4.3 Article

Optimization of identity operation in NMR spectroscopy via genetic algorithm: Application to the TEDOR experiment

期刊

JOURNAL OF MAGNETIC RESONANCE
卷 273, 期 -, 页码 40-46

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jmr.2016.09.021

关键词

Composite pulses; Genetic algorithm optimization; Dipolar recoupling; REDOR/TEDOR

资金

  1. National Institute of Health [GM 64742, GM 72701]

向作者/读者索取更多资源

Identity operation in the form of it pulses is widely used in NMR spectroscopy. For an isolated single spin system, a sequence of even number of it pulses performs an identity operation, leaving the spin state essentially unaltered. For multi-spin systems, trains of it pulses with appropriate phases and time delays modulate the spin Hamiltonian to perform operations such as decoupling and recoupling. However, experimental imperfections often jeopardize the outcome, leading to severe losses in sensitivity. Here, we demonstrate that a newly designed Genetic Algorithm (GA) is able to optimize a train of IL pulses, resulting in a robust identity operation. As proof-of-concept, we optimized the recoupling sequence in the transferred-echo double-resonance (TEDOR) pulse sequence, a key experiment in biological magic angle spinning (MAS) solid-state NMR for measuring multiple carbon-nitrogen distances. The GA modified TEDOR (GMO-TEDOR) experiment with improved recoupling efficiency results in a net gain of sensitivity up to 28% as tested on a uniformly 13C, 15N labeled microcrystalline ubiquitin sample. The robust identity operation achieved via GA paves the way for the optimization of several other pulse sequences used for both solid- and liquid-state NMR used for decoupling, recoupling, and relaxation experiments. (C) 2016 Elsevier Inc. All rights reserved.

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