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Autori principali: Liu, Funing, Hu, Qitao, Sabantsev, Anton, Di Muccio, Giovanni, Zeng, Shuangshuang, Chinappi, Mauro, Deindl, Sebastian, Zhang, Zhen
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2512.13179
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author Liu, Funing
Hu, Qitao
Sabantsev, Anton
Di Muccio, Giovanni
Zeng, Shuangshuang
Chinappi, Mauro
Deindl, Sebastian
Zhang, Zhen
author_facet Liu, Funing
Hu, Qitao
Sabantsev, Anton
Di Muccio, Giovanni
Zeng, Shuangshuang
Chinappi, Mauro
Deindl, Sebastian
Zhang, Zhen
contents Biomolecules exhibit dynamic conformations critical to their functions, yet observing these processes at the single-molecule level under native conditions remains a formidable challenge. While surface immobilization has been widely used to extend observation times, it could disrupt molecular dynamics and impede biological function. Moreover, the study of weak molecular interactions requires high local concentrations, often leading to problems with signal saturation in fluorescence-based approaches. Recent advancements in single-molecule trapping techniques have addressed some limitations, but achieving precise, controllable, long-term trapping in a molecularly crowded environment without external forces remains difficult. Here, we introduce a nanopore-gated sub-attoliter silicon nanocavity that enables precise, non-perturbative trapping of individual biomolecules for extended observation times, eliminating the need for external forces. Using nucleosomes as model systems, we demonstrate single-molecule Förster resonance energy transfer (smFRET) to monitor relative distances. Our data also show that an applied electric field can modulate the conformational properties of macromolecules, emphasizing a key advantage of our device: it does not require an electric field to retain trapped molecules. We envision this nanocavity platform as a powerful tool for interrogating molecular dynamics in physiologically relevant environments, offering unperturbed access to weak and transient interactions that are central to biological regulation.
format Preprint
id arxiv_https___arxiv_org_abs_2512_13179
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A nanopore-gated sub-attoliter silicon nanocavity for single-molecule trapping and analysis
Liu, Funing
Hu, Qitao
Sabantsev, Anton
Di Muccio, Giovanni
Zeng, Shuangshuang
Chinappi, Mauro
Deindl, Sebastian
Zhang, Zhen
Instrumentation and Detectors
92-11
Biomolecules exhibit dynamic conformations critical to their functions, yet observing these processes at the single-molecule level under native conditions remains a formidable challenge. While surface immobilization has been widely used to extend observation times, it could disrupt molecular dynamics and impede biological function. Moreover, the study of weak molecular interactions requires high local concentrations, often leading to problems with signal saturation in fluorescence-based approaches. Recent advancements in single-molecule trapping techniques have addressed some limitations, but achieving precise, controllable, long-term trapping in a molecularly crowded environment without external forces remains difficult. Here, we introduce a nanopore-gated sub-attoliter silicon nanocavity that enables precise, non-perturbative trapping of individual biomolecules for extended observation times, eliminating the need for external forces. Using nucleosomes as model systems, we demonstrate single-molecule Förster resonance energy transfer (smFRET) to monitor relative distances. Our data also show that an applied electric field can modulate the conformational properties of macromolecules, emphasizing a key advantage of our device: it does not require an electric field to retain trapped molecules. We envision this nanocavity platform as a powerful tool for interrogating molecular dynamics in physiologically relevant environments, offering unperturbed access to weak and transient interactions that are central to biological regulation.
title A nanopore-gated sub-attoliter silicon nanocavity for single-molecule trapping and analysis
topic Instrumentation and Detectors
92-11
url https://arxiv.org/abs/2512.13179