Influence of Fluorescence Lifetime Selections and Conformational Flexibility on Brightness of FusionRed Variants.
Srijit MukherjeeNancy DouglasRalph JimenezPublished in: The journal of physical chemistry letters (2024)
Fluorescent proteins (FPs) for bioimaging are typically developed by screening mutant libraries for clones with improved photophysical properties. This approach has resulted in FPs with high brightness, but the mechanistic origins of the improvements are often unclear. We focused on improving the molecular brightness in the FusionRed family of FPs with fluorescence lifetime selections on targeted libraries, with the aim of reducing nonradiative decay rates. Our new variants show fluorescence quantum yields of up to 75% and lifetimes >3.5 ns. We present a comprehensive analysis of these new FPs, including trends in spectral shifts, photophysical data, photostability, and cellular brightness resulting from codon optimization. We also performed all-atom molecular dynamics simulations to investigate the impact of side chain mutations. The trajectories reveal that individual mutations reduce the flexibility of the chromophore and side chains, leading to an overall reduction in nonradiative rates.
Keyphrases
- molecular dynamics simulations
- single molecule
- energy transfer
- living cells
- molecular dynamics
- quantum dots
- molecular docking
- copy number
- depressive symptoms
- optical coherence tomography
- genome wide
- dengue virus
- electronic health record
- big data
- fluorescent probe
- single cell
- machine learning
- gene expression
- computed tomography
- artificial intelligence
- deep learning
- monte carlo