Zheng Tingting, O'Neill Caoimhe, Marshall John F, Iskratsch Thomas, Palma Matteo
Department of Chemistry, Queen Mary University of London Mile End Road London E1 4NS UK
School of Engineering and Materials Science, Queen Mary University of London Mile End Road London E1 4NS UK
Mater Adv. 2024 Nov 4;5(23):9376-9382. doi: 10.1039/d4ma00828f. eCollection 2024 Nov 25.
Here we present a nanopatterning strategy utilising thermal scanning probe lithography (t-SPL) for the precise organisation of DNA origami into nanoarrays. The aim of this approach is to demonstrate control in the fabrication of nanoarray platforms exhibiting single-molecule accuracy. Combining the inherent programmability of DNA origami structures with t-SPL nanopatterning, we demonstrated the controlled immobilisation on surfaces of functionalised DNA origami - as proof of concept we employed gold nanoparticles (AuNPs) and quantum dots (QDs) - at predefined positions and in nanoarray configurations. This method holds great potential for the construction of hetero-functionalised biomolecular nanoarrays with single-molecule control, with applications in bionanotechnology and (nano)materials science.
在此,我们展示了一种利用热扫描探针光刻技术(t-SPL)将DNA折纸精确组装成纳米阵列的纳米图案化策略。该方法的目的是在制造具有单分子精度的纳米阵列平台时实现控制。将DNA折纸结构固有的可编程性与t-SPL纳米图案化相结合,我们证明了功能化DNA折纸在表面的可控固定——作为概念验证,我们使用了金纳米颗粒(AuNP)和量子点(QD)——在预定义位置并呈纳米阵列构型。这种方法在构建具有单分子控制的异质功能化生物分子纳米阵列方面具有巨大潜力,可应用于生物纳米技术和(纳米)材料科学。