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Updated: Feb 7, 2026

In Vivo Two-photon Imaging Of Experience-dependent Molecular Changes In Cortical Neurons
Published on: January 5, 2013
Adapting a two-photon scanning microscope for simultaneous single-photon imaging of an infrared dopamine sensor
Matthew Tarchick1, Franklin Caval-Holme1, Ben Smith2
1Department of Neuroscience and Helen Wills Neuroscience Institute, University of California Berkeley, Berkeley, California 94720.
None:
We describe a novel method for adapting a two-photon scanning microscope to enable simultaneous detection of two-photon generated visible fluorescence and single-photon generated near-infrared (nIR) fluorescence. In this configuration, nIR fluorescence is routed through a single-mode optical fiber before detection by a photomultiplier tube. This fiber coupling offers two advantages: first, the optical fiber functions as a pinhole aperture, allowing for improved optical sectioning of the nIR signal; second, it minimizes nIR background fluorescence. To validate the effectiveness of this design, we conducted two sets of experiments. First, we compare two fluorescence indicators of the neurotransmitter dopamine: the genetically encoded indicator GRABDA and single walled carbon nanotube based optical nanosensors (nIRCats). Although nIRCats exhibit lower affinity for dopamine than GRABDA, this property allows for identification of high concentration release sites in the striatum. Second, we simultaneously imaged depolarization-induced calcium changes and dopamine release in the retina. Together, these results demonstrate the utility of integrating confocal nIR detection into a two-photon platform for simultaneous functional imaging across complementary spectral channels.
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