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Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide

[Image: see text] Peptides that self-assemble, at low concentration, into bilayer-spanning pores which allow the passage of macromolecules would be beneficial in multiple areas of biotechnology. However, there are few, if any, natural or designed peptides that have this property. Here we show that t...

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Autores principales: Wiedman, Gregory, Fuselier, Taylor, He, Jing, Searson, Peter C., Hristova, Kalina, Wimley, William C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985440/
https://www.ncbi.nlm.nih.gov/pubmed/24588399
http://dx.doi.org/10.1021/ja500462s
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author Wiedman, Gregory
Fuselier, Taylor
He, Jing
Searson, Peter C.
Hristova, Kalina
Wimley, William C.
author_facet Wiedman, Gregory
Fuselier, Taylor
He, Jing
Searson, Peter C.
Hristova, Kalina
Wimley, William C.
author_sort Wiedman, Gregory
collection PubMed
description [Image: see text] Peptides that self-assemble, at low concentration, into bilayer-spanning pores which allow the passage of macromolecules would be beneficial in multiple areas of biotechnology. However, there are few, if any, natural or designed peptides that have this property. Here we show that the 26-residue peptide “MelP5”, a synthetically evolved gain-of-function variant of the bee venom lytic peptide melittin identified in a high-throughput screen for small molecule leakage, enables the passage of macromolecules across bilayers under conditions where melittin and other pore-forming peptides do not. In surface-supported bilayers, MelP5 forms unusually high conductance, equilibrium pores at peptide:lipid ratios as low as 1:25000. The increase in bilayer conductance due to MelP5 is dramatically higher, per peptide, than the increase due to the parent sequence of melittin or other peptide pore formers. Here we also develop two novel assays for macromolecule leakage from vesicles, and we use them to characterize MelP5 pores in bilayers. We show that MelP5 allows the passage of macromolecules across vesicle membranes at peptide:lipid ratios as low as 1:500, and under conditions where neither osmotic lysis nor gross vesicle destabilization occur. The macromolecule-sized, equilibrium pores formed by MelP5 are unique as neither melittin nor other pore-forming peptides release macromolecules significantly under the same conditions. MelP5 thus appears to belong to a novel functional class of peptide that could form the foundation of multiple potential biotechnological applications.
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spelling pubmed-39854402015-03-03 Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide Wiedman, Gregory Fuselier, Taylor He, Jing Searson, Peter C. Hristova, Kalina Wimley, William C. J Am Chem Soc [Image: see text] Peptides that self-assemble, at low concentration, into bilayer-spanning pores which allow the passage of macromolecules would be beneficial in multiple areas of biotechnology. However, there are few, if any, natural or designed peptides that have this property. Here we show that the 26-residue peptide “MelP5”, a synthetically evolved gain-of-function variant of the bee venom lytic peptide melittin identified in a high-throughput screen for small molecule leakage, enables the passage of macromolecules across bilayers under conditions where melittin and other pore-forming peptides do not. In surface-supported bilayers, MelP5 forms unusually high conductance, equilibrium pores at peptide:lipid ratios as low as 1:25000. The increase in bilayer conductance due to MelP5 is dramatically higher, per peptide, than the increase due to the parent sequence of melittin or other peptide pore formers. Here we also develop two novel assays for macromolecule leakage from vesicles, and we use them to characterize MelP5 pores in bilayers. We show that MelP5 allows the passage of macromolecules across vesicle membranes at peptide:lipid ratios as low as 1:500, and under conditions where neither osmotic lysis nor gross vesicle destabilization occur. The macromolecule-sized, equilibrium pores formed by MelP5 are unique as neither melittin nor other pore-forming peptides release macromolecules significantly under the same conditions. MelP5 thus appears to belong to a novel functional class of peptide that could form the foundation of multiple potential biotechnological applications. American Chemical Society 2014-03-03 2014-03-26 /pmc/articles/PMC3985440/ /pubmed/24588399 http://dx.doi.org/10.1021/ja500462s Text en Copyright © 2014 American Chemical Society
spellingShingle Wiedman, Gregory
Fuselier, Taylor
He, Jing
Searson, Peter C.
Hristova, Kalina
Wimley, William C.
Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title_full Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title_fullStr Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title_full_unstemmed Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title_short Highly Efficient Macromolecule-Sized Poration of Lipid Bilayers by a Synthetically Evolved Peptide
title_sort highly efficient macromolecule-sized poration of lipid bilayers by a synthetically evolved peptide
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985440/
https://www.ncbi.nlm.nih.gov/pubmed/24588399
http://dx.doi.org/10.1021/ja500462s
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