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Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA

Proline utilization A (PutA) is a bifunctional flavoenzyme with proline dehydrogenase (PRODH) and Δ(1)-pyrroline-5-carboxylate (P5C) dehydrogenase (P5CDH) domains that catalyses the two-step oxidation of proline to glutamate. Trifunctional PutAs also have an N-terminal ribbon–helix–helix (RHH) DNA-b...

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Autores principales: Arentson, Benjamin W., Hayes, Erin L., Zhu, Weidong, Singh, Harkewal, Tanner, John J., Becker, Donald F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5293562/
https://www.ncbi.nlm.nih.gov/pubmed/27742866
http://dx.doi.org/10.1042/BSR20160435
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author Arentson, Benjamin W.
Hayes, Erin L.
Zhu, Weidong
Singh, Harkewal
Tanner, John J.
Becker, Donald F.
author_facet Arentson, Benjamin W.
Hayes, Erin L.
Zhu, Weidong
Singh, Harkewal
Tanner, John J.
Becker, Donald F.
author_sort Arentson, Benjamin W.
collection PubMed
description Proline utilization A (PutA) is a bifunctional flavoenzyme with proline dehydrogenase (PRODH) and Δ(1)-pyrroline-5-carboxylate (P5C) dehydrogenase (P5CDH) domains that catalyses the two-step oxidation of proline to glutamate. Trifunctional PutAs also have an N-terminal ribbon–helix–helix (RHH) DNA-binding domain and moonlight as autogenous transcriptional repressors of the put regulon. A unique property of trifunctional PutA is the ability to switch functions from DNA-bound repressor to membrane-associated enzyme in response to cellular nutritional needs and proline availability. In the present study, we attempt to construct a trifunctional PutA by fusing the RHH domain of Escherichia coli PutA (EcRHH) to the bifunctional Rhodobacter capsulatus PutA (RcPutA) in order to explore the modular design of functional switching in trifunctional PutAs. The EcRHH–RcPutA chimaera retains the catalytic properties of RcPutA while acquiring the oligomeric state, quaternary structure and DNA-binding properties of EcPutA. Furthermore, the EcRHH–RcPutA chimaera exhibits proline-induced lipid association, which is a fundamental characteristic of functional switching. Unexpectedly, RcPutA lipid binding is also activated by proline, which shows for the first time that bifunctional PutAs exhibit a limited form of functional switching. Altogether, these results suggest that the C-terminal domain (CTD), which is conserved by trifunctional PutAs and certain bifunctional PutAs, is essential for functional switching in trifunctional PutAs.
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spelling pubmed-52935622017-02-14 Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA Arentson, Benjamin W. Hayes, Erin L. Zhu, Weidong Singh, Harkewal Tanner, John J. Becker, Donald F. Biosci Rep Original Papers Proline utilization A (PutA) is a bifunctional flavoenzyme with proline dehydrogenase (PRODH) and Δ(1)-pyrroline-5-carboxylate (P5C) dehydrogenase (P5CDH) domains that catalyses the two-step oxidation of proline to glutamate. Trifunctional PutAs also have an N-terminal ribbon–helix–helix (RHH) DNA-binding domain and moonlight as autogenous transcriptional repressors of the put regulon. A unique property of trifunctional PutA is the ability to switch functions from DNA-bound repressor to membrane-associated enzyme in response to cellular nutritional needs and proline availability. In the present study, we attempt to construct a trifunctional PutA by fusing the RHH domain of Escherichia coli PutA (EcRHH) to the bifunctional Rhodobacter capsulatus PutA (RcPutA) in order to explore the modular design of functional switching in trifunctional PutAs. The EcRHH–RcPutA chimaera retains the catalytic properties of RcPutA while acquiring the oligomeric state, quaternary structure and DNA-binding properties of EcPutA. Furthermore, the EcRHH–RcPutA chimaera exhibits proline-induced lipid association, which is a fundamental characteristic of functional switching. Unexpectedly, RcPutA lipid binding is also activated by proline, which shows for the first time that bifunctional PutAs exhibit a limited form of functional switching. Altogether, these results suggest that the C-terminal domain (CTD), which is conserved by trifunctional PutAs and certain bifunctional PutAs, is essential for functional switching in trifunctional PutAs. Portland Press Ltd. 2016-11-22 /pmc/articles/PMC5293562/ /pubmed/27742866 http://dx.doi.org/10.1042/BSR20160435 Text en © 2016 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution Licence 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Original Papers
Arentson, Benjamin W.
Hayes, Erin L.
Zhu, Weidong
Singh, Harkewal
Tanner, John J.
Becker, Donald F.
Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title_full Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title_fullStr Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title_full_unstemmed Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title_short Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA
title_sort engineering a trifunctional proline utilization a chimaera by fusing a dna-binding domain to a bifunctional puta
topic Original Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5293562/
https://www.ncbi.nlm.nih.gov/pubmed/27742866
http://dx.doi.org/10.1042/BSR20160435
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