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De novo design of semisynthetic conduction pores.

Created on 22 Sep 2026

Authors

Lee Schnaider, A Katherine Hatstat, Alistair J Scott, Sophia K Tan, Richard G Hambley, William M Dawson, Rhys C Griffiths, Rian C Kormos, Arthur A Melo, Eric Tse, Nicholas F Polizzi, E Jayne Wallace, Gregory E Merz, William F DeGrado

Published in

Nature structural & molecular biology. Sep 21, 2026. Epub Sep 21, 2026.

Abstract

Protein pores used for molecular sensing are generally assembled from large, multi-subunit natural proteins. Their ion conductance, and thus performance in sensing applications, depends on lumen geometry and chemistry. Here rather than designing a new pore or relying only on mutations to a natural scaffold, we show that installing additional de novo subunits to native protein pore complexes enables large-scale architectural changes. We design de novo proteins that integrate seamlessly with CsgG, a pore widely used in sensing applications, to form 18-subunit, 315-kilodalton semisynthetic conduction pores. This required designing within a confined, nonuniform pore under ninefold symmetry and maintaining an open conducting lumen with a stable, low-noise baseline current. The complexes exhibit distinct current-voltage responses relative to the native pore, including clear rectification, while cryo-electron microscopy confirms the designed lumen architecture, establishing a strategy for modifying existing nano-assemblies with designed protein components under stringent symmetry and structural constraints.

PMID:
42768128
Bibliographic data and abstract were imported from PubMed on 22 Sep 2026.

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