Sequence-Defined Heteromultivalent Precision Glycomacromolecules Bearing Sulfonated/Sulfated Nonglycosidic Moieties Preferentially Bind Galectin-3 and Delay Wound Healing of a Galectin-3 Positive Tumor Cell Line in an In Vitro Wound Scratch Assay.

dc.contributor.author

Freichel, Tanja

dc.contributor.author

Heine, Viktoria

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Laaf, Dominic

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Mackintosh, Eleanor E

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Sarafova, Sophia

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Elling, Lothar

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Snyder, Nicole L

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Hartmann, Laura

dc.date.accessioned

2024-10-22T19:29:50Z

dc.date.available

2024-10-22T19:29:50Z

dc.date.issued

2020-09

dc.description.abstract

Within this work, a new class of sequence-defined heteromultivalent glycomacromolecules bearing lactose residues and nonglycosidic motifs for probing glycoconjugate recognition in carbohydrate recognition domain (CRD) of galectin-3 is presented. Galectins, a family of β-galactoside-binding proteins, are known to play crucial roles in different signaling pathways involved in tumor biology. Thus, research has focused on the design and synthesis of galectin-targeting ligands for use as diagnostic markers or potential therapeutics. Heteromultivalent precision glycomacromolecules have the potential to serve as ligands for galectins. In this work, multivalency and the introduction of nonglycosidic motifs bearing either neutral, amine, or sulfonated/sulfated groups are used to better understand binding in the galectin-3 CRD. Enzyme-linked immunosorbent assays and surface plasmon resonance studies are performed, revealing a positive impact of the sulfonated/sulfated nonglycosidic motifs on galectin-3 binding but not on galectin-1 binding. Selected compounds are then tested with galectin-3 positive MCF 7 breast cancer cells using an in vitro would scratch assay. Preliminary results demonstrate a differential biological effect on MCF 7 cells with high galectin-3 expression in comparison to an HEK 293 control with low galectin-3 expression, indicating the potential for sulfonated/sulfated heteromultivalent glycomacromolecules to serve as preferential ligands for galectin-3 targeting.

dc.identifier.issn

1616-5187

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1616-5195

dc.identifier.uri

https://hdl.handle.net/10161/31581

dc.language

eng

dc.publisher

Wiley

dc.relation.ispartof

Macromolecular bioscience

dc.relation.isversionof

10.1002/mabi.202000163

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.subject

Cell Line, Tumor

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Humans

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Sulfonic Acids

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Macromolecular Substances

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Glycosides

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Polysaccharides

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Galectin 3

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Spectroscopy, Fourier Transform Infrared

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Surface Plasmon Resonance

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Wound Healing

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HEK293 Cells

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MCF-7 Cells

dc.title

Sequence-Defined Heteromultivalent Precision Glycomacromolecules Bearing Sulfonated/Sulfated Nonglycosidic Moieties Preferentially Bind Galectin-3 and Delay Wound Healing of a Galectin-3 Positive Tumor Cell Line in an In Vitro Wound Scratch Assay.

dc.type

Journal article

duke.contributor.orcid

Sarafova, Sophia|0009-0002-2337-506X

pubs.begin-page

e2000163

pubs.issue

9

pubs.organisational-group

Duke

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School of Medicine

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Basic Science Departments

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Integrative Immunobiology

pubs.publication-status

Published

pubs.volume

20

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