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Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes. / Zakharova, Anastasiia A.; Efimova, Svetlana S.; Malev, Valery V.; Ostroumova, Olga S.

In: Scientific Reports, Vol. 9, No. 1, 16034, 01.12.2019.

Research output: Contribution to journalArticlepeer-review

Harvard

Zakharova, AA, Efimova, SS, Malev, VV & Ostroumova, OS 2019, 'Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes', Scientific Reports, vol. 9, no. 1, 16034. https://doi.org/10.1038/s41598-019-52551-5

APA

Zakharova, A. A., Efimova, S. S., Malev, V. V., & Ostroumova, O. S. (2019). Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes. Scientific Reports, 9(1), [16034]. https://doi.org/10.1038/s41598-019-52551-5

Vancouver

Author

Zakharova, Anastasiia A. ; Efimova, Svetlana S. ; Malev, Valery V. ; Ostroumova, Olga S. / Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes. In: Scientific Reports. 2019 ; Vol. 9, No. 1.

BibTeX

@article{90ccc383b0c84bedb3f1b14afda5bc05,
title = "Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes",
abstract = "The one-sided addition of fengycin (FE) to planar lipid bilayers mimicking target fungal cell membranes up to 0.1 to 0.5 μM in the membrane bathing solution leads to the formation of well-defined and well-reproducible single-ion channels of various conductances in the picosiemens range. FE channels were characterized by asymmetric conductance-voltage characteristic. Membranes treated with FE showed nonideal cationic selectivity in potassium chloride bathing solutions. The membrane conductance induced by FE increased with the second power of the lipopeptide aqueous concentration, suggesting that at least FE dimers are involved in the formation of conductive subunits. The pore formation ability of FE was not distinctly affected by the molecular shape of membrane lipids but strongly depended on the presence of negatively charged species in the bilayer. FE channels were characterized by weakly pronounced voltage gating. Small molecules known to modify the transmembrane distribution of electrical potential and the lateral pressure profile were used to modulate the channel-forming activity of FE. The observed effects of membrane modifiers were attributed to changes in lipid packing and lipopeptide oligomerization in the membrane.",
author = "Zakharova, {Anastasiia A.} and Efimova, {Svetlana S.} and Malev, {Valery V.} and Ostroumova, {Olga S.}",
note = "Funding Information: Authors thank Evgeny Chulkov for participating in preliminary data acquisition. This study was funded by the RSF (# 19-14-00110) and the RFBR (#18-34-20047) (investigation of the alkaloid caffeine on the physicochemical properties of bilayers). Svetlana Efimova was awarded by SP-484.2018.4. Publisher Copyright: {\textcopyright} 2019, The Author(s). Copyright: Copyright 2019 Elsevier B.V., All rights reserved.",
year = "2019",
month = dec,
day = "1",
doi = "10.1038/s41598-019-52551-5",
language = "English",
volume = "9",
journal = "Scientific Reports",
issn = "2045-2322",
publisher = "Nature Publishing Group",
number = "1",

}

RIS

TY - JOUR

T1 - Fengycin induces ion channels in lipid bilayers mimicking target fungal cell membranes

AU - Zakharova, Anastasiia A.

AU - Efimova, Svetlana S.

AU - Malev, Valery V.

AU - Ostroumova, Olga S.

N1 - Funding Information: Authors thank Evgeny Chulkov for participating in preliminary data acquisition. This study was funded by the RSF (# 19-14-00110) and the RFBR (#18-34-20047) (investigation of the alkaloid caffeine on the physicochemical properties of bilayers). Svetlana Efimova was awarded by SP-484.2018.4. Publisher Copyright: © 2019, The Author(s). Copyright: Copyright 2019 Elsevier B.V., All rights reserved.

PY - 2019/12/1

Y1 - 2019/12/1

N2 - The one-sided addition of fengycin (FE) to planar lipid bilayers mimicking target fungal cell membranes up to 0.1 to 0.5 μM in the membrane bathing solution leads to the formation of well-defined and well-reproducible single-ion channels of various conductances in the picosiemens range. FE channels were characterized by asymmetric conductance-voltage characteristic. Membranes treated with FE showed nonideal cationic selectivity in potassium chloride bathing solutions. The membrane conductance induced by FE increased with the second power of the lipopeptide aqueous concentration, suggesting that at least FE dimers are involved in the formation of conductive subunits. The pore formation ability of FE was not distinctly affected by the molecular shape of membrane lipids but strongly depended on the presence of negatively charged species in the bilayer. FE channels were characterized by weakly pronounced voltage gating. Small molecules known to modify the transmembrane distribution of electrical potential and the lateral pressure profile were used to modulate the channel-forming activity of FE. The observed effects of membrane modifiers were attributed to changes in lipid packing and lipopeptide oligomerization in the membrane.

AB - The one-sided addition of fengycin (FE) to planar lipid bilayers mimicking target fungal cell membranes up to 0.1 to 0.5 μM in the membrane bathing solution leads to the formation of well-defined and well-reproducible single-ion channels of various conductances in the picosiemens range. FE channels were characterized by asymmetric conductance-voltage characteristic. Membranes treated with FE showed nonideal cationic selectivity in potassium chloride bathing solutions. The membrane conductance induced by FE increased with the second power of the lipopeptide aqueous concentration, suggesting that at least FE dimers are involved in the formation of conductive subunits. The pore formation ability of FE was not distinctly affected by the molecular shape of membrane lipids but strongly depended on the presence of negatively charged species in the bilayer. FE channels were characterized by weakly pronounced voltage gating. Small molecules known to modify the transmembrane distribution of electrical potential and the lateral pressure profile were used to modulate the channel-forming activity of FE. The observed effects of membrane modifiers were attributed to changes in lipid packing and lipopeptide oligomerization in the membrane.

UR - http://www.scopus.com/inward/record.url?scp=85074742574&partnerID=8YFLogxK

U2 - 10.1038/s41598-019-52551-5

DO - 10.1038/s41598-019-52551-5

M3 - Article

C2 - 31690786

AN - SCOPUS:85074742574

VL - 9

JO - Scientific Reports

JF - Scientific Reports

SN - 2045-2322

IS - 1

M1 - 16034

ER -

ID: 70836540