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From Supercomputer Modeling to Highest Mass Resolution in FT-ICR

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Date 2013 Dec 19
PMID 24349929
Citations 7
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Abstract

Understanding of behavior of ion ensembles inside FT-ICR cell based on the computer simulation of ion motion gives rise to the new ideas of cell designs. The recently introduced novel FT-ICR cell based on a Penning ion trap with specially shaped excitation and detection electrodes prevents distortion of ion cyclotron motion phases (normally caused by non-ideal electric trapping fields) by averaging the trapping DC electric field during the ion motion in the ICR cell. Detection times of 5 min resulting in resolving power close to 40,000,000 have been reached for reserpine at m/z 609 at a magnetic field of only 7 Tesla. Fine structures of resolved 13Cn isotopic cluster groups could be measured for molecular masses up to 5.7 kDa (insulin) with resolving power of 4,000,000 at 7 Tesla. Based on resolved fine structure patterns atomic compositions can be directly determined using a new developed algorithm for fine structure processing. Mass spectra of proteins and multimers of proteins reaching masses up to 186 kDa (enolase tetramer) could be measured with isotopic resolution. For instance, at 7 Tesla resolving power of 800,000 was achieved for enolase dimer (96 kDa) and 500,000 for molecular masses above 100 kDa. Experimental data indicate that there is practically no limit for the resolving power of this ICR cell except by collisional damping in the ultrahigh vacuum chamber.

Citing Articles

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References
1.
Ledford Jr E, Rempel D, Gross M . Space charge effects in Fourier transform mass spectrometry. Mass calibration. Anal Chem. 1984; 56(14):2744-8. DOI: 10.1021/ac00278a027. View

2.
N Nikolaev E, Heeren R, Popov A, Pozdneev A, Chingin K . Realistic modeling of ion cloud motion in a Fourier transform ion cyclotron resonance cell by use of a particle-in-cell approach. Rapid Commun Mass Spectrom. 2007; 21(22):3527-46. DOI: 10.1002/rcm.3234. View

3.
Boldin I, N Nikolaev E . Fourier transform ion cyclotron resonance cell with dynamic harmonization of the electric field in the whole volume by shaping of the excitation and detection electrode assembly. Rapid Commun Mass Spectrom. 2010; 25(1):122-6. DOI: 10.1002/rcm.4838. View

4.
N Nikolaev E, Boldin I, Jertz R, Baykut G . Initial experimental characterization of a new ultra-high resolution FTICR cell with dynamic harmonization. J Am Soc Mass Spectrom. 2011; 22(7):1125-33. DOI: 10.1007/s13361-011-0125-9. View

5.
Vladimirov G, Hendrickson C, Blakney G, Marshall A, Heeren R, N Nikolaev E . Fourier transform ion cyclotron resonance mass resolution and dynamic range limits calculated by computer modeling of ion cloud motion. J Am Soc Mass Spectrom. 2011; 23(2):375-84. DOI: 10.1007/s13361-011-0268-8. View