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Updated: Feb 8, 2026

Monitoring Protein Adsorption with Solid-state Nanopores
Published on: December 2, 2011
Uncovering Hidden Protein Conformations with High Bandwidth Nanopore Measurements
Kyril Kavetsky1,2, Sabine Hong1, Chih-Yuan Lin1
1Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
Abstract:
Advanced nanopore measurements allow structural probing of molecules with high spatial and temporal resolution. We report high signal-to-noise, 1-10 MHz bandwidth, translocation measurements of the multistate folding of heme protein cytochrome c in KCl solution through optimally designed silicon nitride pores of 2.3 - 3.3 nm diameter and 3.6-3.8 nm effective thickness, and an optimal concentration of a denaturant (Gdm-Cl). The pore diameter is slightly smaller than the protein's size, forcing the protein to squeeze through the pore. The sufficiently large pore thickness allows enough time for protein probing at an applied field of ∼ 250 kV/cm. Through Bayesian Information Criterion score analysis, current blockades reveal six distinct levels, attributed to specific protein states. We calculate the transition probabilities between the states and the conditional probabilities of the protein leaving the pore from each state. We validate the model by simulating events and comparing them with experimental data.
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