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Department of Physics and Chemistry
Bioinspired Organic Materials Laboratory
1. Journal Articles
Tailoring Biosensor Interfaces: Polydopamine-Assisted Surface Functionalization for Enabling Biorecognition
Son, Nayoung
;
Hong, Seonki
Department of Physics and Chemistry
Bioinspired Organic Materials Laboratory
1. Journal Articles
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Title
Tailoring Biosensor Interfaces: Polydopamine-Assisted Surface Functionalization for Enabling Biorecognition
Issued Date
2025-09
Citation
Materials Today, v.88, pp.871 - 887
Type
Article
Author Keywords
Polydopamine
;
Surface immobilization
;
Biosensors
;
Bioreceptors
;
Biointerface
;
Molecularly imprinted polymers
Keywords
CONTROLLED CELL-ADHESION
;
DOPAMINE POLYMERIZATION
;
WET ADHESION
;
THIN-FILM
;
NANOPARTICLES
;
DNA
;
FABRICATION
;
DEPOSITION
;
ELECTRODEPOSITION
;
IMMOBILIZATION
ISSN
1369-7021
Abstract
Polydopamine (pDA)–based surface engineering has garnered significant attention as a bioinspired and versatile strategy for enhancing the performance of biosensing platforms. Its strong adhesion to a wide range of substrates, combined with excellent biocompatibility, enables seamless integration into diverse sensing systems. This review summarizes recent advances in pDA-based coatings, with a particular focus on synthetic strategies, surface functionalization techniques, and their applications in biosensors for biomarker detection in biofluids. Special emphasis is placed on immobilization techniques for protein-based bioreceptors, nucleic acids, and blocking agents used to minimize nonspecific interactions. Furthermore, emerging applications of engineered pDA as synthetic receptors via molecular imprinting are discussed. Although current approaches remain largely limited to laboratory settings and require validation for scalable production, this review envisions the integration of molecular-level insights with practical design strategies to drive the development of next-generation pDA-enabled biosensing technologies. © 2025 Elsevier Ltd
URI
https://scholar.dgist.ac.kr/handle/20.500.11750/58663
DOI
10.1016/j.mattod.2025.06.021
Publisher
Elsevier
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