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Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study

We describe the molecular dynamics (MD)-aided engineering design of mutant peptides based on the α-helical coiled-coil GCN4 leucine zipper peptide (GCN4-p1) in order to obtain environmentally-responsive nanotweezers. The actuation mechanism of the nanotweezers depends on the modification of electros...

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Autores principales: Sharma, Gaurav, Rege, Kaushal, Budil, David E, Yarmush, Martin L, Mavroidis, Constantinos
Formato: Texto
Lenguaje:English
Publicado: Dove Medical Press 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2636583/
https://www.ncbi.nlm.nih.gov/pubmed/19337419
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author Sharma, Gaurav
Rege, Kaushal
Budil, David E
Yarmush, Martin L
Mavroidis, Constantinos
author_facet Sharma, Gaurav
Rege, Kaushal
Budil, David E
Yarmush, Martin L
Mavroidis, Constantinos
author_sort Sharma, Gaurav
collection PubMed
description We describe the molecular dynamics (MD)-aided engineering design of mutant peptides based on the α-helical coiled-coil GCN4 leucine zipper peptide (GCN4-p1) in order to obtain environmentally-responsive nanotweezers. The actuation mechanism of the nanotweezers depends on the modification of electrostatic charges on the residues along the length of the coiled coil. Modulating the solution pH between neutral and acidic values results in the reversible movement of helices toward and away from each other and creates a complete closed-open-closed transition cycle between the helices. Our results indicate that the mutants show a reversible opening of up to 15 Å (1.5 nm; approximately 150% of the initial separation) upon pH actuation. Investigation on the physicochemical phenomena that influence conformational properties, structural stability, and reversibility of the coiled-coil peptide-based nanotweezers revealed that a rationale- and design-based approach is needed to engineer stable peptide or macromolecules into stimuli-responsive devices. The efficacy of the mutant that demonstrated the most significant reversible actuation for environmentally responsive modulation of DNA-binding activity was also demonstrated. Our results have significant implications in bioseparations and in the engineering of novel transcription factors.
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spelling pubmed-26365832009-04-01 Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study Sharma, Gaurav Rege, Kaushal Budil, David E Yarmush, Martin L Mavroidis, Constantinos Int J Nanomedicine Original Research We describe the molecular dynamics (MD)-aided engineering design of mutant peptides based on the α-helical coiled-coil GCN4 leucine zipper peptide (GCN4-p1) in order to obtain environmentally-responsive nanotweezers. The actuation mechanism of the nanotweezers depends on the modification of electrostatic charges on the residues along the length of the coiled coil. Modulating the solution pH between neutral and acidic values results in the reversible movement of helices toward and away from each other and creates a complete closed-open-closed transition cycle between the helices. Our results indicate that the mutants show a reversible opening of up to 15 Å (1.5 nm; approximately 150% of the initial separation) upon pH actuation. Investigation on the physicochemical phenomena that influence conformational properties, structural stability, and reversibility of the coiled-coil peptide-based nanotweezers revealed that a rationale- and design-based approach is needed to engineer stable peptide or macromolecules into stimuli-responsive devices. The efficacy of the mutant that demonstrated the most significant reversible actuation for environmentally responsive modulation of DNA-binding activity was also demonstrated. Our results have significant implications in bioseparations and in the engineering of novel transcription factors. Dove Medical Press 2008-12 /pmc/articles/PMC2636583/ /pubmed/19337419 Text en © 2008 Dove Medical Press Limited. All rights reserved
spellingShingle Original Research
Sharma, Gaurav
Rege, Kaushal
Budil, David E
Yarmush, Martin L
Mavroidis, Constantinos
Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title_full Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title_fullStr Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title_full_unstemmed Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title_short Reversible pH-controlled DNA-binding peptide nanotweezers: An in-silico study
title_sort reversible ph-controlled dna-binding peptide nanotweezers: an in-silico study
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2636583/
https://www.ncbi.nlm.nih.gov/pubmed/19337419
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