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dc.contributor.authorPavlyuk, E.en
dc.contributor.authorYungerman, I.en
dc.contributor.authorBliznyuk, A.en
dc.contributor.authorMoskovitz, Y.en
dc.date.accessioned2025-02-25T11:02:25Z-
dc.date.available2025-02-25T11:02:25Z-
dc.date.issued2024-
dc.identifier.citationPavlyuk, E., Yungerman, I., Bliznyuk, A., & Moskovitz, Y. (2024). Studying the Effects of Dissolved Noble Gases and High Hydrostatic Pressure on the Spherical DOPC Bilayer Using Molecular Dynamic Simulations. Membranes, 14(4), [89]. https://doi.org/10.3390/membranes14040089apa_pure
dc.identifier.issn2077-0375-
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access; Gold Open Access; Green Open Access3
dc.identifier.otherhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85191505421&doi=10.3390%2fmembranes14040089&partnerID=40&md5=11133a01cc537dd89d289821c36bc0831
dc.identifier.otherhttps://www.mdpi.com/2077-0375/14/4/89/pdf?version=1712927161pdf
dc.identifier.urihttp://elar.urfu.ru/handle/10995/141741-
dc.description.abstractFine-grained molecular dynamics simulations have been conducted to depict lipid objects enclosed in water and interacting with a series of noble gases dissolved in the medium. The simple point-charge (SPC) water system, featuring a boundary composed of 1,2-Dioleoyl-sn-glycero-3-phosphocholine (DOPC) molecules, maintained stability throughout the simulation under standard conditions. This allowed for the accurate modeling of the effects of hydrostatic pressure at an ambient pressure of 25 bar. The chosen pressure references the 240 m depth of seawater: the horizon frequently used by commercial divers, who comprise the primary patient population of the neurological complication of inert gas narcosis and the consequences of high-pressure neurological syndrome. To quantify and validate the neurological effects of noble gases and discriminate them from high hydrostatic pressure, we reduced the dissolved gas molar concentration to 1.5%, three times smaller than what we previously tested for the planar bilayer (3.5%). The nucleation and growth of xenon, argon and neon nanobubbles proved consistent with the data from the planar bilayer simulations. On the other hand, hyperbaric helium induces only a residual distorting effect on the liposome, with no significant condensed gas fraction observed within the hydrophobic core. The bubbles were distributed over a large volume—both in the bulk solvent and in the lipid phase—thereby causing substantial membrane distortion. This finding serves as evidence of the validity of the multisite distortion hypothesis for the neurological effect of inert gases at high pressure. © 2024 by the authors.en
dc.description.sponsorshipRussian Foundation for Basic Research, РФФИ, (20-07-00887); Russian Foundation for Basic Research, РФФИen
dc.description.sponsorshipRussian Foundation for Basic Research; grant number: 20-07-00887.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherMultidisciplinary Digital Publishing Institute (MDPI)en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.rightscc-byother
dc.sourceMembranes2
dc.sourceMembranesen
dc.subjectHIGH-PRESSURE NEUROLOGICAL SYNDROMEen
dc.subjectINERT GAS NARCOSISen
dc.subjectLIPOSOMEen
dc.subjectMOLECULAR DYNAMICSen
dc.subjectDISSOLUTIONen
dc.subjectHIGH PRESSURE EFFECTSen
dc.subjectHYDRAULICSen
dc.subjectHYDROSTATIC PRESSUREen
dc.subjectINERT GASESen
dc.subjectMOLAR RATIOen
dc.subjectDYNAMICS SIMULATIONen
dc.subjectFINE GRAINEDen
dc.subjectHIGH HYDROSTATIC PRESSUREen
dc.subjectHIGH PRESSUREen
dc.subjectHIGH-PRESSURE NEUROLOGICAL SYNDROMEen
dc.subjectINERT GAS NARCOSISen
dc.subjectPHOSPHOCHOLINE BILAYERSen
dc.subjectPLANAR BILAYERSen
dc.subjectSIMPLE POINT CHARGEen
dc.subjectWATER SYSTEMen
dc.subjectMOLECULAR DYNAMICSen
dc.titleStudying the Effects of Dissolved Noble Gases and High Hydrostatic Pressure on the Spherical DOPC Bilayer Using Molecular Dynamic Simulationsen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.3390/membranes14040089-
dc.identifier.scopus85191505421-
local.contributor.employeePavlyuk E., Laboratory of Multi-Scale Mathematical Modeling, Ural Federal University, Ekaterinburg, 620002, Russian Federationen
local.contributor.employeeYungerman I., Department of Chemical Engineering, Technion—Israel Technological Institute, Technion City, Haifa, 3200003, Israelen
local.contributor.employeeBliznyuk A., Ilse Katz Institute for Nanoscale Science and Technology (IKI), Ben Gurion University of the Negev, Beer Sheva, 8410501, Israelen
local.contributor.employeeMoskovitz Y., Laboratory of Multi-Scale Mathematical Modeling, Ural Federal University, Ekaterinburg, 620002, Russian Federation, Department of Chemical Engineering, Technion—Israel Technological Institute, Technion City, Haifa, 3200003, Israelen
local.issue4-
local.volume14-
dc.identifier.wos001210690600001-
local.contributor.departmentLaboratory of Multi-Scale Mathematical Modeling, Ural Federal University, Ekaterinburg, 620002, Russian Federationen
local.contributor.departmentDepartment of Chemical Engineering, Technion—Israel Technological Institute, Technion City, Haifa, 3200003, Israelen
local.contributor.departmentIlse Katz Institute for Nanoscale Science and Technology (IKI), Ben Gurion University of the Negev, Beer Sheva, 8410501, Israelen
local.identifier.pure56691245-
local.description.order89
local.identifier.eid2-s2.0-85191505421-
local.fund.rsfRussian Foundation for Basic Research, РФФИ, (20-07-00887); Russian Foundation for Basic Research, РФФИ
local.fund.rsfRussian Foundation for Basic Research; grant number: 20-07-00887.
local.identifier.wosWOS:001210690600001-
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