Halo Tag: Difference between revisions
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== Introduction == | == Introduction == | ||
<StructureSection load='1stp' size='340' side='right' caption='Caption for this structure' scene=''> | <StructureSection load='1stp' size='340' side='right' caption='Caption for this structure' scene=''> | ||
The Photoswitchable Halo Tag (psHaloTag) is a unique chemigenetic system designed to provide reversible, light-controlled fluorescence tunable through both genetic and synthetic modifications, with promising applications for dynamic imaging in biological microscopy <ref>https://doi.org/10.1002/anie.202424955</ref>. psHaloTag addresses a major gap in the availability of reliable, reversible systems suitable for live-cell imaging. Many current systems are limited in tracking long-term, cyclical processes or in refreshing the pool of observable molecules. psHaloTag combines the genetically encoded HaloTag protein with the light-sensing sAsLOV2 domain. When illuminated with 450 nm light, psHaloTag undergoes a reversible change that activates a bound rhodamine dye ligand, resulting in a significant increase in fluorescence. This strong, multiple-cycle reporter overcomes the limitations of irreversible systems. It is an important tool for achieving precise spatiotemporal control in demanding applications such as live-cell Super-Resolution Microscopy (SMLM), where many established photosensitive probes cannot be reactivated. | The Photoswitchable Halo Tag (psHaloTag) is a unique chemigenetic system designed to provide reversible, light-controlled fluorescence tunable through both genetic and synthetic modifications, with promising applications for dynamic imaging in biological microscopy <ref>https://doi.org/10.1002/anie.202424955</ref>. psHaloTag addresses a major gap in the availability of reliable, reversible systems suitable for live-cell imaging. Many current systems are limited in tracking long-term, cyclical processes or in refreshing the pool of observable molecules. psHaloTag combines the genetically encoded HaloTag protein with the light-sensing sAsLOV2 domain. When illuminated with 450 nm light, psHaloTag undergoes a reversible change that activates a bound rhodamine dye ligand, resulting in a significant increase in fluorescence. This strong, multiple-cycle reporter overcomes the limitations of irreversible systems. It is an important tool for achieving precise spatiotemporal control in demanding applications such as live-cell Super-Resolution Microscopy (SMLM), where many established photosensitive probes cannot be reactivated. | ||
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==== Features ==== | ==== Features ==== | ||
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# Photoswitching | Reversible ON/OFF fluorescence control using 450 nm light. | # Photoswitching | Reversible ON/OFF fluorescence control using 450 nm light. | ||
# Chemigenetic | Genetically encoded protein plus high-performance synthetic dye. | # Chemigenetic | Genetically encoded protein plus high-performance synthetic dye. | ||
# Live-Cell Ready | Robust, visible-light activation across various targets. | # Live-Cell Ready | Robust, visible-light activation across various targets. | ||
==== Mechanism ==== | ==== Mechanism ==== | ||
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The psHaloTag works as an allosteric photoswitch. | The psHaloTag works as an allosteric photoswitch. | ||
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:Light OFF (Dark): The protein structure relaxes back to its original shape, shifting the dye back to its non-fluorescent state. | :Light OFF (Dark): The protein structure relaxes back to its original shape, shifting the dye back to its non-fluorescent state. | ||
[[Image:Principle of HaloTag.jpg | [[Image:Principle of HaloTag.jpg | thumb ] | ||
The psHaloTag variants show a strong, reversible, deep-red fluorescence turn-on when activated by light. This provides a well-controlled tool for improved imaging. | The psHaloTag variants show a strong, reversible, deep-red fluorescence turn-on when activated by light. This provides a well-controlled tool for improved imaging. | ||
==== Structural highlights ==== | ==== Structural highlights ==== | ||
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The protein is made by inserting the light-sensing sAsLOV2 domain into the HaloTag protein. An extended helix connects the domains. This connection makes sure the light-induced structural change from the LOV domain is effectively transmitted to the HaloTag region, where the rhodamine dye is bound. Performance-boosting mutations are found near the headgroup of the rhodamine dye. These mutations likely stabilize the interaction to enhance the fluorescence ON/OFF ratio. | The protein is made by inserting the light-sensing sAsLOV2 domain into the HaloTag protein. An extended helix connects the domains. This connection makes sure the light-induced structural change from the LOV domain is effectively transmitted to the HaloTag region, where the rhodamine dye is bound. Performance-boosting mutations are found near the headgroup of the rhodamine dye. These mutations likely stabilize the interaction to enhance the fluorescence ON/OFF ratio. | ||
==== Relevance ==== | ==== Relevance ==== | ||
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Although irreversibly photoactivatable fluorophores are well established, reversible reporters that can be reactivated multiple times remain scarce, and only a few have been applied in living cells using generalizable protein labelling methods. | Although irreversibly photoactivatable fluorophores are well established, reversible reporters that can be reactivated multiple times remain scarce, and only a few have been applied in living cells using generalizable protein labelling methods. | ||
This system improves techniques like SMLM by allowing precise control of single-molecule emitter density over time by achieving sub-diffraction resolution in living cells. | This system improves techniques like SMLM by allowing precise control of single-molecule emitter density over time by achieving sub-diffraction resolution in living cells. | ||
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</StructureSection> | </StructureSection> | ||
== References == | == References == | ||
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<references/> | <references/> | ||
Revision as of 05:05, 30 November 2025
Introduction
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