMP signaling ha...
Cyclic AMP governs many fundamental signaling events in eukaryotic cells. Although cAMP signaling ha...
Resolving the spatiotemporal dynamics of intracellular signaling is important for understanding the ...
Genetically encoded Förster resonance energy transfer (FRET) biosensors have been instrumental to ou...
Multiplexed imaging of Förster Resonance Energy Transfer (FRET)-based biosensors potentially present...
Genetically encoded, ratiometric biosensors based on fluorescence resonance energy transfer (FRET) a...
Genetically encoded, ratiometric biosensors based on fluorescence resonance energy transfer (FRET) a...
International audienceGenetically encoded optical biosensors become a tool of choice for quantitativ...
The study of cAMP signaling has received a renewed impulse since the recognition that a key aspect o...
In recent years, the development of new technologies based on the green fluorescent protein and FRET...
Activity-dependent synaptic plasticity is the basis of circuit plasticity and, ultimately, behaviora...
International audienceCyclic adenosine monophosphate (cAMP) and the cyclic-AMP-dependent protein kin...
The aim of the research presented in this thesis was to gain a better understanding of how intracell...
Second messenger molecules in eukaryotic cells relay the signals from activated cell surface recepto...
In this chapter, we introduce the combined use of FRET-based biosensors and synaptic markers as an e...
Cyclic AMP governs many fundamental signaling events in eukaryotic cells. Although cAMP signaling ha...
Cyclic AMP governs many fundamental signaling events in eukaryotic cells. Although cAMP signaling ha...
Resolving the spatiotemporal dynamics of intracellular signaling is important for understanding the ...
Genetically encoded Förster resonance energy transfer (FRET) biosensors have been instrumental to ou...
Multiplexed imaging of Förster Resonance Energy Transfer (FRET)-based biosensors potentially present...
Genetically encoded, ratiometric biosensors based on fluorescence resonance energy transfer (FRET) a...
Genetically encoded, ratiometric biosensors based on fluorescence resonance energy transfer (FRET) a...
International audienceGenetically encoded optical biosensors become a tool of choice for quantitativ...
The study of cAMP signaling has received a renewed impulse since the recognition that a key aspect o...
In recent years, the development of new technologies based on the green fluorescent protein and FRET...
Activity-dependent synaptic plasticity is the basis of circuit plasticity and, ultimately, behaviora...
International audienceCyclic adenosine monophosphate (cAMP) and the cyclic-AMP-dependent protein kin...
The aim of the research presented in this thesis was to gain a better understanding of how intracell...
Second messenger molecules in eukaryotic cells relay the signals from activated cell surface recepto...