The targeting of protein–protein interactions (PPIs) that include secondary structure motifs such as the α-helix and ß-sheet is a challenge in chemical biology. A new class of compounds called stapled peptides have been developed that mimic α-helix secondary structures involved in PPIs. These conformationally constrained peptides also show favorable physicochemical properties and so are promising lead compounds for drug discovery. This review focuses on the design aspects of hydrocarbon constrained α-helical proteomimetics and provides examples in which they target biologically relevant PPIs
Protein–protein interactions (PPIs) play a critical role in many essential biological processes, and...
Inhibition of protein–protein interactions (PPIs) represents a major challenge in chemical biology a...
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Drug target studies elucidated the core role of protein-protein interaction (PPI) in human disease p...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Stapled peptides are an important class of conformationally constrained, bioactive α‐helical peptide...
Protein–protein interactions (PPIs) play pivotal roles in the majority of biological processes. Ther...
Stapled peptides are an important class of conformationally constrained, bioactive α‐helical peptide...
The development of constrained peptides represents an emerging strategy to generate peptide based pr...
Protein–protein interactions (PPIs) control virtually all cellular processes and have thus emerged a...
Protein–protein interactions (PPIs) play a critical role in many essential biological processes, and...
Inhibition of protein–protein interactions (PPIs) represents a major challenge in chemical biology a...
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Drug target studies elucidated the core role of protein-protein interaction (PPI) in human disease p...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Protein-protein interaction (PPI) is a hot topic in clinical research as protein networking has a ma...
Stapled peptides are an important class of conformationally constrained, bioactive α‐helical peptide...
Protein–protein interactions (PPIs) play pivotal roles in the majority of biological processes. Ther...
Stapled peptides are an important class of conformationally constrained, bioactive α‐helical peptide...
The development of constrained peptides represents an emerging strategy to generate peptide based pr...
Protein–protein interactions (PPIs) control virtually all cellular processes and have thus emerged a...
Protein–protein interactions (PPIs) play a critical role in many essential biological processes, and...
Inhibition of protein–protein interactions (PPIs) represents a major challenge in chemical biology a...
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....