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bioRxiv · 10.1101/2021.05.19.444883

Near-infrared imaging in fission yeast by genetically encoded biosynthesis of phycocyanobilin

Abstract

Near-infrared fluorescent protein (iRFP) is a bright and stable fluorescent protein with excitation and emission maxima at 690 nm and 713 nm, respectively. Unlike the other conventional fluorescent proteins such as GFP, iRFP requires biliverdin (BV) as a chromophore because iRFP originates from bacteriophytochrome. Here, we report that phycocyanobilin (PCB) functions as a brighter chromophore for iRFP than BV, and biosynthesis of PCB allows live-cell imaging with iRFP in the fission yeast Schizosaccharomyces pombe. We initially found that fission yeast cells did not produce BV, and therefore did not show any iRFP fluorescence. The brightness of iRFP attached to PCB was higher than that of iRFP attached to BV in vitro and in fission yeast. We introduced SynPCB, a previously reported PCB biosynthesis system, into fission yeast, resulting in the brightest iRFP fluorescence. To make iRFP readily available in fission yeast, we developed an endogenous gene tagging system with iRFP and all-in-one integration plasmids, which contain genes required for the SynPCB system and the iRFP-fused marker proteins. These tools not only enable the easy use of iRFP in fission yeast and the multiplexed live-cell imaging in fission yeast with a broader color palette, but also open the door to new opportunities for near-infrared fluorescence imaging in a wider range of living organisms.

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BibTeXRIS

Sakai, K., Kondo, Y., Fujioka, H., Kamiya, M., Aoki, K., Goto, Y.. 2021-05-20. Near-infrared imaging in fission yeast by genetically encoded biosynthesis of phycocyanobilin. https://doi.org/10.1101/2021.05.19.444883

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