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Ianiro, A.

Publications and source records attributed to Ianiro, A..

2 recordsLinked to original sources

Characterization of Single Ribosomes and Virus Particles with Large-Diameter Perfringolysin O Nanopores

Existing biological nanopores are often too narrow to accommodate large proteins and biomolecular complexes in their native folded states, precluding the analysis of megadalton assemblies. Here, we report the self-assembly of the cholesterol-dependent cytolysin Perfringolysin O (PFO) into stable transmembrane nanopores composed of 46 {+/-} 9 monomers, with an inner pore diameter of 28.5 {+/-} 5.6 nm and a length of 9.8 nm. We demonstrate that despite the large size of the pore assembly, PFO pores exhibit a stable open-pore current with a high signal-to-noise ratio, making them suitable for resistive-pulse recordings. Moreover, PFO nanopores enable accurate, calibration-free, and label-free sizing of individual proteins, multi-protein complexes, and viral particles across a large molecular-weight range spanning 50 kDa to 3.4 MDa. The exceptionally large diameter of these pores enables, for the first time, resistive-pulse-based characterization of intact virus particles and ribosomes with a biological nanopore. Specifically, we determined the volume, shape, and diameter of complete capsids of recombinant adeno-associated virus serotype 2 (rAAV2) as well as capsid fragments. Finally, simultaneous analysis of molecular volume and shape resolved intact 70S ribosomes from their dissociated 30S and 50S subunits in a mixture. By extending biological nanopore sensing to single-particle characterization of large protein complexes well beyond the reach of existing pores, this approach introduces PFO nanopores as a versatile platform for label-free, single-particle analysis in solution.

biophysics↗

Pneumolysin nanopores with 20 nm inner diameter to characterize the size and shape of Tau oligomers

Protein nanopores are emerging as versatile tools to fingerprint biomolecules due to their capability to characterize single molecules without the requirement for labeling. A long-standing challenge with biological nanopores is, however, that large biomolecules in their native state are often too large to enter these pores. Here, we report the self-assembly of approximately 35 {+/-} 5 pneumolysin (PLY) toxins to a stable transmembrane pore with a diameter of 20 {+/-} 3 nm, an effective length of 9.5 nm, and excellent low noise characteristics in the context of nanopore-based resistive pulse recordings. The exceptionally large pore diameter enables the characterization of the size and shape of individual proteins and protein complexes ranging in molecular weight from 50 kDa to 0.8 MDa. Moreover, PLY pores make it possible to follow the time course of the formation of oligomers of tau protein in solution by revealing the size, monomer number, approximate shape, and abundance of these oligomers. At least four characteristics make PLY pores well suited for the characterization of heterogeneous amyloid oligomer samples: First, they are not prone to clogging. Second, they provide label-free single particle analysis. Third, their large diameters make it possible to characterize a wide range of amyloid oligomer sizes with high resolution. And fourth, resistive pulse recordings from these pores provide stable open pore current baselines with low electrical noise.

biophysics↗