Literature DB >> 29039942

Correlating Resolving Power, Resolution, and Collision Cross Section: Unifying Cross-Platform Assessment of Separation Efficiency in Ion Mobility Spectrometry.

James N Dodds1, Jody C May1, John A McLean1.   

Abstract

Here we examine the relationship among resolving power (Rp), resolution (Rpp), and collision cross section (CCS) for compounds analyzed in previous ion mobility (IM) experiments representing a wide variety of instrument platforms and IM techniques. Our previous work indicated these three variables effectively describe and predict separation efficiency for drift tube ion mobility spectrometry experiments. In this work, we seek to determine if our previous findings are a general reflection of IM behavior that can be applied to various instrument platforms and mobility techniques. Results suggest IM distributions are well characterized by a Gaussian model and separation efficiency can be predicted on the basis of the empirical difference in the gas-phase CCS and a CCS-based resolving power definition (CCSCCS). Notably traveling wave (TWIMS) was found to operate at resolutions substantially higher than a single-peak resolving power suggested. When a CCS-based Rp definition was utilized, TWIMS was found to operate at a resolving power between 40 and 50, confirming the previous observations by Giles and co-workers. After the separation axis (and corresponding resolving power) is converted to cross section space, it is possible to effectively predict separation behavior for all mobility techniques evaluated (i.e., uniform field, trapped ion mobility, traveling wave, cyclic, and overtone instruments) using the equations described in this work. Finally, we are able to establish for the first time that the current state-of-the-art ion mobility separations benchmark at a CCS-based resolving power of >300 that is sufficient to differentiate analyte ions with CCS differences as small as 0.5%.

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Year:  2017        PMID: 29039942      PMCID: PMC5744666          DOI: 10.1021/acs.analchem.7b02827

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  56 in total

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2.  Ion mobility mass spectrometry of peptide, protein, and protein complex ions using a radio-frequency confining drift cell.

Authors:  Samuel J Allen; Kevin Giles; Tony Gilbert; Matthew F Bush
Journal:  Analyst       Date:  2016-01-07       Impact factor: 4.616

3.  Design and performance of an atmospheric pressure ion mobility Fourier transform ion cyclotron resonance mass spectrometer.

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Review 4.  The minimum information about a proteomics experiment (MIAPE).

Authors:  Chris F Taylor; Norman W Paton; Kathryn S Lilley; Pierre-Alain Binz; Randall K Julian; Andrew R Jones; Weimin Zhu; Rolf Apweiler; Ruedi Aebersold; Eric W Deutsch; Michael J Dunn; Albert J R Heck; Alexander Leitner; Marcus Macht; Matthias Mann; Lennart Martens; Thomas A Neubert; Scott D Patterson; Peipei Ping; Sean L Seymour; Puneet Souda; Akira Tsugita; Joel Vandekerckhove; Thomas M Vondriska; Julian P Whitelegge; Marc R Wilkins; Ioannnis Xenarios; John R Yates; Henning Hermjakob
Journal:  Nat Biotechnol       Date:  2007-08       Impact factor: 54.908

Review 5.  Advances in ion mobility-mass spectrometry instrumentation and techniques for characterizing structural heterogeneity.

Authors:  Megan M Maurer; Gregory C Donohoe; Stephen J Valentine
Journal:  Analyst       Date:  2015-06-26       Impact factor: 4.616

6.  Evaluation of drift gas selection in complex sample analyses using a high performance drift tube ion mobility-QTOF mass spectrometer.

Authors:  Ruwan T Kurulugama; Ed Darland; Frank Kuhlmann; George Stafford; John Fjeldsted
Journal:  Analyst       Date:  2015-10-21       Impact factor: 4.616

7.  21 Tesla Fourier Transform Ion Cyclotron Resonance Mass Spectrometer Greatly Expands Mass Spectrometry Toolbox.

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Journal:  J Am Soc Mass Spectrom       Date:  2016-10-12       Impact factor: 3.109

8.  Understanding and designing field asymmetric waveform ion mobility spectrometry separations in gas mixtures.

Authors:  Alexandre A Shvartsburg; Keqi Tang; Richard D Smith
Journal:  Anal Chem       Date:  2004-12-15       Impact factor: 6.986

9.  Ultra-High Resolution Ion Mobility Separations Utilizing Traveling Waves in a 13 m Serpentine Path Length Structures for Lossless Ion Manipulations Module.

