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Optimizing Linear Ion-Trap Data-Independent Acquisition toward Single-Cell Proteomics

  • Teeradon Phlairaharn
  • , Zilu Ye
  • , Elena Krismer
  • , Anna-Kathrine Pedersen
  • , Maik Pietzner
  • , Jesper V. Olsen*
  • , Erwin M. Schoof*
  • , Brian C. Searle*
  • *Corresponding author for this work
  • University of Copenhagen
  • Ohio State University
  • Charité – Universitätsmedizin Berlin

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

A linear ion trap (LIT) is an affordable, robust mass spectrometer that provides fast scanning speed and high sensitivity, where its primary disadvantage is inferior mass accuracy compared to more commonly used time-of-flight or orbitrap (OT) mass analyzers. Previous efforts to utilize the LIT for low-input proteomics analysis still rely on either built-in OTs for collecting precursor data or OT-based library generation. Here, we demonstrate the potential versatility of the LIT for low-input proteomics as a stand-alone mass analyzer for all mass spectrometry (MS) measurements, including library generation. To test this approach, we first optimized LIT data acquisition methods and performed library-free searches with and without entrapment peptides to evaluate both the detection and quantification accuracy. We then generated matrix-matched calibration curves to estimate the lower limit of quantification using only 10 ng of starting material. While LIT-MS1 measurements provided poor quantitative accuracy, LIT-MS2 measurements were quantitatively accurate down to 0.5 ng on the column. Finally, we optimized a suitable strategy for spectral library generation from low-input material, which we used to analyze single-cell samples by LIT-DIA using LIT-based libraries generated from as few as 40 cells.
Original languageEnglish
JournalAnalytical Chemistry
Volume95
Issue number26
Pages (from-to)9881-9891
Number of pages11
ISSN0974-7419
DOIs
Publication statusPublished - 2023

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