Inhibition of protein–protein interactions (PPIs) represents a major challenge in chemical biology and drug discovery. α-Helix mediated PPIs may be amenable to modulation using generic chemotypes, termed “proteomimetics”, which can be assembled in a modular manner to reproduce the vectoral presentation of key side chains found on a helical motif from one partner within the PPI. In this work, it is demonstrated that by using a library of N-alkylated aromatic oligoamide helix mimetics, potent helix mimetics which reproduce their biophysical binding selectivity in a cellular context can be identified
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
Inhibition of protein-protein interactions (PPIs) represents a major challenge in chemical biology a...
The exploitation of multivalent ligands for the inhibition of protein-protein interactions has not y...
Abstractα-Helices are common secondary structural elements forming key parts of the large, generally...
Protein-protein interactions (PPIs) play a pivotal role in mediating a number of biological processe...
Protein-protein interactions (PPIs) play an important role in numerous biological processes. Consequ...
?-Helices are common secondary structural elements forming key parts of the large, generally feature...
This document is the Accepted Manuscript version of a Published Work that appeared in final form in ...
This document is the Accepted Manuscript version of a Published Work that appeared in final form in ...
Protein-protein interactions (PPIs) mediate a number of essential cellular processes and their impli...
α-Helix mediated protein-protein interactions are of major therapeutic importance. As such, the desi...
Protein-protein interactions (PPIs) play a pivotal role in mediating a number of biological processe...
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
Inhibition of protein-protein interactions (PPIs) represents a major challenge in chemical biology a...
The exploitation of multivalent ligands for the inhibition of protein-protein interactions has not y...
Abstractα-Helices are common secondary structural elements forming key parts of the large, generally...
Protein-protein interactions (PPIs) play a pivotal role in mediating a number of biological processe...
Protein-protein interactions (PPIs) play an important role in numerous biological processes. Consequ...
?-Helices are common secondary structural elements forming key parts of the large, generally feature...
This document is the Accepted Manuscript version of a Published Work that appeared in final form in ...
This document is the Accepted Manuscript version of a Published Work that appeared in final form in ...
Protein-protein interactions (PPIs) mediate a number of essential cellular processes and their impli...
α-Helix mediated protein-protein interactions are of major therapeutic importance. As such, the desi...
Protein-protein interactions (PPIs) play a pivotal role in mediating a number of biological processe...
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
Targeting PPIs with small molecules can be challenging owing to large, hydrophobic binding surfaces....
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...
The most abundant protein secondary structure in nature – the a-helix – is frequently found at prote...