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Designed multi-stranded heme binding β-sheet peptides in membrane

Designed peptides demonstrating well-defined structures and functioning in membrane environment are of significant interest in developing novel proteins for membrane active biological processes including enzymes, electron transfer, ion channels and energy conversion. Heme proteins' ability to c...

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Detalles Bibliográficos
Autores principales: D'Souza, Areetha, Mahajan, Mukesh, Bhattacharjya, Surajit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5477022/
https://www.ncbi.nlm.nih.gov/pubmed/28660027
http://dx.doi.org/10.1039/c5sc04108b
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author D'Souza, Areetha
Mahajan, Mukesh
Bhattacharjya, Surajit
author_facet D'Souza, Areetha
Mahajan, Mukesh
Bhattacharjya, Surajit
author_sort D'Souza, Areetha
collection PubMed
description Designed peptides demonstrating well-defined structures and functioning in membrane environment are of significant interest in developing novel proteins for membrane active biological processes including enzymes, electron transfer, ion channels and energy conversion. Heme proteins' ability to carry out multiple functions in nature has inspired the design of several helical heme binding peptides and proteins soluble in water and also recently in membrane. Naturally occurring β-sheet proteins are both water and membrane soluble, and are known to bind heme, however, designed heme binding β-sheet proteins are yet to be reported, plausibly because of the complex folding and difficulty in introducing heme binding sites in the β-sheet structures. Here, we describe the design, NMR structures and biochemical functional characterization of four stranded and six stranded membrane soluble β-sheet peptides that bind heme and di-heme, respectively. The designed peptides contain either (D)P-G or (D)P-(D)A residues for the nucleation of β-turns intended to stabilize multi-stranded β-sheet topologies and ligate heme with bis-His coordination between adjacent antiparallel β-strands. Furthermore, we have optimized a high affinity heme binding pocket, K(d) ∼ nM range, in the adjacent β-strands by utilizing a series of four stranded β-sheet peptides employing β- and ω-amino acids. We find that there is a progressive increase in cofactor binding affinity in the designed peptides with the alkyl chain length of ω-amino acids. Notably, the six stranded β-sheet peptide binds two molecules of heme in a cooperative fashion. The designed peptides perform peroxidase activity with varying ability and efficiently carried out electron transfer with membrane associated protein cytochrome c. The current study demonstrates the designing of functional β-sheet proteins in a membrane environment and expands the repertoire of heme protein design.
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spelling pubmed-54770222017-06-28 Designed multi-stranded heme binding β-sheet peptides in membrane D'Souza, Areetha Mahajan, Mukesh Bhattacharjya, Surajit Chem Sci Chemistry Designed peptides demonstrating well-defined structures and functioning in membrane environment are of significant interest in developing novel proteins for membrane active biological processes including enzymes, electron transfer, ion channels and energy conversion. Heme proteins' ability to carry out multiple functions in nature has inspired the design of several helical heme binding peptides and proteins soluble in water and also recently in membrane. Naturally occurring β-sheet proteins are both water and membrane soluble, and are known to bind heme, however, designed heme binding β-sheet proteins are yet to be reported, plausibly because of the complex folding and difficulty in introducing heme binding sites in the β-sheet structures. Here, we describe the design, NMR structures and biochemical functional characterization of four stranded and six stranded membrane soluble β-sheet peptides that bind heme and di-heme, respectively. The designed peptides contain either (D)P-G or (D)P-(D)A residues for the nucleation of β-turns intended to stabilize multi-stranded β-sheet topologies and ligate heme with bis-His coordination between adjacent antiparallel β-strands. Furthermore, we have optimized a high affinity heme binding pocket, K(d) ∼ nM range, in the adjacent β-strands by utilizing a series of four stranded β-sheet peptides employing β- and ω-amino acids. We find that there is a progressive increase in cofactor binding affinity in the designed peptides with the alkyl chain length of ω-amino acids. Notably, the six stranded β-sheet peptide binds two molecules of heme in a cooperative fashion. The designed peptides perform peroxidase activity with varying ability and efficiently carried out electron transfer with membrane associated protein cytochrome c. The current study demonstrates the designing of functional β-sheet proteins in a membrane environment and expands the repertoire of heme protein design. Royal Society of Chemistry 2016-04-01 2015-12-17 /pmc/articles/PMC5477022/ /pubmed/28660027 http://dx.doi.org/10.1039/c5sc04108b Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
D'Souza, Areetha
Mahajan, Mukesh
Bhattacharjya, Surajit
Designed multi-stranded heme binding β-sheet peptides in membrane
title Designed multi-stranded heme binding β-sheet peptides in membrane
title_full Designed multi-stranded heme binding β-sheet peptides in membrane
title_fullStr Designed multi-stranded heme binding β-sheet peptides in membrane
title_full_unstemmed Designed multi-stranded heme binding β-sheet peptides in membrane
title_short Designed multi-stranded heme binding β-sheet peptides in membrane
title_sort designed multi-stranded heme binding β-sheet peptides in membrane
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5477022/
https://www.ncbi.nlm.nih.gov/pubmed/28660027
http://dx.doi.org/10.1039/c5sc04108b
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