Authors:  Liulin Deng; Yehia M Ibrahim; Ahmed M Hamid; Sandilya V B Garimella; Ian K Webb; Xueyun Zheng; Spencer A Prost; Jeremy A Sandoval; Randolph V Norheim; Gordon A Anderson; Aleksey V Tolmachev; Erin S Baker; Richard D Smith
Journal:  Anal Chem       Date:  2016-08-26       Impact factor: 6.986

10.  Investigation of the Complete Suite of the Leucine and Isoleucine Isomers: Toward Prediction of Ion Mobility Separation Capabilities.

Authors:  James N Dodds; Jody C May; John A McLean
Journal:  Anal Chem       Date:  2016-12-21       Impact factor: 6.986

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  35 in total

1.  Evaluating Separation Selectivity and Collision Cross Section Measurement Reproducibility in Helium, Nitrogen, Argon, and Carbon Dioxide Drift Gases for Drift Tube Ion Mobility-Mass Spectrometry.

Authors:  Caleb B Morris; Jody C May; Katrina L Leaptrot; John A McLean
Journal:  J Am Soc Mass Spectrom       Date:  2019-03-18       Impact factor: 3.109

Review 2.  Challenges in Identifying the Dark Molecules of Life.

Authors:  María Eugenia Monge; James N Dodds; Erin S Baker; Arthur S Edison; Facundo M Fernández
Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2019-03-18       Impact factor: 10.745

3.  Integrating ion mobility and imaging mass spectrometry for comprehensive analysis of biological tissues: A brief review and perspective.

Authors:  Emilio S Rivera; Katerina V Djambazova; Elizabeth K Neumann; Richard M Caprioli; Jeffrey M Spraggins
Journal:  J Mass Spectrom       Date:  2020-09-21       Impact factor: 1.982

4.  Ultra-High-Resolution Ion Mobility Separations Over Extended Path Lengths and Mobility Ranges Achieved using a Multilevel Structures for Lossless Ion Manipulations Module.

Authors:  Adam L Hollerbach; Ailin Li; Aneesh Prabhakaran; Gabe Nagy; Christopher P Harrilal; Christopher R Conant; Randolph V Norheim; Colby E Schimelfenig; Gordon A Anderson; Sandilya V B Garimella; Richard D Smith; Yehia M Ibrahim
Journal:  Anal Chem       Date:  2020-05-22       Impact factor: 6.986

5.  Discrimination of Regioisomeric and Stereoisomeric Saponins from Aesculus hippocastanum Seeds by Ion Mobility Mass Spectrometry.

Authors:  Emmanuel Colson; Corentin Decroo; Dale Cooper-Shepherd; Guillaume Caulier; Céline Henoumont; Sophie Laurent; Julien De Winter; Patrick Flammang; Martin Palmer; Jan Claereboudt; Pascal Gerbaux
Journal:  J Am Soc Mass Spectrom       Date:  2019-08-26       Impact factor: 3.109

Review 6.  Fundamentals of Ion Mobility-Mass Spectrometry for the Analysis of Biomolecules.

Authors:  Caleb B Morris; James C Poland; Jody C May; John A McLean
Journal:  Methods Mol Biol       Date:  2020

7.  Linear and Differential Ion Mobility Separations of Middle-Down Proteoforms.

Authors:  Alyssa Garabedian; Matthew A Baird; Jacob Porter; Kevin Jeanne Dit Fouque; Pavel V Shliaha; Ole N Jensen; Todd D Williams; Francisco Fernandez-Lima; Alexandre A Shvartsburg
Journal:  Anal Chem       Date:  2018-02-06       Impact factor: 6.986

8.  Automated flow injection method for the high precision determination of drift tube ion mobility collision cross sections.

Authors:  Charles M Nichols; Jody C May; Stacy D Sherrod; John A McLean
Journal:  Analyst       Date:  2018-03-26       Impact factor: 4.616

9.  Untargeted Molecular Discovery in Primary Metabolism: Collision Cross Section as a Molecular Descriptor in Ion Mobility-Mass Spectrometry.

Authors:  Charles M Nichols; James N Dodds; Bailey S Rose; Jaqueline A Picache; Caleb B Morris; Simona G Codreanu; Jody C May; Stacy D Sherrod; John A McLean
Journal:  Anal Chem       Date:  2018-11-30       Impact factor: 6.986

10.  Ion Mobility Spectrometry: Fundamental Concepts, Instrumentation, Applications, and the Road Ahead.

Authors:  James N Dodds; Erin S Baker
Journal:  J Am Soc Mass Spectrom       Date:  2019-09-06       Impact factor: 3.109

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