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Biology subjects

Ugarte-Uribe, B.

Publications and source records attributed to Ugarte-Uribe, B..

2 recordsLinked to original sources

A photoswitchable HaloTag for spatiotemporal control of fluorescence in living cells

Photosensitive fluorophores, which emission can be controlled using light, are essential for advanced biological imaging, enabling precise spatiotemporal tracking of molecular features, and facilitating super-resolution microscopy techniques. While irreversibly photoactivatable fluorophores are well established, reversible reporters which can be re-activated multiple times remain scarce, and only few have been applied in living cells using generalizable protein labelling methods. To address these limitations, we introduce chemigenetic photoswitchable fluorophores, leveraging the self-labelling HaloTag protein with fluorogenic rhodamine dye ligands. By incorporating a light-responsive protein domain into HaloTag, we engineer a tunable, photoswitchable HaloTag (psHaloTag), which can reversibly modulate the fluorescence of a bound dye-ligand via a light-induced conformational change. Our best performing psHaloTag variants show high performance in vitro and in living cells, with large, reversible, far-red fluorescence turn-on upon 450 nm illumination across various biomolecular targets. Together, this work establishes the chemigenetic approach as a versatile platform for the design of photoswitchable reporters, tunable through both genetic and synthetic modifications, with promising applications for dynamic imaging.

biochemistry↗

Chemigenetic far-red labels and Ca2+ indicators optimized for photoacoustic imaging.

Photoacoustic imaging is an emerging modality with significant promise for biomedical applications such as neuroimaging, owing to its capability to capture large fields of view, deep inside complex scattering tissue. However, the widespread adoption of this technique has been hindered by a lack of suitable molecular reporters for this modality. In this work, we introduce chemigenetic labels and calcium sensors specifically tailored for photoacoustic imaging, using a combination of synthetic dyes and HaloTag-based self-labelling proteins. We rationally design and engineer far-red "acoustogenic" dyes, showing high photoacoustic turn-ons upon binding to HaloTag, and develop a suite of tunable calcium indicators based on these scaffolds. These first-generation photoacoustic reporters show excellent performance in tissue-mimicking phantoms, with the best variants outperforming existing sensors in terms of signal intensity, sensitivity and photostability. We demonstrate the application of these ligands for labelling HaloTag-expressing neurons in mouse brain tissue, producing strong, specifically targeted photoacoustic signal, and provide a first example of in vivo labelling with these chemigenetic photoacoustic probes. Together, this work establishes a new approach for the design of photoacoustic reporters, paving the way towards deep tissue functional imaging.

biochemistry↗