Two-photon imaging using high-speed multi-channel detectors is a promising approach for optical recording of cellular membrane dynamics at multiple sites. A main bottleneck of this technique is the limited number of photons captured within a short exposure time (~1ms). Here, we implement temporal gating to improve the two-photon fluorescence yield from holographically projected multiple foci whilst maintaining a biologically safe incident average power. We observed up to 6x improvement in the signal-to-noise ratio (SNR) in Fluorescein and cultured hippocampal neurons showing evoked calcium transients. With improved SNR, we could pave the way to achieving multi-site optical recording of fluorogenic probes with response times in the order of ...
Recording the activity of large populations of neurons is an important step toward understanding the...
To capture the emergent properties of neural circuits, high-speed volumetric imaging of neural activ...
Optical imaging of neuronal activity offers new possibilities for understanding brain physiology. Th...
We optimize two-photon imaging of living neurons in brain tissue by temporally gating an incident la...
We use complex light patterns to simultaneously record the neuronal activity along the dendrites of ...
Two-photon calcium imaging provides an optical readout of neuronal activity in populations of neuron...
In recent years, optical sensors for tracking neural activity have been developed and offer great ut...
We demonstrate fluorescence imaging by two-photon excitation without scanning in biological specimen...
Two-photon calcium imaging provides an optical readout of neuronal activity in populations of neuron...
<div><p>We demonstrate fluorescence imaging by two-photon excitation without scanning in biological ...
International audienceThis chapter presents three examples of imaging brain activity with voltage- o...
International audienceTo better examine circuit mechanisms underlying perception and behavior, resea...
AbstractIn recent years, optical sensors for tracking neural activity have been developed and offer ...
Recent years have seen substantial developments in technology for imaging neural circuits, raising t...
Two photon calcium imaging in vivo allows for the simultaneous imaging of activity in populations of...
Recording the activity of large populations of neurons is an important step toward understanding the...
To capture the emergent properties of neural circuits, high-speed volumetric imaging of neural activ...
Optical imaging of neuronal activity offers new possibilities for understanding brain physiology. Th...
We optimize two-photon imaging of living neurons in brain tissue by temporally gating an incident la...
We use complex light patterns to simultaneously record the neuronal activity along the dendrites of ...
Two-photon calcium imaging provides an optical readout of neuronal activity in populations of neuron...
In recent years, optical sensors for tracking neural activity have been developed and offer great ut...
We demonstrate fluorescence imaging by two-photon excitation without scanning in biological specimen...
Two-photon calcium imaging provides an optical readout of neuronal activity in populations of neuron...
<div><p>We demonstrate fluorescence imaging by two-photon excitation without scanning in biological ...
International audienceThis chapter presents three examples of imaging brain activity with voltage- o...
International audienceTo better examine circuit mechanisms underlying perception and behavior, resea...
AbstractIn recent years, optical sensors for tracking neural activity have been developed and offer ...
Recent years have seen substantial developments in technology for imaging neural circuits, raising t...
Two photon calcium imaging in vivo allows for the simultaneous imaging of activity in populations of...
Recording the activity of large populations of neurons is an important step toward understanding the...
To capture the emergent properties of neural circuits, high-speed volumetric imaging of neural activ...
Optical imaging of neuronal activity offers new possibilities for understanding brain physiology. Th...