Thermally Switchable Nanogate Based on Polymer Phase Transition

Publication date

2023-06-14

Authors

Kolbeck, Pauline J.ISNI 0000000512545531
Benaoudia, Dihia
Chazot-Franguiadakis, Léa
Delecourt, Gwendoline
Mathé, Jérôme
Li, Sha
Bonnet, Romeo
Martin, Pascal
Lipfert, JanISNI 000000041957029X
Salvetti, Anna

Editors

Advisors

Supervisors

Document Type

Letter
Open Access logo

License

taverne

Abstract

Mimicking and extending the gating properties of biological pores is of paramount interest for the fabrication of membranes that could be used in filtration or drug processing. Here, we build a selective and switchable nanopore for macromolecular cargo transport. Our approach exploits polymer graftings within artificial nanopores to control the translocation of biomolecules. To measure transport at the scale of individual biomolecules, we use fluorescence microscopy with a zero-mode waveguide set up. We show that grafting polymers that exhibit a lower critical solution temperature creates a toggle switch between an open and closed state of the nanopore depending on the temperature. We demonstrate tight control over the transport of DNA and viral capsids with a sharp transition (∼1 °C) and present a simple physical model that predicts key features of this transition. Our approach provides the potential for controllable and responsive nanopores in a range of applications.

Keywords

biomolecule filtration, coil-globule transition, nanopore, thermoresponsive polymer, zero-mode waveguide, Taverne, Bioengineering, General Chemistry, General Materials Science, Condensed Matter Physics, Mechanical Engineering

Citation

Kolbeck, P J, Benaoudia, D, Chazot-Franguiadakis, L, Delecourt, G, Mathé, J, Li, S, Bonnet, R, Martin, P, Lipfert, J, Salvetti, A, Boukhet, M, Bennevault, V, Lacroix, J C, Guégan, P & Montel, F 2023, 'Thermally Switchable Nanogate Based on Polymer Phase Transition', Nano Letters, vol. 23, no. 11, pp. 4862-4869. https://doi.org/10.1021/acs.nanolett.3c00438