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Platts, J.

Publications and source records attributed to Platts, J..

2 recordsLinked to original sources

Genetic encoding of 3-cyano-tyrosine and its use in controlling the chromophore isomeric state of the fluorescent protein mKate

Switchable {beta}-barrel-type fluorescent proteins are essential genetically encoded probes for super-resolution imaging. The space required for chromophore cis-trans isomerisation can also provide an opportunity to introduce bulkier chemistry at the 3-position of the phenolic ring. Here, we report, to our knowledge, the first successful genetic encoding of 3-cyano-L-tyrosine (3CNY) into a protein. Using genetic code expansion, the cyano-containing amino acid was incorporated directly into the chromophore of mKate, a pH-dependent switchable red fluorescent protein. In mKate, the chromophore adopts a fluorescent phenolate cis state at physiological pH, transitioning to a phenolic trans state under acidic conditions. Substitution of the native tyrosine with 3CNY yields a functional protein exhibiting hypsochromically shifted spectral properties. Time-dependent density functional theory (TD-DFT) calculations indicate that 3CNY incorporation results in a trans state at pH 8. Unlike mKate, the trans state is fluorescent. In contrast, incorporation of 3-chloro-L-tyrosine (3ClY) preserves the preference for the cis phenolate state. Molecular modelling suggests that the cyano group can form stabilising hydrogen bonds with residues S143 and S158, promoting the trans configuration. DFT analysis further indicates that the electron-withdrawing cyano group perturbs conjugation across the chromophore, potentially lowering the barrier to cis-trans isomerisation. Conversely, wild-type and 3ClY variants maintain polarised HOMO and LUMO distributions in the cis state, supporting stronger conjugation and a reduced HOMO-LUMO gap. Overall, the introduction of a genetically encoded 3-CNY tyrosine analogue into a fluorescent protein chromophore expands our mechanistic understanding and enables incorporation of a new chemical tag directly into the chromophore.

biochemistry↗

Structure, function and dynamics of mCoral, a pH responsive engineered variant of the mCherry fluorescent protein with improved hydrogen peroxide tolerance.

The red fluorescent protein mCherry is one of the most utilised fluorescent proteins in biology. Here, we have changed the chromophore chemistry by converting the thioether group of M66 to a thiol group through mutation to cysteine. The new variant termed mCoral due to its orange fluorescence hue has similar brightness to mCherry but has improved resistance to hydrogen peroxide. The variant is also responsive to pH with a low and high pKa forms that have distinct spectral properties, which DFT analysis suggests is due to protonation state changes in the newly introduced thiol group as well as the phenol group. The structure of mCoral reveals that the M66C mutation creates a space within the {beta}-barrel structure that is filled by a water molecule, which makes new polar interactions including with backbone carbonyl group of F65. Molecular dynamic simulations suggests that this additional water molecule, together with local solvation around the chromophore, could play a role in promoting planarity of the full conjugated system comprising the chromophore; the mCoral chromophore makes slightly more H-bonds with water than mCherry. The main water exit point for mCherry is also narrower in mCoral potentially explaining the increased resistance to hydrogen peroxide. Overall, a small structural change to mCherry has resulted in a new fluorescent protein with potentially useful characteristics and an insight into the role of dynamics and water in defining structure-function relationship in red fluorescent proteins.

biochemistry↗