0000000000161162

AUTHOR

Seah Ling Kuan

showing 5 related works from this author

Engineering von Proteinen an Oberflächen: Von komplementärer Charakterisierung zu Materialoberflächen mit maßgeschneiderten Funktionen

2018

Chemistry02 engineering and technologyGeneral Medicine010402 general chemistry021001 nanoscience & nanotechnology0210 nano-technology01 natural sciences0104 chemical sciencesAngewandte Chemie
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Chemoselective Dual Labeling of Native and Recombinant Proteins

2017

The attachment of two different functionalities in a site-selective fashion represents a great challenge in protein chemistry. We report site specific dual functionalizations of peptides and proteins capitalizing on reactivity differences of cysteines in their free (thiol) and protected, oxidized (disulfide) forms. The dual functionalization of interleukin 2 and EYFP proceeded with no loss of bioactivity in a stepwise fashion applying maleimide and disulfide rebridging allyl-sulfone groups. In order to ensure broader applicability of the functionalization strategy, a novel, short peptide sequence that introduces a disulfide bridge was designed and site-selective dual labeling in the presenc…

0301 basic medicineModels MolecularBiomedical EngineeringPharmaceutical ScienceBioengineering010402 general chemistry01 natural scienceslaw.inventionCell LineMaleimides03 medical and health scienceschemistry.chemical_compoundMiceBacterial ProteinslawAnimalsHumansReactivity (chemistry)CysteineSulfhydryl CompoundsSulfonesMaleimidePeptide sequenceDual labelingPharmacologychemistry.chemical_classificationStaining and LabelingCommunicationOrganic ChemistryDisulfide bondProteinsCombinatorial chemistryRecombinant Proteins0104 chemical sciencesAllyl CompoundsLuminescent Proteins030104 developmental biologychemistryThiolRecombinant DNASurface modificationInterleukin-2PeptidesBiotechnologyBioconjugate Chemistry
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Engineering Proteins at Interfaces: From Complementary Characterization to Material Surfaces with Designed Functions

2018

Abstract Once materials come into contact with a biological fluid containing proteins, proteins are generally—whether desired or not—attracted by the material's surface and adsorb onto it. The aim of this Review is to give an overview of the most commonly used characterization methods employed to gain a better understanding of the adsorption processes on either planar or curved surfaces. We continue to illustrate the benefit of combining different methods to different surface geometries of the material. The thus obtained insight ideally paves the way for engineering functional materials that interact with proteins in a predetermined manner.

Surface (mathematics)Protein FoldingMaterials scienceSurface PropertiesengineeringReviewsNanotechnology02 engineering and technologyReview010402 general chemistryProtein Engineering01 natural sciencesCatalysisBiological fluidTheranostic NanomedicineNanomaterialsinterfacesAdsorptionPlanarCharacterization methodscharacterizationnanomaterialsDrug CarriersProteinsGeneral Chemistry021001 nanoscience & nanotechnologyprotein adsorption0104 chemical sciencesCharacterization (materials science)NanostructuresProtein Corona0210 nano-technologyProtein adsorptionProtein BindingAngewandte Chemie (International Ed. in English)
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A Polyphenylene Dendrimer Drug Transporter with Precisely Positioned Amphiphilic Surface Patches

2014

The design and synthesis of a polyphenylene dendrimer (PPD 3) with discrete binding sites for lipophilic guest molecules and characteristic surface patterns is presented. Its semi-rigidity in combination with a precise positioning of hydrophilic and hydrophobic groups at the periphery yields a refined architecture with lipophilic binding pockets that accommodate defined numbers of biologically relevant guest molecules such as fatty acids or the drug doxorubicin. The size, architecture, and surface textures allow to even penetrate brain endothelial cells that are a major component of the extremely tight blood-brain barrier. In addition, low to no toxicity is observed in in vivo studies using…

DendrimersScaffoldEmbryo NonmammalianMaterials sciencePolymersStereochemistryBiomedical EngineeringPharmaceutical ScienceChemistry Techniques SyntheticBlood–brain barrierCell LineBiomaterialsMiceIn vivoDendrimerAmphiphilemedicineAnimalsHumansMoleculeTissue DistributionBinding siteZebrafishDrug CarriersBrainEndothelial CellsTransportermedicine.anatomical_structureDoxorubicinDrug DesignBiophysicsHydrophobic and Hydrophilic InteractionsAdvanced Healthcare Materials
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Polymer Complexes in Biological Applications

2013

This chapter summarizes the influence of polyelectrolyte topology on biological functions and biomedical applications such as cell uptake, drug delivery, and gene transfection. Polyelectrolytes utilized are spherical structures derived from dendrimers and albumin or cylindrical brushes, all of which are decorated with various polypeptide chains.

chemistry.chemical_classificationMaterials scienceNanotechnologyPolymerHuman serum albuminPolyelectrolyteCaveolae-mediated endocytosisPlasmid dnachemistryDendrimerDrug deliverymedicineOrganic chemistryTopology (chemistry)medicine.drug
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