Cargando…

Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing

Red fluorescent proteins (RFPs) have found widespread application in chemical and biological research due to their longer emission wavelengths. Here, we use computational protein design to increase the quantum yield and thereby brightness of a dim monomeric RFP (mRojoA, quantum yield = 0.02) by opti...

Descripción completa

Detalles Bibliográficos
Autores principales: Legault, Sandrine, Fraser-Halberg, Derek P., McAnelly, Ralph L., Eason, Matthew G., Thompson, Michael C., Chica, Roberto A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8809391/
https://www.ncbi.nlm.nih.gov/pubmed/35222925
http://dx.doi.org/10.1039/d1sc05088e
_version_ 1784644002553790464
author Legault, Sandrine
Fraser-Halberg, Derek P.
McAnelly, Ralph L.
Eason, Matthew G.
Thompson, Michael C.
Chica, Roberto A.
author_facet Legault, Sandrine
Fraser-Halberg, Derek P.
McAnelly, Ralph L.
Eason, Matthew G.
Thompson, Michael C.
Chica, Roberto A.
author_sort Legault, Sandrine
collection PubMed
description Red fluorescent proteins (RFPs) have found widespread application in chemical and biological research due to their longer emission wavelengths. Here, we use computational protein design to increase the quantum yield and thereby brightness of a dim monomeric RFP (mRojoA, quantum yield = 0.02) by optimizing chromophore packing with aliphatic residues, which we hypothesized would reduce torsional motions causing non-radiative decay. Experimental characterization of the top 10 designed sequences yielded mSandy1 (λ(em) = 609 nm, quantum yield = 0.26), a variant with equivalent brightness to mCherry, a widely used RFP. We next used directed evolution to further increase brightness, resulting in mSandy2 (λ(em) = 606 nm, quantum yield = 0.35), the brightest Discosoma sp. derived monomeric RFP with an emission maximum above 600 nm reported to date. Crystallographic analysis of mSandy2 showed that the chromophore p-hydroxybenzylidene moiety is sandwiched between the side chains of Leu63 and Ile197, a structural motif that has not previously been observed in RFPs, and confirms that aliphatic packing leads to chromophore rigidification. Our results demonstrate that computational protein design can be used to generate bright monomeric RFPs, which can serve as templates for the evolution of novel far-red fluorescent proteins.
format Online
Article
Text
id pubmed-8809391
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-88093912022-02-24 Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing Legault, Sandrine Fraser-Halberg, Derek P. McAnelly, Ralph L. Eason, Matthew G. Thompson, Michael C. Chica, Roberto A. Chem Sci Chemistry Red fluorescent proteins (RFPs) have found widespread application in chemical and biological research due to their longer emission wavelengths. Here, we use computational protein design to increase the quantum yield and thereby brightness of a dim monomeric RFP (mRojoA, quantum yield = 0.02) by optimizing chromophore packing with aliphatic residues, which we hypothesized would reduce torsional motions causing non-radiative decay. Experimental characterization of the top 10 designed sequences yielded mSandy1 (λ(em) = 609 nm, quantum yield = 0.26), a variant with equivalent brightness to mCherry, a widely used RFP. We next used directed evolution to further increase brightness, resulting in mSandy2 (λ(em) = 606 nm, quantum yield = 0.35), the brightest Discosoma sp. derived monomeric RFP with an emission maximum above 600 nm reported to date. Crystallographic analysis of mSandy2 showed that the chromophore p-hydroxybenzylidene moiety is sandwiched between the side chains of Leu63 and Ile197, a structural motif that has not previously been observed in RFPs, and confirms that aliphatic packing leads to chromophore rigidification. Our results demonstrate that computational protein design can be used to generate bright monomeric RFPs, which can serve as templates for the evolution of novel far-red fluorescent proteins. The Royal Society of Chemistry 2022-01-11 /pmc/articles/PMC8809391/ /pubmed/35222925 http://dx.doi.org/10.1039/d1sc05088e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Legault, Sandrine
Fraser-Halberg, Derek P.
McAnelly, Ralph L.
Eason, Matthew G.
Thompson, Michael C.
Chica, Roberto A.
Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title_full Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title_fullStr Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title_full_unstemmed Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title_short Generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
title_sort generation of bright monomeric red fluorescent proteins via computational design of enhanced chromophore packing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8809391/
https://www.ncbi.nlm.nih.gov/pubmed/35222925
http://dx.doi.org/10.1039/d1sc05088e
work_keys_str_mv AT legaultsandrine generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking
AT fraserhalbergderekp generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking
AT mcanellyralphl generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking
AT easonmatthewg generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking
AT thompsonmichaelc generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking
AT chicarobertoa generationofbrightmonomericredfluorescentproteinsviacomputationaldesignofenhancedchromophorepacking