2023bioRxiv (Cold Spring Harbor Laboratory)Open access

Fluorogenesis: Inducing Fluorescence in a Non-Fluorescent Protein Through Photoinduced Chromophore Transfer of a Genetically Encoded Chromophore

Yashwant Kumar, Reman Kumar Singh, Manisha Ojha, Karthik Pushpavanam

Open full text 0 citations

Abstract

ABSTRACT Fluorescent proteins, while essential for bioimaging, are limited to visualizing cellular localization without offering additional functionality. We report for the first time a strategy to expand the chemical, structural, and functional diversity of fluorescent proteins by harnessing light to induce red fluorescence in a previously non-fluorescent protein. We accomplish this by inducing the transfer of the genetically encoded chromophore from a photocleavable protein (PhoCl1) to a non-fluorescent kinase ( Mj RibK) inducing red fluorescence in the latter. We have employed analytical and spectroscopic techniques to validate the presence of red fluorescence in Mj RibK. Furthermore, molecular dynamics simulations were carried out to investigate the amino acid residues of Mj RibK involved in the generation of red fluorescence. Finally, we demonstrate the ability of the red fluorescent Mj RibK to operate as a cyclable high-temperature sensor. We anticipate that this light-induced chromophore transfer strategy will open new possibilities for developing multifunctional genetically encoded fluorescent sensors.

Open-access reader

About this research paper

What this paper is about

ABSTRACT Fluorescent proteins, while essential for bioimaging, are limited to visualizing cellular localization without offering additional functionality. We report for the first time a strategy to expand the chemical, structural, and functional diversity of fluorescent proteins by harnessing light to induce red fluorescence in a previously non-fluorescent protein. We accomplish this by inducing the transfer of the genetically encoded chromophore from a photocleavable protein (PhoCl1) to a non-fluorescent kinase ( Mj RibK) inducing red fluorescence in the latter. We have employed analytical and spectroscopic techniques to validate the presence of red fluorescence in Mj RibK. Furthermore, molecular dynamics simulations were carried out to investigate the amino acid residues of Mj RibK involved in the generation of red fluorescence. Finally, we demonstrate the ability of the red fluorescent Mj RibK to operate as a cyclable high-temperature sensor. We anticipate that this light-induced chromophore transfer strategy will open new possibilities for developing multifunctional genetically encoded fluorescent sensors.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

ABSTRACT Fluorescent proteins, while essential for bioimaging, are limited to visualizing cellular localization without offering additional functionality. We report for the first time a strategy to expand the chemical, structural, and functional diversity of fluorescent proteins by harnessing light to induce red fluorescence in a previously non-fluorescent protein. We accomplish this by inducing the transfer of the genetically encoded chromophore from a photocleavable protein (PhoCl1) to a non-fluorescent kinase ( Mj RibK) inducing red fluorescence in the latter. We have employed analytical and spectroscopic techniques to validate the presence of red fluorescence in Mj RibK. Furthermore, molecular dynamics simulations were carried out to investigate the amino acid residues of Mj RibK involved in the generation of red fluorescence. Finally, we demonstrate the ability of the red fluorescent Mj RibK to operate as a cyclable high-temperature sensor. We anticipate that this light-induced chromophore transfer strategy will open new possibilities for developing multifunctional genetically encoded fluorescent sensors.

Key concepts: Fluorescence, Chromophore, Green fluorescent protein, Fluorescent protein, Biophysics, Chemistry, Bimolecular fluorescence complementation, Protein tag

Related papers

Back to paper searchBrowse research topicsOriginal source
Fluorogenesis: Inducing Fluorescence in a Non-Fluorescent Protein Through Photoinduced Chromophore Transfer of a Genetically Encoded Chromophore — Research Paper | ScholarLens