Cooling induces phase separation in membranes derived from isolated CNS myelin.

Purified myelin membranes (PMMs) are the starting material for biochemical analyses such as the isolation of detergent-insoluble glycosphingolipid-rich domains (DIGs), which are believed to be representatives of functional lipid rafts. The normal DIGs isolation protocol involves the extraction of li...

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Main Authors: Julio M Pusterla, Emanuel Schneck, Sérgio S Funari, Bruno Demé, Motomu Tanaka, Rafael G Oliveira
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5600379?pdf=render
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spelling doaj-5c31c8cee95c48118247a3e22c3acc7f2020-11-25T01:42:33ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01129e018488110.1371/journal.pone.0184881Cooling induces phase separation in membranes derived from isolated CNS myelin.Julio M PusterlaEmanuel SchneckSérgio S FunariBruno DeméMotomu TanakaRafael G OliveiraPurified myelin membranes (PMMs) are the starting material for biochemical analyses such as the isolation of detergent-insoluble glycosphingolipid-rich domains (DIGs), which are believed to be representatives of functional lipid rafts. The normal DIGs isolation protocol involves the extraction of lipids under moderate cooling. Here, we thus address the influence of cooling on the structure of PMMs and its sub-fractions. Thermodynamic and structural aspects of periodic, multilamellar PMMs are examined between 4°C and 45°C and in various biologically relevant aqueous solutions. The phase behavior is investigated by small-angle X-ray scattering (SAXS) and differential scanning calorimetry (DSC). Complementary neutron diffraction (ND) experiments with solid-supported myelin multilayers confirm that the phase behavior is unaffected by planar confinement. SAXS and ND consistently show that multilamellar PMMs in pure water become heterogeneous when cooled by more than 10-15°C below physiological temperature, as during the DIGs isolation procedure. The heterogeneous state of PMMs is stabilized in physiological solution, where phase coexistence persists up to near the physiological temperature. This result supports the general view that membranes under physiological conditions are close to critical points for phase separation. In presence of elevated Ca2+ concentrations (> 10 mM), phase coexistence is found even far above physiological temperatures. The relative fractions of the two phases, and thus presumably also their compositions, are found to vary with temperature. Depending on the conditions, an "expanded" phase with larger lamellar period or a "compacted" phase with smaller lamellar period coexists with the native phase. Both expanded and compacted periods are also observed in DIGs under the respective conditions. The observed subtle temperature-dependence of the phase behavior of PMMs suggests that the composition of DIGs is sensitive to the details of the isolation protocol.http://europepmc.org/articles/PMC5600379?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Julio M Pusterla
Emanuel Schneck
Sérgio S Funari
Bruno Demé
Motomu Tanaka
Rafael G Oliveira
spellingShingle Julio M Pusterla
Emanuel Schneck
Sérgio S Funari
Bruno Demé
Motomu Tanaka
Rafael G Oliveira
Cooling induces phase separation in membranes derived from isolated CNS myelin.
PLoS ONE
author_facet Julio M Pusterla
Emanuel Schneck
Sérgio S Funari
Bruno Demé
Motomu Tanaka
Rafael G Oliveira
author_sort Julio M Pusterla
title Cooling induces phase separation in membranes derived from isolated CNS myelin.
title_short Cooling induces phase separation in membranes derived from isolated CNS myelin.
title_full Cooling induces phase separation in membranes derived from isolated CNS myelin.
title_fullStr Cooling induces phase separation in membranes derived from isolated CNS myelin.
title_full_unstemmed Cooling induces phase separation in membranes derived from isolated CNS myelin.
title_sort cooling induces phase separation in membranes derived from isolated cns myelin.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Purified myelin membranes (PMMs) are the starting material for biochemical analyses such as the isolation of detergent-insoluble glycosphingolipid-rich domains (DIGs), which are believed to be representatives of functional lipid rafts. The normal DIGs isolation protocol involves the extraction of lipids under moderate cooling. Here, we thus address the influence of cooling on the structure of PMMs and its sub-fractions. Thermodynamic and structural aspects of periodic, multilamellar PMMs are examined between 4°C and 45°C and in various biologically relevant aqueous solutions. The phase behavior is investigated by small-angle X-ray scattering (SAXS) and differential scanning calorimetry (DSC). Complementary neutron diffraction (ND) experiments with solid-supported myelin multilayers confirm that the phase behavior is unaffected by planar confinement. SAXS and ND consistently show that multilamellar PMMs in pure water become heterogeneous when cooled by more than 10-15°C below physiological temperature, as during the DIGs isolation procedure. The heterogeneous state of PMMs is stabilized in physiological solution, where phase coexistence persists up to near the physiological temperature. This result supports the general view that membranes under physiological conditions are close to critical points for phase separation. In presence of elevated Ca2+ concentrations (> 10 mM), phase coexistence is found even far above physiological temperatures. The relative fractions of the two phases, and thus presumably also their compositions, are found to vary with temperature. Depending on the conditions, an "expanded" phase with larger lamellar period or a "compacted" phase with smaller lamellar period coexists with the native phase. Both expanded and compacted periods are also observed in DIGs under the respective conditions. The observed subtle temperature-dependence of the phase behavior of PMMs suggests that the composition of DIGs is sensitive to the details of the isolation protocol.
url http://europepmc.org/articles/PMC5600379?pdf=render
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