TY - JOUR
T1 - Switching Futile para-Quinone to Efficient Reactive Oxygen Species Generator
T2 - Ubiquitin-Specific Protease-2 Inhibition, Electrocatalysis, and Quantification
AU - Gopinath, Pushparathinam
AU - Mahammed, Atif
AU - Eilon-Shaffer, Tal
AU - Nawatha, Mickal
AU - Ohayon, Shimrit
AU - Shabat, Doron
AU - Gross, Zeev
AU - Brik, Ashraf
N1 - Publisher Copyright:
© 2017 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2017/9/5
Y1 - 2017/9/5
N2 - Understanding the correlation between structural features of small-molecule drugs and their mode of action is a fascinating topic and crucial for the drug-discovery process. However, in many cases, knowledge of the exact parameters that dictate the mode of action is still lacking. Following a large screening for ubiquitin specific protease 2 (USP2) inhibition, an effective para-quinone-based inhibitor with an unclear mode of action was identified. To gain a deeper understanding of the mechanism of inhibition, a set of para-quinones were prepared and studied for USP2 inhibition, electrocatalysis, and reactive oxygen species (ROS) quantification. The excellent correlation obtained from the above-mentioned studies disclosed a distinct pattern of “N−C=O−N” in the bicyclic para-quinones to be a crucial factor for ROS generation, and demonstrated that minor changes in such a skeleton drastically altered the ROS-generating ability. The knowledge acquired herein would serve as an important guideline for future medicinal chemistry optimization of related structures to select the preferred mode of action.
AB - Understanding the correlation between structural features of small-molecule drugs and their mode of action is a fascinating topic and crucial for the drug-discovery process. However, in many cases, knowledge of the exact parameters that dictate the mode of action is still lacking. Following a large screening for ubiquitin specific protease 2 (USP2) inhibition, an effective para-quinone-based inhibitor with an unclear mode of action was identified. To gain a deeper understanding of the mechanism of inhibition, a set of para-quinones were prepared and studied for USP2 inhibition, electrocatalysis, and reactive oxygen species (ROS) quantification. The excellent correlation obtained from the above-mentioned studies disclosed a distinct pattern of “N−C=O−N” in the bicyclic para-quinones to be a crucial factor for ROS generation, and demonstrated that minor changes in such a skeleton drastically altered the ROS-generating ability. The knowledge acquired herein would serve as an important guideline for future medicinal chemistry optimization of related structures to select the preferred mode of action.
KW - drug design
KW - enzymes
KW - heterocycles
KW - inhibitors
KW - structure–activity relationships
UR - http://www.scopus.com/inward/record.url?scp=85025073038&partnerID=8YFLogxK
U2 - 10.1002/cbic.201700330
DO - 10.1002/cbic.201700330
M3 - Article
AN - SCOPUS:85025073038
SN - 1439-4227
VL - 18
SP - 1683
EP - 1687
JO - ChemBioChem
JF - ChemBioChem
IS - 17
ER -