4.8 Article

Electroosmotic Trap Against the Electrophoretic Force Near a Protein Nanopore Reveals Peptide Dynamics During Capture and Translocation

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 8, Issue 20, Pages 13166-13179

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.6b03697

Keywords

electroosmosis; alpha-hemolysin; nanopore; peptide transport; single-molecule

Funding

  1. National Research Foundation of Korea (NRF) [2016R1A2A1A05005440]
  2. Global Research Laboratory (GRL) [NRF-2014K1A1A2064460]
  3. MUPUNA project [HP10BTMWRN]
  4. [PN-II-ID-PCCE-2011-2-0027]
  5. [PN-II-PT-PCCA-2011-3.1-0595]
  6. [PN-II-PT-PCCA-2011-3.1-0402]
  7. [64/01.10.2015 PN-II-RU-TE-2014-4-2388]

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We report on the ability to control the dynamics of a single peptide capture and passage across a voltage-biased, alpha-hemolysin nanopore (alpha-HL), under conditions that the electroosmotic force exerted on the analyte dominates the electrophoretic transport. We demonstrate that by extending outside the nanopore, the electroosmotic force is able to capture a peptide at either the lumen or vestibule entry of the nanopore, and transiently traps it inside the nanopore, against the electrophoretic force. Statistical analysis of the resolvable dwell-times of a metastable trapped peptide, as it occupies either the beta-barrel or vestibule domain of the alpha-HL nanopore, reveals rich kinetic details regarding the direction and rates of stochastic movement of a peptide inside the nanopore. The presented approach demonstrates the ability to shuttle and study molecules along the passage pathway inside the nanopore, allows to identify the mesoscopic trajectory of a peptide exiting the nanopore through either the vestibule or beta-barrel moiety, thus providing convincing proof of a molecule translocating the pore. The kinetic analysis of a peptide fluctuating between various microstates inside the nanopore, enabled a detailed picture of the free energy description of its interaction with the alpha-HL nanopore. When studied at the limit of vanishingly low transmembrane potentials, this provided a thermodynamic description of peptide reversible binding to and within the alpha-HL nanopore, under equilibrium conditions devoid of electric and electroosmotic contributions.

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