Effective charge and free energy of DNA inside an ion channel
Jingshan Zhang, B. I. Shklovskii

TL;DR
This paper explains the effective charge measurements of DNA translocating through an ion channel by analyzing the self-energy effects and relates various effective charges to the physical processes involved in DNA capture, translocation, and escape.
Contribution
It introduces a theoretical framework linking stall, capture, unzipping, and escape charges of DNA in ion channels, accounting for dielectric effects and voltage dependence.
Findings
Effective charges are explained by self-energy barriers.
The stall charge is proportional to ion current blockade.
Voltage reduces the DNA capture barrier, influenced by salt concentration.
Abstract
Translocation of a single stranded DNA (ssDNA) through an alpha-hemolysin channel in a lipid membrane driven by applied transmembrane voltage V was extensively studied recently. While the bare charge of the ssDNA piece inside the channel is approximately 12 (in units of electron charge) measurements of different effective charges resulted in values between one and two. We explain these challenging observations by a large self-energy of a charge in the narrow water filled gap between ssDNA and channel walls, related to large difference between dielectric constants of water and lipid, and calculate effective charges of ssDNA. We start from the most fundamental stall charge , which determines the force stalling DNA against the voltage V (L is the length of the channel). We show that the stall charge is proportional to the ion current blocked by DNA, which is small…
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