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The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles

The fungal cell wall is a critically important structure that represents a permeability barrier and protective shield. We probed Candida albicans and Cryptococcus neoformans with liposomes containing amphotericin B (AmBisome), with or without 15-nm colloidal gold particles. The liposomes have a diam...

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Autores principales: Walker, Louise, Sood, Prashant, Lenardon, Megan D., Milne, Gillian, Olson, Jon, Jensen, Gerard, Wolf, Julie, Casadevall, Arturo, Adler-Moore, Jill, Gow, Neil A. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5801470/
https://www.ncbi.nlm.nih.gov/pubmed/29437927
http://dx.doi.org/10.1128/mBio.02383-17
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author Walker, Louise
Sood, Prashant
Lenardon, Megan D.
Milne, Gillian
Olson, Jon
Jensen, Gerard
Wolf, Julie
Casadevall, Arturo
Adler-Moore, Jill
Gow, Neil A. R.
author_facet Walker, Louise
Sood, Prashant
Lenardon, Megan D.
Milne, Gillian
Olson, Jon
Jensen, Gerard
Wolf, Julie
Casadevall, Arturo
Adler-Moore, Jill
Gow, Neil A. R.
author_sort Walker, Louise
collection PubMed
description The fungal cell wall is a critically important structure that represents a permeability barrier and protective shield. We probed Candida albicans and Cryptococcus neoformans with liposomes containing amphotericin B (AmBisome), with or without 15-nm colloidal gold particles. The liposomes have a diameter of 60 to 80 nm, and yet their mode of action requires them to penetrate the fungal cell wall to deliver amphotericin B to the cell membrane, where it binds to ergosterol. Surprisingly, using cryofixation techniques with electron microscopy, we observed that the liposomes remained intact during transit through the cell wall of both yeast species, even though the predicted porosity of the cell wall (pore size, ~5.8 nm) is theoretically too small to allow these liposomes to pass through intact. C. albicans mutants with altered cell wall thickness and composition were similar in both their in vitro AmBisome susceptibility and the ability of liposomes to penetrate the cell wall. AmBisome exposed to ergosterol-deficient C. albicans failed to penetrate beyond the mannoprotein-rich outer cell wall layer. Melanization of C. neoformans and the absence of amphotericin B in the liposomes were also associated with a significant reduction in liposome penetration. Therefore, AmBisome can reach cell membranes intact, implying that fungal cell wall viscoelastic properties are permissive to vesicular structures. The fact that AmBisome can transit through chemically diverse cell wall matrices when these liposomes are larger than the theoretical cell wall porosity suggests that the wall is capable of rapid remodeling, which may also be the mechanism for release of extracellular vesicles.
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spelling pubmed-58014702018-02-12 The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles Walker, Louise Sood, Prashant Lenardon, Megan D. Milne, Gillian Olson, Jon Jensen, Gerard Wolf, Julie Casadevall, Arturo Adler-Moore, Jill Gow, Neil A. R. mBio Research Article The fungal cell wall is a critically important structure that represents a permeability barrier and protective shield. We probed Candida albicans and Cryptococcus neoformans with liposomes containing amphotericin B (AmBisome), with or without 15-nm colloidal gold particles. The liposomes have a diameter of 60 to 80 nm, and yet their mode of action requires them to penetrate the fungal cell wall to deliver amphotericin B to the cell membrane, where it binds to ergosterol. Surprisingly, using cryofixation techniques with electron microscopy, we observed that the liposomes remained intact during transit through the cell wall of both yeast species, even though the predicted porosity of the cell wall (pore size, ~5.8 nm) is theoretically too small to allow these liposomes to pass through intact. C. albicans mutants with altered cell wall thickness and composition were similar in both their in vitro AmBisome susceptibility and the ability of liposomes to penetrate the cell wall. AmBisome exposed to ergosterol-deficient C. albicans failed to penetrate beyond the mannoprotein-rich outer cell wall layer. Melanization of C. neoformans and the absence of amphotericin B in the liposomes were also associated with a significant reduction in liposome penetration. Therefore, AmBisome can reach cell membranes intact, implying that fungal cell wall viscoelastic properties are permissive to vesicular structures. The fact that AmBisome can transit through chemically diverse cell wall matrices when these liposomes are larger than the theoretical cell wall porosity suggests that the wall is capable of rapid remodeling, which may also be the mechanism for release of extracellular vesicles. American Society for Microbiology 2018-02-06 /pmc/articles/PMC5801470/ /pubmed/29437927 http://dx.doi.org/10.1128/mBio.02383-17 Text en Copyright © 2018 Walker et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Walker, Louise
Sood, Prashant
Lenardon, Megan D.
Milne, Gillian
Olson, Jon
Jensen, Gerard
Wolf, Julie
Casadevall, Arturo
Adler-Moore, Jill
Gow, Neil A. R.
The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title_full The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title_fullStr The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title_full_unstemmed The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title_short The Viscoelastic Properties of the Fungal Cell Wall Allow Traffic of AmBisome as Intact Liposome Vesicles
title_sort viscoelastic properties of the fungal cell wall allow traffic of ambisome as intact liposome vesicles
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5801470/
https://www.ncbi.nlm.nih.gov/pubmed/29437927
http://dx.doi.org/10.1128/mBio.02383-17
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