Nonexponential kinetics of DNA escape from α-hemolysin nanopores

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Abstract

Throughput and resolution of DNA sequence detection technologies employing nanometer scale pores hinge on accurate kinetic descriptions of DNA motion in nanopores. We present the first detailed experimental study of DNA escape kinetics from α-hemolysin nanopores and show that anomalously long escape times for some events result in nonexponential kinetics. From the distribution of first-passage times, we determine that the energy barrier to escape follows a Poisson-like distribution, most likely due to stochastic weak binding events between the DNA and amino acid residues in the pore. © 2008 by the Biophysical Society.

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Wiggin, M., Tropini, C., Tabard-Cossa, V., Jetha, N. N., & Marziali, A. (2008). Nonexponential kinetics of DNA escape from α-hemolysin nanopores. Biophysical Journal, 95(11), 5317–5323. https://doi.org/10.1529/biophysj.108.137760

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