Photoactivatable Xanthone (PaX) Dyes Enable Quantitative, Dual Color, and Live‐Cell MINFLUX Nanoscopy

2024 | journal article. A publication with affiliation to the University of Göttingen.

Jump to: Cite & Linked | Documents & Media | Details | Version history

Cite this publication

​Photoactivatable Xanthone (PaX) Dyes Enable Quantitative, Dual Color, and Live‐Cell MINFLUX Nanoscopy​
Remmel, M.; Matthias, J.; Lincoln, R.; Keller‐Findeisen, J.; Butkevich, A. N.; Bossi, M. L. & Hell, S. W.​ (2024) 
Small Methods, art. 2301497​.​ DOI: https://doi.org/10.1002/smtd.202301497 

Documents & Media

License

GRO License GRO License

Details

Authors
Remmel, Michael; Matthias, Jessica; Lincoln, Richard; Keller‐Findeisen, Jan; Butkevich, Alexey N.; Bossi, Mariano L.; Hell, Stefan W.
Abstract
Abstract The single‐molecule localization concept MINFLUX has triggered a reevaluation of the features of fluorophores for attaining nanometer‐scale resolution. MINFLUX nanoscopy benefits from temporally controlled fluorescence (“on”/“off”) photoswitching. Combined with an irreversible switching behavior, the localization process is expected to turn highly efficient and quantitative data analysis simple. The potential in the recently reported photoactivable xanthone (PaX) dyes is recognized to extend the list of molecular switches used for MINFLUX with 561 nm excitation beyond the fluorescent protein mMaple. The MINFLUX localization success rates of PaX 560 , PaX+ 560, and mMaple are quantitatively compared by analyzing the effective labeling efficiency of endogenously tagged nuclear pore complexes. The PaX dyes prove to be superior to mMaple and on par with the best reversible molecular switches routinely used in single‐molecule localization microscopy. Moreover, the rationally designed PaX 595 is introduced for complementing PaX 560 in dual color 561 nm MINFLUX imaging based on spectral classification and the deterministic, irreversible, and additive‐independent nature of PaX photoactivation is showcased in fast live‐cell MINFLUX imaging. The PaX dyes meet the demands of MINFLUX for a robust readout of each label position and fill the void of reliable fluorophores dedicated to 561 nm MINFLUX imaging.
Issue Date
2024
Journal
Small Methods 
ISSN
2366-9608
eISSN
2366-9608
Language
English
Sponsor
Max-Planck-Gesellschaft https://doi.org/10.13039/501100004189
Bundesministerium für Bildung, Wissenschaft, Forschung und Technologie https://doi.org/10.13039/501100010571

Reference

Citations


Social Media