Nonuniform sampling (NUS) is no longer an ethereal promise for future NMR spectroscopists. Freedom from comprehensively sampling the Nyquist grid has facilitated an increasing variety of applications in biomolecular NMR studies. We introduce the concepts of multidimensional experiments, sampling, and signal processing before looking at the basics of nonuniform sampling and its benefits. This chapter also includes some practical guidelines for applying NUS to protein NMR studies, and looks at more recent uses of NUS in a wide range of applications in biomolecular NMR
A strength of NMR spectroscopy is its ability to monitor, on an atomic level, molecular changes and ...
To date, most nuclear magnetic resonance (NMR)-based 3-D structure determinations of both small mole...
The application of NMR spectroscopy to study the structure, dynamics and function of macromolecules ...
Non-uniform weighted sampling (NUWS) is a sampling strategy, related to non-uniform sampling (NUS) i...
Non-uniform sampling (NUS) has been established as a route to obtaining true sensitivity enhancement...
Many information-rich multidimensional experiments in nuclear magnetic resonance spectroscopy can be...
Non-uniform weighted sampling (NUWS) is a sampling strategy, related to non-uniform sampling (NUS) i...
NMR spectroscopy is a powerful method in structural and functional analysis of macromolecules and ha...
We report dramatic sensitivity enhancements in multidimensional MAS NMR spectra by the use of nonuni...
Although the discrete Fourier transform played an enabling role in the development of modern NMR spe...
Many information-rich multidimensional experiments in nuclear magnetic resonance spectroscopy can be...
© 2018 Wiley Periodicals, Inc. Nuclear magnetic resonance (NMR) spectroscopy is widely used across t...
Beginning with the introduction of Fourier Transform NMR by Ernst and Anderson in 1966, time domain ...
The high probability of degenerate frequencies in NMR spectra of complex biopolymers such as protein...
Recent optimizations of NMR spectroscopy have focused their attention on innovations in new hardware...
A strength of NMR spectroscopy is its ability to monitor, on an atomic level, molecular changes and ...
To date, most nuclear magnetic resonance (NMR)-based 3-D structure determinations of both small mole...
The application of NMR spectroscopy to study the structure, dynamics and function of macromolecules ...
Non-uniform weighted sampling (NUWS) is a sampling strategy, related to non-uniform sampling (NUS) i...
Non-uniform sampling (NUS) has been established as a route to obtaining true sensitivity enhancement...
Many information-rich multidimensional experiments in nuclear magnetic resonance spectroscopy can be...
Non-uniform weighted sampling (NUWS) is a sampling strategy, related to non-uniform sampling (NUS) i...
NMR spectroscopy is a powerful method in structural and functional analysis of macromolecules and ha...
We report dramatic sensitivity enhancements in multidimensional MAS NMR spectra by the use of nonuni...
Although the discrete Fourier transform played an enabling role in the development of modern NMR spe...
Many information-rich multidimensional experiments in nuclear magnetic resonance spectroscopy can be...
© 2018 Wiley Periodicals, Inc. Nuclear magnetic resonance (NMR) spectroscopy is widely used across t...
Beginning with the introduction of Fourier Transform NMR by Ernst and Anderson in 1966, time domain ...
The high probability of degenerate frequencies in NMR spectra of complex biopolymers such as protein...
Recent optimizations of NMR spectroscopy have focused their attention on innovations in new hardware...
A strength of NMR spectroscopy is its ability to monitor, on an atomic level, molecular changes and ...
To date, most nuclear magnetic resonance (NMR)-based 3-D structure determinations of both small mole...
The application of NMR spectroscopy to study the structure, dynamics and function of macromolecules ...