Two-Dimensional Nucleic Acid Brushes on Colloidal MXene Sheets

Authors
Lee, JiyoungYoon, JaeeunPark, Ki HongLee, JuyunHwang, Jin HyunNa, JongbeomKim, HojunKim, MijinKim, Seon JoonYun, HongseokOh, Taegon
Issue Date
2025-12
Publisher
American Chemical Society
Citation
Nano Letters, v.25, no.52, pp.18016 - 18025
Abstract
DNA immobilization on nanoparticle surfaces enables programmable assembly, gene sensing, and intracellular delivery. However, dense, direct functionalization of atomically thin two-dimensional (2D) materials remains challenging due to their inert basal planes. In contrast, 2D transition metal carbides (MXenes) possess highly polar, chemically active surfaces terminated with −OH, −O–, and −F groups, offering a unique platform for biofunctionalization. Herein, we exploit MXene’s surface chemistry for robust DNA grafting via designing a bifunctional catechol- and azide-terminated ligand. The catechol moiety anchors strongly to the MXene surface, while the azide group enables strain-promoted cycloaddition with dibenzocyclooctyne-terminated DNA. The resulting 2D DNA brush exhibits a high grafting density, evidenced by sequence-controlled self-assembly of MXene flakes and heteroassembly with complementary Au nanoparticles. This work presents a simple, effective strategy for producing colloidal two-dimensional nucleic acid brushes, establishing a versatile platform for further exploration of such bioactive nanobrush structures in the fields of nanoscience and biotechnology.
Keywords
SURFACE FUNCTIONALIZATION; DNA; NANOPARTICLES; NANOSHEETS; Surface chemistry; DNA conjugation; Two-dimensional material; Self-assembly; MXene; Surface functionalization
ISSN
1530-6984
URI
https://pubs.kist.re.kr/handle/201004/153989
DOI
10.1021/acs.nanolett.5c04642
Appears in Collections:
KIST Article > 2025
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