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HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity

BACKGROUND: Cell membrane interactions rely on lipid bilayer constituents and molecules inserted within the membrane, including specific receptors. HAMLET (human α-lactalbumin made lethal to tumor cells) is a tumoricidal complex of partially unfolded α-lactalbumin (HLA) and oleic acid that is intern...

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Autores principales: Mossberg, Ann-Kristin, Puchades, Maja, Halskau, Øyvind, Baumann, Anne, Lanekoff, Ingela, Chao, Yinxia, Martinez, Aurora, Svanborg, Catharina, Karlsson, Roger
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826418/
https://www.ncbi.nlm.nih.gov/pubmed/20186341
http://dx.doi.org/10.1371/journal.pone.0009384
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author Mossberg, Ann-Kristin
Puchades, Maja
Halskau, Øyvind
Baumann, Anne
Lanekoff, Ingela
Chao, Yinxia
Martinez, Aurora
Svanborg, Catharina
Karlsson, Roger
author_facet Mossberg, Ann-Kristin
Puchades, Maja
Halskau, Øyvind
Baumann, Anne
Lanekoff, Ingela
Chao, Yinxia
Martinez, Aurora
Svanborg, Catharina
Karlsson, Roger
author_sort Mossberg, Ann-Kristin
collection PubMed
description BACKGROUND: Cell membrane interactions rely on lipid bilayer constituents and molecules inserted within the membrane, including specific receptors. HAMLET (human α-lactalbumin made lethal to tumor cells) is a tumoricidal complex of partially unfolded α-lactalbumin (HLA) and oleic acid that is internalized by tumor cells, suggesting that interactions with the phospholipid bilayer and/or specific receptors may be essential for the tumoricidal effect. This study examined whether HAMLET interacts with artificial membranes and alters membrane structure. METHODOLOGY/PRINCIPAL FINDINGS: We show by surface plasmon resonance that HAMLET binds with high affinity to surface adherent, unilamellar vesicles of lipids with varying acyl chain composition and net charge. Fluorescence imaging revealed that HAMLET accumulates in membranes of vesicles and perturbs their structure, resulting in increased membrane fluidity. Furthermore, HAMLET disrupted membrane integrity at neutral pH and physiological conditions, as shown by fluorophore leakage experiments. These effects did not occur with either native HLA or a constitutively unfolded Cys-Ala HLA mutant (rHLA(all-Ala)). HAMLET also bound to plasma membrane vesicles formed from intact tumor cells, with accumulation in certain membrane areas, but the complex was not internalized by these vesicles or by the synthetic membrane vesicles. CONCLUSIONS/SIGNIFICANCE: The results illustrate the difference in membrane affinity between the fatty acid bound and fatty acid free forms of partially unfolded HLA and suggest that HAMLET engages membranes by a mechanism requiring both the protein and the fatty acid. Furthermore, HAMLET binding alters the morphology of the membrane and compromises its integrity, suggesting that membrane perturbation could be an initial step in inducing cell death.
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spelling pubmed-28264182010-02-26 HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity Mossberg, Ann-Kristin Puchades, Maja Halskau, Øyvind Baumann, Anne Lanekoff, Ingela Chao, Yinxia Martinez, Aurora Svanborg, Catharina Karlsson, Roger PLoS One Research Article BACKGROUND: Cell membrane interactions rely on lipid bilayer constituents and molecules inserted within the membrane, including specific receptors. HAMLET (human α-lactalbumin made lethal to tumor cells) is a tumoricidal complex of partially unfolded α-lactalbumin (HLA) and oleic acid that is internalized by tumor cells, suggesting that interactions with the phospholipid bilayer and/or specific receptors may be essential for the tumoricidal effect. This study examined whether HAMLET interacts with artificial membranes and alters membrane structure. METHODOLOGY/PRINCIPAL FINDINGS: We show by surface plasmon resonance that HAMLET binds with high affinity to surface adherent, unilamellar vesicles of lipids with varying acyl chain composition and net charge. Fluorescence imaging revealed that HAMLET accumulates in membranes of vesicles and perturbs their structure, resulting in increased membrane fluidity. Furthermore, HAMLET disrupted membrane integrity at neutral pH and physiological conditions, as shown by fluorophore leakage experiments. These effects did not occur with either native HLA or a constitutively unfolded Cys-Ala HLA mutant (rHLA(all-Ala)). HAMLET also bound to plasma membrane vesicles formed from intact tumor cells, with accumulation in certain membrane areas, but the complex was not internalized by these vesicles or by the synthetic membrane vesicles. CONCLUSIONS/SIGNIFICANCE: The results illustrate the difference in membrane affinity between the fatty acid bound and fatty acid free forms of partially unfolded HLA and suggest that HAMLET engages membranes by a mechanism requiring both the protein and the fatty acid. Furthermore, HAMLET binding alters the morphology of the membrane and compromises its integrity, suggesting that membrane perturbation could be an initial step in inducing cell death. Public Library of Science 2010-02-23 /pmc/articles/PMC2826418/ /pubmed/20186341 http://dx.doi.org/10.1371/journal.pone.0009384 Text en Mossberg et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Mossberg, Ann-Kristin
Puchades, Maja
Halskau, Øyvind
Baumann, Anne
Lanekoff, Ingela
Chao, Yinxia
Martinez, Aurora
Svanborg, Catharina
Karlsson, Roger
HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title_full HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title_fullStr HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title_full_unstemmed HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title_short HAMLET Interacts with Lipid Membranes and Perturbs Their Structure and Integrity
title_sort hamlet interacts with lipid membranes and perturbs their structure and integrity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826418/
https://www.ncbi.nlm.nih.gov/pubmed/20186341
http://dx.doi.org/10.1371/journal.pone.0009384
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