bioRxiv Science⌕ Search

Biology subjects

Timp, G.

Publications and source records attributed to Timp, G..

2 recordsLinked to original sources

Decoding Proteoforms with Single Acid Resolution Using a Sub-nanometer Diameter Pore

When a denatured protein isoform (i.e., a proteoform) immersed in electrolyte is impelled by an electric field through a sub-nanometer-diameter pore (i.e., a sub-nanopore) spanning a thin membrane, the sequence of amino acid (AA) residues constituting the proteoform can be directly "read" one at a time by measuring fluctuations in the electrolytic current. Corroborating this assertion, an analysis of the pore current with molecular dynamic (MD) simulations reveals that the fluctuations are correlated to the sequence of AA volumes, the water in the pore and affected by the acid mobility. After alignment to account for variations in the acid mobility, the simulated pore current is nearly perfectly correlated to the pattern of empirical fluctuations. To prove out the prospects for decoding proteoforms this way, site-specific post-translational modifications (PTMs) and point mutations in amyloid-beta (A{beta} 1-42) are analyzed with a sub-nanopore assay. The results show that single acids can be resolved in proteoforms with a dynamic range limited by the size of phenylalanine and glycine. With this sensitivity and single acid resolution, the sequence of a scrambled variant of A{beta} 1-42 was discriminated with a p-value < 10-5.

biophysics↗

Calling the Amino Acid Sequence of a Protein/Peptide from the Nanospectrum Produced by a Sub-nanometer Diameter Pore

The blockade current that develops when a protein translocates across a thin membrane through a sub-nanometer diameter pore (i.e., a nanospectrum) informs with extreme sensitivity on the sequence of amino acids that constitute the protein. Whereas mass spectrometry (MS) is still the dominant technology for protein identification, it suffers limitations. In proteome-wide studies, MS fails to sequence proteins de novo, but merely classifies a protein and it is not very sensitive requiring about a femtomole to do that. Compared with MS, a sub-nanometer diameter pore (i.e. a sub-nanopore) directly reads the amino acids constituting a single protein molecule, but efficient computational tools are still required for processing and interpreting the blockade current. Here, we delineate computational methods for processing sub-nanopore nanospectra and predicting electrical blockade currents from protein sequences, which are essential for protein identification.

bioinformatics↗