Resolved single-molecule detection of individual species within a mixture of anti-biotin antibodies using an engineered monomeric nanopore.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 25575121.
- Also identified by DOI 10.1021/nn506606e and PMC identifier 4958048.
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Abstract
Oligomeric protein nanopores with rigid structures have been engineered for the purpose of sensing a wide range of analytes including small molecules and biological species such as proteins and DNA. We chose a monomeric β-barrel porin, OmpG, as the platform from which to derive the nanopore sensor. OmpG is decorated with seven flexible loops that move dynamically to create a distinct gating pattern when ionic current passes through the pore. Biotin was chemically tethered to the most flexible one of these loops. The gating characteristic of the loop's movement in and out of the porin was substantially altered by analyte protein binding. The gating characteristics of the pore with bound targets were remarkably sensitive to molecular identity, even providing the ability to distinguish between homologues within an antibody mixture. A total of five gating parameters were analyzed for each analyte to create a unique fingerprint for each biotin-binding protein. Our exploitation of gating noise as a molecular identifier may allow more sophisticated sensor design, while OmpG's monomeric structure greatly simplifies nanopore production.
Medical subject headings
- Antibodies, Monoclonal
- Bacterial Outer Membrane Proteins
- Biosensing Techniques
- Biotin
- Engineering
- Escherichia coli Proteins
- Nanopores
- Nanotechnology
- Porins