Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement
Due to the heterocyclic structure and distinct conformational profile, proline is unique in the repertoire of the 20 amino acids coded into proteins. Here, we summarize the biochemical work on the replacement of proline with (4R)- and (4S)-fluoroproline as well as 4,4-difluoroproline in proteins don...
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doaj-4c0bc3479cd64ad98675c9a7ea0673c62021-03-09T13:46:07ZengBeilstein-InstitutBeilstein Journal of Organic Chemistry1860-53972021-02-0117143946010.3762/bjoc.17.401860-5397-17-40Biochemistry of fluoroprolines: the prospect of making fluorine a bioelementVladimir Kubyshkin0Rebecca Davis1Nediljko Budisa2Department of Chemistry, University of Manitoba, 144 Dysart Rd., Winnipeg, R3T 2N2, CanadaDepartment of Chemistry, University of Manitoba, 144 Dysart Rd., Winnipeg, R3T 2N2, CanadaDepartment of Chemistry, University of Manitoba, 144 Dysart Rd., Winnipeg, R3T 2N2, CanadaDue to the heterocyclic structure and distinct conformational profile, proline is unique in the repertoire of the 20 amino acids coded into proteins. Here, we summarize the biochemical work on the replacement of proline with (4R)- and (4S)-fluoroproline as well as 4,4-difluoroproline in proteins done mainly in the last two decades. We first recapitulate the complex position and biochemical fate of proline in the biochemistry of a cell, discuss the physicochemical properties of fluoroprolines, and overview the attempts to use these amino acids as proline replacements in studies of protein production and folding. Fluorinated proline replacements are able to elevate the protein expression speed and yields and improve the thermodynamic and kinetic folding profiles of individual proteins. In this context, fluoroprolines can be viewed as useful tools in the biotechnological toolbox. As a prospect, we envision that proteome-wide proline-to-fluoroproline substitutions could be possible. We suggest a hypothetical scenario for the use of laboratory evolutionary methods with fluoroprolines as a suitable vehicle to introduce fluorine into living cells. This approach may enable creation of synthetic cells endowed with artificial biodiversity, containing fluorine as a bioelement.https://doi.org/10.3762/bjoc.17.40amino acidsevolutionfluorineprolineproteins |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Vladimir Kubyshkin Rebecca Davis Nediljko Budisa |
spellingShingle |
Vladimir Kubyshkin Rebecca Davis Nediljko Budisa Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement Beilstein Journal of Organic Chemistry amino acids evolution fluorine proline proteins |
author_facet |
Vladimir Kubyshkin Rebecca Davis Nediljko Budisa |
author_sort |
Vladimir Kubyshkin |
title |
Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
title_short |
Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
title_full |
Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
title_fullStr |
Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
title_full_unstemmed |
Biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
title_sort |
biochemistry of fluoroprolines: the prospect of making fluorine a bioelement |
publisher |
Beilstein-Institut |
series |
Beilstein Journal of Organic Chemistry |
issn |
1860-5397 |
publishDate |
2021-02-01 |
description |
Due to the heterocyclic structure and distinct conformational profile, proline is unique in the repertoire of the 20 amino acids coded into proteins. Here, we summarize the biochemical work on the replacement of proline with (4R)- and (4S)-fluoroproline as well as 4,4-difluoroproline in proteins done mainly in the last two decades. We first recapitulate the complex position and biochemical fate of proline in the biochemistry of a cell, discuss the physicochemical properties of fluoroprolines, and overview the attempts to use these amino acids as proline replacements in studies of protein production and folding. Fluorinated proline replacements are able to elevate the protein expression speed and yields and improve the thermodynamic and kinetic folding profiles of individual proteins. In this context, fluoroprolines can be viewed as useful tools in the biotechnological toolbox. As a prospect, we envision that proteome-wide proline-to-fluoroproline substitutions could be possible. We suggest a hypothetical scenario for the use of laboratory evolutionary methods with fluoroprolines as a suitable vehicle to introduce fluorine into living cells. This approach may enable creation of synthetic cells endowed with artificial biodiversity, containing fluorine as a bioelement. |
topic |
amino acids evolution fluorine proline proteins |
url |
https://doi.org/10.3762/bjoc.17.40 |
work_keys_str_mv |
AT vladimirkubyshkin biochemistryoffluoroprolinestheprospectofmakingfluorineabioelement AT rebeccadavis biochemistryoffluoroprolinestheprospectofmakingfluorineabioelement AT nediljkobudisa biochemistryoffluoroprolinestheprospectofmakingfluorineabioelement |
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