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Experimental study of a nanoscale translocation ratchet.


ABSTRACT: Despite an extensive theoretical and numerical background, the translocation ratchet mechanism, which is fundamental for the transmembrane transport of biomolecules, has never been experimentally reproduced at the nanoscale. Only the Sec61 and bacterial type IV pilus pores were experimentally shown to exhibit a translocation ratchet mechanism. Here we designed a synthetic translocation ratchet and quantified its efficiency as a nanopump. We measured the translocation frequency of DNA molecules through nanoporous membranes and showed that polycations at the trans side accelerated the translocation in a ratchet-like fashion. We investigated the ratchet efficiency according to geometrical and kinetic parameters and observed the ratchet to be only dependent on the size of the DNA molecule with a power law [Formula: see text]. A threshold length of 3 kbp was observed, below which the ratchet did not operate. We interpreted this threshold in a DNA looping model, which quantitatively explained our results.

SUBMITTER: Molcrette B 

PROVIDER: S-EPMC9335228 | biostudies-literature | 2022 Jul

REPOSITORIES: biostudies-literature

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Experimental study of a nanoscale translocation ratchet.

Molcrette Bastien B   Chazot-Franguiadakis Léa L   Liénard François F   Balassy Zsombor Z   Freton Céline C   Grangeasse Christophe C   Montel Fabien F  

Proceedings of the National Academy of Sciences of the United States of America 20220718 30


Despite an extensive theoretical and numerical background, the translocation ratchet mechanism, which is fundamental for the transmembrane transport of biomolecules, has never been experimentally reproduced at the nanoscale. Only the Sec61 and bacterial type IV pilus pores were experimentally shown to exhibit a translocation ratchet mechanism. Here we designed a synthetic translocation ratchet and quantified its efficiency as a nanopump. We measured the translocation frequency of DNA molecules t  ...[more]

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