The objective of this work is to advance the state-of-the- art in electrospray/ion trap mass spectrometry of biomolecules by improving the analytical figures of merit of the instrumentation as well as by developing new experiments to gain information on high mass biologically relevant ions. The quadrupole ion trap is a remarkably powerful tool for the manipulation and mass/charge analysis of biologically-derived ions. Furthermore, it is far less expensive than other forms of instrumentation capable of performing tandem mass spectrometric experiments. The latter characteristic makes the ion trap potentially accessible to a wide range of researchers in the biomedical field. This work seeks to achieve ultra-low level analysis/detection of high mass biomolecules (low attomole levels), without preconcentration, in common analytical scenarios such as on-line capillary electrophoresis and flow injection analysis. Particular emphasis will be placed on the use of non-destructive ion detection and re-measurement within the context of multi-stage mass spectrometry experiments. The ability to store ions will be used to develop new applications for ion/molecule reactions and to explore the chemistry associated with reactions of multiply-charged biopolymers with oppositely charged ions. The ion/molecule reaction applications include a technique to increase ion currents derived from multiply-charged biopolymers by several orders of magnitude via proton transfer reactions and an approach to dealing with electrospray of mixtures involving tandem mass spectrometry and proton transfer reactions. Ion/ion reaction studies will focus on both proton transfer and electron transfer with particular attention paid to the chemistry of the odd-electron species formed via electron transfer reactions. In all cases, emphasis will be placed on experiments that can provide new information or that can enhance the performance of the ion trap over current methodology.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM045372-05
Application #
2415148
Study Section
Metallobiochemistry Study Section (BMT)
Project Start
1991-09-01
Project End
1999-04-30
Budget Start
1997-05-01
Budget End
1998-04-30
Support Year
5
Fiscal Year
1997
Total Cost
Indirect Cost
Name
Lockheed Martin Energy Research Corp
Department
Type
DUNS #
City
Oak Ridge
State
TN
Country
United States
Zip Code
37831
Peng, Zhou; Pilo, Alice L; Luongo, Carl A et al. (2015) Gas-Phase Amidation of Carboxylic Acids with Woodward's Reagent K Ions. J Am Soc Mass Spectrom 26:1686-94
Pilo, Alice L; Bu, Jiexun; McLuckey, Scott A (2015) Transformation of [M + 2H](2+) Peptide Cations to [M - H](+), [M + H + O](+), and M(+•) Cations via Ion/Ion Reactions: Reagent Anions Derived from Persulfate. J Am Soc Mass Spectrom 26:1103-14
Gilbert, Joshua D; Prentice, Boone M; McLuckey, Scott A (2015) Ion/ion reactions with ""onium"" reagents: an approach for the gas-phase transfer of organic cations to multiply-charged anions. J Am Soc Mass Spectrom 26:818-25
Rojas-Betancourt, Stella; Stutzman, John R; Londry, Frank A et al. (2015) Gas-Phase Chemical Separation of Phosphatidylcholine and Phosphatidylethanolamine Cations via Charge Inversion Ion/Ion Chemistry. Anal Chem 87:11255-62
Peng, Zhou; McLuckey, Scott A (2015) C-terminal peptide extension via gas-phase ion/ion reactions. Int J Mass Spectrom 391:17-23
Gilbert, Joshua D; Fisher, Christine M; Bu, Jiexun et al. (2015) Strategies for generating peptide radical cations via ion/ion reactions. J Mass Spectrom 50:418-26
Peng, Zhou; McGee, William M; Bu, Jiexun et al. (2015) Gas phase reactivity of carboxylates with N-hydroxysuccinimide esters. J Am Soc Mass Spectrom 26:174-80
Pilo, Alice L; McLuckey, Scott A (2014) Oxidation of methionine residues in polypeptide ions via gas-phase ion/ion chemistry. J Am Soc Mass Spectrom 25:1049-57
McGee, William M; McLuckey, Scott A (2014) Efficient and directed peptide bond formation in the gas phase via ion/ion reactions. Proc Natl Acad Sci U S A 111:1288-92
Stutzman, John R; Blanksby, Stephen J; McLuckey, Scott A (2013) Gas-phase transformation of phosphatidylcholine cations to structurally informative anions via ion/ion chemistry. Anal Chem 85:3752-7

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