Cargando…
Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers
Cell surfaces are often decorated with glycoconjugates that contain linear and more complex symmetrically and asymmetrically branched carbohydrates essential for cellular recognition and communication processes. Mannose is one of the fundamental building blocks of glycans in many biological membrane...
Autores principales: | , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
National Academy of Sciences
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7275670/ https://www.ncbi.nlm.nih.gov/pubmed/32424105 http://dx.doi.org/10.1073/pnas.2003938117 |
_version_ | 1783542834359435264 |
---|---|
author | Xiao, Qi Delbianco, Martina Sherman, Samuel E. Reveron Perez, Aracelee M. Bharate, Priya Pardo-Vargas, Alonso Rodriguez-Emmenegger, Cesar Kostina, Nina Yu Rahimi, Khosrow Söder, Dominik Möller, Martin Klein, Michael L. Seeberger, Peter H. Percec, Virgil |
author_facet | Xiao, Qi Delbianco, Martina Sherman, Samuel E. Reveron Perez, Aracelee M. Bharate, Priya Pardo-Vargas, Alonso Rodriguez-Emmenegger, Cesar Kostina, Nina Yu Rahimi, Khosrow Söder, Dominik Möller, Martin Klein, Michael L. Seeberger, Peter H. Percec, Virgil |
author_sort | Xiao, Qi |
collection | PubMed |
description | Cell surfaces are often decorated with glycoconjugates that contain linear and more complex symmetrically and asymmetrically branched carbohydrates essential for cellular recognition and communication processes. Mannose is one of the fundamental building blocks of glycans in many biological membranes. Moreover, oligomannoses are commonly found on the surface of pathogens such as bacteria and viruses as both glycolipids and glycoproteins. However, their mechanism of action is not well understood, even though this is of great potential interest for translational medicine. Sequence-defined amphiphilic Janus glycodendrimers containing simple mono- and disaccharides that mimic glycolipids are known to self-assemble into glycodendrimersomes, which in turn resemble the surface of a cell by encoding carbohydrate activity via supramolecular multivalency. The synthetic challenge of preparing Janus glycodendrimers containing more complex linear and branched glycans has so far prevented access to more realistic cell mimics. However, the present work reports the use of an isothiocyanate-amine “click”-like reaction between isothiocyanate-containing sequence-defined amphiphilic Janus dendrimers and either linear or branched oligosaccharides containing up to six monosaccharide units attached to a hydrophobic amino-pentyl linker, a construct not expected to assemble into glycodendrimersomes. Unexpectedly, these oligoMan-containing dendrimers, which have their hydrophobic linker connected via a thiourea group to the amphiphilic part of Janus glycodendrimers, self-organize into nanoscale glycodendrimersomes. Specifically, the mannose-binding lectins that best agglutinate glycodendrimersomes are those displaying hexamannose. Lamellar “raft-like” nanomorphologies on the surface of glycodendrimersomes, self-organized from these sequence-defined glycans, endow these membrane mimics with high biological activity. |
format | Online Article Text |
id | pubmed-7275670 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | National Academy of Sciences |
record_format | MEDLINE/PubMed |
spelling | pubmed-72756702020-06-11 Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers Xiao, Qi Delbianco, Martina Sherman, Samuel E. Reveron Perez, Aracelee M. Bharate, Priya Pardo-Vargas, Alonso Rodriguez-Emmenegger, Cesar Kostina, Nina Yu Rahimi, Khosrow Söder, Dominik Möller, Martin Klein, Michael L. Seeberger, Peter H. Percec, Virgil Proc Natl Acad Sci U S A Physical Sciences Cell surfaces are often decorated with glycoconjugates that contain linear and more complex symmetrically and asymmetrically branched carbohydrates essential for cellular recognition and communication processes. Mannose is one of the fundamental building blocks of glycans in many biological membranes. Moreover, oligomannoses are commonly found on the surface of pathogens such as bacteria and viruses as both glycolipids and glycoproteins. However, their mechanism of action is not well understood, even though this is of great potential interest for translational medicine. Sequence-defined amphiphilic Janus glycodendrimers containing simple mono- and disaccharides that mimic glycolipids are known to self-assemble into glycodendrimersomes, which in turn resemble the surface of a cell by encoding carbohydrate activity via supramolecular multivalency. The synthetic challenge of preparing Janus glycodendrimers containing more complex linear and branched glycans has so far prevented access to more realistic cell mimics. However, the present work reports the use of an isothiocyanate-amine “click”-like reaction between isothiocyanate-containing sequence-defined amphiphilic Janus dendrimers and either linear or branched oligosaccharides containing up to six monosaccharide units attached to a hydrophobic amino-pentyl linker, a construct not expected to assemble into glycodendrimersomes. Unexpectedly, these oligoMan-containing dendrimers, which have their hydrophobic linker connected via a thiourea group to the amphiphilic part of Janus glycodendrimers, self-organize into nanoscale glycodendrimersomes. Specifically, the mannose-binding lectins that best agglutinate glycodendrimersomes are those displaying hexamannose. Lamellar “raft-like” nanomorphologies on the surface of glycodendrimersomes, self-organized from these sequence-defined glycans, endow these membrane mimics with high biological activity. National Academy of Sciences 2020-06-02 2020-05-18 /pmc/articles/PMC7275670/ /pubmed/32424105 http://dx.doi.org/10.1073/pnas.2003938117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) . |
spellingShingle | Physical Sciences Xiao, Qi Delbianco, Martina Sherman, Samuel E. Reveron Perez, Aracelee M. Bharate, Priya Pardo-Vargas, Alonso Rodriguez-Emmenegger, Cesar Kostina, Nina Yu Rahimi, Khosrow Söder, Dominik Möller, Martin Klein, Michael L. Seeberger, Peter H. Percec, Virgil Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title | Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title_full | Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title_fullStr | Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title_full_unstemmed | Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title_short | Nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined Janus glycodendrimers |
title_sort | nanovesicles displaying functional linear and branched oligomannose self-assembled from sequence-defined janus glycodendrimers |
topic | Physical Sciences |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7275670/ https://www.ncbi.nlm.nih.gov/pubmed/32424105 http://dx.doi.org/10.1073/pnas.2003938117 |
work_keys_str_mv | AT xiaoqi nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT delbiancomartina nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT shermansamuele nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT reveronperezaraceleem nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT bharatepriya nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT pardovargasalonso nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT rodriguezemmeneggercesar nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT kostinaninayu nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT rahimikhosrow nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT soderdominik nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT mollermartin nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT kleinmichaell nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT seebergerpeterh nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers AT percecvirgil nanovesiclesdisplayingfunctionallinearandbranchedoligomannoseselfassembledfromsequencedefinedjanusglycodendrimers |