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Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures

The influences of structural alterations of sphingomyelin (SM) on its interactions with cholesterol (chol) and on ordered phase formation were examined by density measurements and surface pressure vs. molecular area isotherm measurements. In addition, we quantitatively characterized the ordered phas...

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Autores principales: Kinoshita, Masanao, Goretta, Sarah, Tsuchikawa, Hiroshi, Matsumori, Nobuaki, Murata, Michio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society of Japan (BSJ) 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629689/
https://www.ncbi.nlm.nih.gov/pubmed/27493539
http://dx.doi.org/10.2142/biophysics.9.37
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author Kinoshita, Masanao
Goretta, Sarah
Tsuchikawa, Hiroshi
Matsumori, Nobuaki
Murata, Michio
author_facet Kinoshita, Masanao
Goretta, Sarah
Tsuchikawa, Hiroshi
Matsumori, Nobuaki
Murata, Michio
author_sort Kinoshita, Masanao
collection PubMed
description The influences of structural alterations of sphingomyelin (SM) on its interactions with cholesterol (chol) and on ordered phase formation were examined by density measurements and surface pressure vs. molecular area isotherm measurements. In addition, we quantitatively characterized the ordered phase formed in each SM and chol binary mixture on the basis of the molecular compressional modulus of SM ( [Formula: see text]). Density measurements demonstrated that the ordered phase formation in threo-SM (tSM)/chol and dihydrosphingomyelin (DHSM)/chol binary bilayers shows similar chol concentration-dependency to that of natural erythro-SM (eSM)/chol bilayers; the ordered phase formation was completed in the presence of 25 mol% chol. In contrast, SM bearing a triple bond in the place of a double bond (tripleSM) required a greater concentration of chol to completely transform the bilayer into the ordered phase (at 40 mol% chol). Surface pressure vs. molecular area isotherms showed that the DHSM molecule ( [Formula: see text] = 290 mN/m) is more rigid than eSM ( [Formula: see text] = 240 mN/m) above 30 mol% chol (in the ordered phase), although these values are similar (140–150 mN/m) in the absence of chol (liquid condensed phase). Most likely, the DHSM/chol mixture forms a more ordered membrane than the eSM/chol mixture does. Moreover, in the absence of chol, the rigidity of the tripleSM molecule ( [Formula: see text] = 250 mN/m) is significantly higher as compared with that of the eSM molecule ( [Formula: see text] = 150 mN/m), which is probably due to the presence of a triple bond.
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spelling pubmed-46296892016-08-04 Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures Kinoshita, Masanao Goretta, Sarah Tsuchikawa, Hiroshi Matsumori, Nobuaki Murata, Michio Biophysics (Nagoya-shi) Regular Article The influences of structural alterations of sphingomyelin (SM) on its interactions with cholesterol (chol) and on ordered phase formation were examined by density measurements and surface pressure vs. molecular area isotherm measurements. In addition, we quantitatively characterized the ordered phase formed in each SM and chol binary mixture on the basis of the molecular compressional modulus of SM ( [Formula: see text]). Density measurements demonstrated that the ordered phase formation in threo-SM (tSM)/chol and dihydrosphingomyelin (DHSM)/chol binary bilayers shows similar chol concentration-dependency to that of natural erythro-SM (eSM)/chol bilayers; the ordered phase formation was completed in the presence of 25 mol% chol. In contrast, SM bearing a triple bond in the place of a double bond (tripleSM) required a greater concentration of chol to completely transform the bilayer into the ordered phase (at 40 mol% chol). Surface pressure vs. molecular area isotherms showed that the DHSM molecule ( [Formula: see text] = 290 mN/m) is more rigid than eSM ( [Formula: see text] = 240 mN/m) above 30 mol% chol (in the ordered phase), although these values are similar (140–150 mN/m) in the absence of chol (liquid condensed phase). Most likely, the DHSM/chol mixture forms a more ordered membrane than the eSM/chol mixture does. Moreover, in the absence of chol, the rigidity of the tripleSM molecule ( [Formula: see text] = 250 mN/m) is significantly higher as compared with that of the eSM molecule ( [Formula: see text] = 150 mN/m), which is probably due to the presence of a triple bond. The Biophysical Society of Japan (BSJ) 2013-05-22 /pmc/articles/PMC4629689/ /pubmed/27493539 http://dx.doi.org/10.2142/biophysics.9.37 Text en ©2013 THE BIOPHYSICAL SOCIETY OF JAPAN
spellingShingle Regular Article
Kinoshita, Masanao
Goretta, Sarah
Tsuchikawa, Hiroshi
Matsumori, Nobuaki
Murata, Michio
Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title_full Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title_fullStr Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title_full_unstemmed Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title_short Characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
title_sort characterization of the ordered phase formed by sphingomyelin analogues and cholesterol binary mixtures
topic Regular Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629689/
https://www.ncbi.nlm.nih.gov/pubmed/27493539
http://dx.doi.org/10.2142/biophysics.9.37
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