Silane-Based Methyl- and Carboxyl-Functionalized Mica Substrates for High-Speed Atomic Force Microscopy

Abstract High-speed atomic force microscopy (HS-AFM) enables visualization of biomolecular dynamics in solution with high spatiotemporal resolution but requires substrates that support stable adsorption without perturbing their structure or dynamics. Mica is widely used as an HS-AFM substrate because it provides an atomically flat surface. Several methods have been proposed to functionalize mica surfaces, but they are not suitable for all biomolecules. Here, we expand the HS-AFM substrate toolbox by introducing methyl- and carboxyl (COOH)-functionalized mica surfaces based on a common silanization strategy. In particular, a COOH-functionalized mica substrate was prepared via a mild thiol–maleimide coupling reaction, enabling efficient surface modification under aqueous conditions. Using proteins with different charges and shapes, we evaluated adsorption and diffusion behaviors on these substrates by HS-AFM. Distinct differences in molecular mobility and binding were observed depending on surface properties. These results provide practical guidelines for substrate selection and broaden the applicability of HS-AFM to diverse biomolecular systems.

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Publication Details

Journal
Langmuir
Published
2026-09-04
DOI
https://doi.org/10.1021/acs.langmuir.6c02731
Primary Topic
Force Microscopy Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Silane-Based Methyl- and Carboxyl-Functionalized Mica Substrates for High-Speed Atomic Force Microscopy

Kenichi Umeda, Y. Goto, Noriyuki Kodera, Keisuke Miyazawa et al.
Langmuir
Force Microscopy Techniques and Applications
article

Silane-Based Methyl- and Carboxyl-Functionalized Mica Substrates for High-Speed Atomic Force Microscopy

Kenichi Umeda, Y. Goto, Noriyuki Kodera, Keisuke Miyazawa, Hajime Maeda, Takeshi Fukuma, Sohta Yamamoto, Hikaru Ichida, Kaho Nakamoto, Sohkichi Matsumoto, Akihito Nishiyama
article en

Abstract

Abstract High-speed atomic force microscopy (HS-AFM) enables visualization of biomolecular dynamics in solution with high spatiotemporal resolution but requires substrates that support stable adsorption without perturbing their structure or dynamics. Mica is widely used as an HS-AFM substrate because it provides an atomically flat surface. Several methods have been proposed to functionalize mica surfaces, but they are not suitable for all biomolecules. Here, we expand the HS-AFM substrate toolbox by introducing methyl- and carboxyl (COOH)-functionalized mica surfaces based on a common silanization strategy. In particular, a COOH-functionalized mica substrate was prepared via a mild thiol–maleimide coupling reaction, enabling efficient surface modification under aqueous conditions. Using proteins with different charges and shapes, we evaluated adsorption and diffusion behaviors on these substrates by HS-AFM. Distinct differences in molecular mobility and binding were observed depending on surface properties. These results provide practical guidelines for substrate selection and broaden the applicability of HS-AFM to diverse biomolecular systems.

Langmuir
Kanazawa University (JP), Airlangga University (ID), Hokkaido University (JP), Niigata University Medical and Dental Hospital (JP), Osaka City University Hospital (JP), Niigata University (JP)
Support for Pioneering Research Initiated by the Next Generation, Japan Agency for Medical Research and Development, Niigata University, Japan Society for the Promotion of Science, Core Research for Evolutional Science and Technology, Precursory Research for Embryonic Science and Technology
Openalex Percentile: Top 13%
Force Microscopy Techniques and Applications
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