Differential epitope mapping saturation transfer difference (DEEP-STD) NMR spectroscopy is a recently developed powerful approach for elucidating the structure and pharmacophore of weak protein–ligand interactions, as it reports key information on the orientation of the ligand and the architecture of the binding pocket. The method relies on selective saturation of protein residues in the binding site and the generation of a differential epitope map by observing the ligand, which depicts the nature of the protein residues making contact with the ligand in the bound state. Selective saturation requires knowledge of the chemical-shift assignment of the protein residues, which can be obtained either experimentally by NMR spectroscopy or predict...
This review aims to illustrate that STD NMR is not simply a method for drug screening and discovery,...
With the completion of the Human Genome Project in 2001 and the subsequent explosion of organisms wi...
Understanding biological phenomena at atomic resolution is one of the keys to modern drug design. In...
Saturation transfer difference (STD) NMR spectroscopy is extensively used to obtain epitope maps of ...
Ligand-based NMR techniques to study protein–ligand interactions are potent tools in drug design. Sa...
Ligand‐based NMR techniques to study protein–ligand interactions are potent tools in drug design. Sa...
Saturation transfer difference (STD) NMR spectroscopy is a powerful NMR technique extensively used t...
NMR spectroscopy is an established tool in drug discovery, but its strength is commonly regarded to ...
Molecular recognition is at the base of all biological events and its knowledge at atomic level is p...
BACKGROUND: Nuclear Magnetic Resonance (NMR) spectroscopy offers a variety of experiments to study p...
Saturation transfer difference (STD) NMR has emerged as one of the most popular ligand-based NMR tec...
STD NMR is a powerful ligand-based tool for screening small molecules and low molecular weight fragm...
N HSQC becomes ambiguous when the chemical shift perturbations are caused by non-specific interactio...
Abstract Saturation transfer difference nuclear magnetic resonance (STD NMR) is one of the most wide...
Protein chemical shift perturbations (CSPs), upon ligand binding, can be used to refine the structur...
This review aims to illustrate that STD NMR is not simply a method for drug screening and discovery,...
With the completion of the Human Genome Project in 2001 and the subsequent explosion of organisms wi...
Understanding biological phenomena at atomic resolution is one of the keys to modern drug design. In...
Saturation transfer difference (STD) NMR spectroscopy is extensively used to obtain epitope maps of ...
Ligand-based NMR techniques to study protein–ligand interactions are potent tools in drug design. Sa...
Ligand‐based NMR techniques to study protein–ligand interactions are potent tools in drug design. Sa...
Saturation transfer difference (STD) NMR spectroscopy is a powerful NMR technique extensively used t...
NMR spectroscopy is an established tool in drug discovery, but its strength is commonly regarded to ...
Molecular recognition is at the base of all biological events and its knowledge at atomic level is p...
BACKGROUND: Nuclear Magnetic Resonance (NMR) spectroscopy offers a variety of experiments to study p...
Saturation transfer difference (STD) NMR has emerged as one of the most popular ligand-based NMR tec...
STD NMR is a powerful ligand-based tool for screening small molecules and low molecular weight fragm...
N HSQC becomes ambiguous when the chemical shift perturbations are caused by non-specific interactio...
Abstract Saturation transfer difference nuclear magnetic resonance (STD NMR) is one of the most wide...
Protein chemical shift perturbations (CSPs), upon ligand binding, can be used to refine the structur...
This review aims to illustrate that STD NMR is not simply a method for drug screening and discovery,...
With the completion of the Human Genome Project in 2001 and the subsequent explosion of organisms wi...
Understanding biological phenomena at atomic resolution is one of the keys to modern drug design. In...