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Orcutt, R.

Publications and source records attributed to Orcutt, R..

2 recordsLinked to original sources

CaBLAM! A high-contrast bioluminescent Ca2+ indicator derived from an engineered Oplophorus gracilirostris luciferase

Measuring ongoing cellular activity is essential to understanding the dynamic functions of biological organisms. The most popular current approach is imaging fluorescence-based genetically encoded Ca2+ indicators (GECIs). While fluorescent probes are useful in many contexts, bioluminescence-based GECIs--probes that generate light through oxidation of a small-molecule by a luciferase or photoprotein--have several distinct advantages. Because bioluminescent (BL) GECIs do not use the bright extrinsic excitation light required for fluorescence, BL GECIs do not photobleach, do not suffer from nonspecific autofluorescent background, and do not cause phototoxicity. Further, BL GECIs can be applied in contexts where directly shining photons on an imaging target is not possible. Despite these advantages, the use of BL GECIs has to date been limited by their small changes in bioluminescence intensity, high baseline signal at resting Ca2+ concentrations, and suboptimal Ca2+ affinities. Here, we describe a new BL GECI, CaBLAM (Ca2+ BioLuminescence Activity Monitor), that displays much higher dynamic range than previous BL GECIs and has a Ca2+ affinity suitable for capturing physiological changes in cytosolic Ca2+ concentration. With these improvements, CaBLAM captures single-cell and subcellular resolution activity at high frame rates in cultured neurons and in vivo, and allows multi-hour recordings in mice and behaving zebrafish. This new advance provides a robust alternative to traditional fluorescent GECIs that can enable or enhance imaging across many experimental conditions.

neuroscience↗

Bioluminescent Genetically Encoded Glutamate Indicator for Molecular Imaging of Neuronal Activity

Genetically encoded optical sensors and advancements in microscopy instrumentation and techniques have revolutionized the scientific toolbox available for probing complex biological processes such as release of specific neurotransmitters. Most genetically encoded optical sensors currently used are based on fluorescence and have been highly successful tools for single-cell imaging in superficial brain regions. However, there remains a need to develop new tools for reporting neuronal activity in vivo within deeper structures without the need for hardware such as lenses or fibers to be implanted within the brain. Our approach to this problem is to replace the fluorescent elements of the existing biosensors with bioluminescent elements. This eliminates the need of external light sources to illuminate the sensor and overcomes several drawbacks of fluorescence imaging such as limited light penetration depth, excitation scattering, and tissue heating that are all associated with the external light needed for fluorescence imaging. Here we report the development of the first genetically encoded neurotransmitter indicators based on bioluminescent light emission. These probes exhibit robust changes in light output in response to extracellular presentation of the excitatory neurotransmitter glutamate. We expect this new approach to neurotransmitter indicator design to enable the engineering of specific bioluminescent probes for multiple additional neurotransmitters in the future, ultimately allowing neuroscientists to monitor activity associated with a specific neurotransmitter as it relates to behavior in a variety of neuronal and psychiatric disorders, among many other applications.

neuroscience↗