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Published on: August 3, 2018
Optimization of the Quantum-Si Platinum Single-Molecule Protein Sequencing Platform Toward Improved Complex-Matrix
Tomasz A Leski1, Sean M Brown2, Zachary T Johnson1
1Center for Biomolecular Science and Engineering, US Naval Research Laboratory, Washington 20375, D.C., United States.
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Proteins are a class of macromolecules with essential roles in processes and structures associated with life. Protein sequencing technologies are, therefore, fundamental for understanding cell metabolic pathways, disease mechanisms, and how pathogenic agents and toxins function. Emerging next-generation protein sequencing (NGPS) technologies promise a dramatic improvement in proteomics, enabling the identification of pathogens and toxins with unparalleled sensitivity and precision. The Quantum-Si (QSi) Platinum Sequencer is an emerging single-molecule protein sequencing technology capable of single amino acid resolution. In this work, we conducted significant optimization of the QSi protein library preparation protocol, reducing sample preparation time from 32 to 10 h without sacrificing substantial sequencing quality, allowing for a sample-to-answer timeline in less than 24 h. The modified protocol was applied for analyzing a set of proteins including 16 single-domain antibodies with diverse sequences and a nontoxic derivative of staphylococcal enterotoxin B. We were further able to determine the library dilution threshold: losing the ability to sequence beyond a 100× dilution. Finally, we were able to successfully obtain protein sequences within a crude bacterial cell lysate background, demonstrating the effectiveness of sequencing in complex protein mixtures. Improvements in sequencing chemistry and data processing may soon lessen or eliminate the dependence on reference sequences, a current obstacle for efficiently characterizing unknown proteins. By further condensing and optimizing library preparation, this technique presents a potential application for proteomics that requires rapid characterization of highly complex biological systems, significantly improving protein-based diagnostic technologies.

