Literature DB >> 27862081

Arginase Inhibitors: A Rational Approach Over One Century.

Marc Pudlo1, Céline Demougeot1, Corine Girard-Thernier1.   

Abstract

Arginase (EC 3.5.3.1) is the bimanganese enzyme that converts L-arginine into ornithine and urea. This enzyme was discovered more than a century ago and early α-amino acids were identified as weak inhibitors. It was only during the 90s, after nitric oxide (NO) was reported as one of the most important biological mediators and when tight interrelation of arginase and NO synthase was found, that the development of arginase inhibitors was accelerated. The regulation of arginase activity by the N-hydroxy-L-arginine (3, NOHA) intermediate of the NO synthesis was the starting point of the N-hydroxy-nor-arginine (21, nor-NOHA) that proved to be the first micromolar inhibitor. The previously known manganese and arginase binding by borate inspired the 2(S)-amino-6-boronohexanoic acid (39, ABH) and S-(2-boronoethyl)-L-cysteine (40, BEC) now both considered as reference compounds in arginase inhibition. The high-resolution crystal structure of arginase and molecular modeling has rendered possible the recent design of (53) the strongest α,α-disubstituted derivatives of ABH. Simultaneously, traditional medicinal plants have contributed as a source of molecular diversity to the discovery of arginase inhibitors. This rational, step-by-step approach serves as guide in the present review where emphasis is placed on structure activity relationships. Highlights exhaustive review on arginase inhibitors highlight is made on rational approach to conception and structure activity relationships evaluation model is systematically mentioned with results.
© 2016 Wiley Periodicals, Inc.

Entities:  

Keywords:  arginase; inhibitor; structure activity relationships

Mesh:

Substances:

Year:  2016        PMID: 27862081     DOI: 10.1002/med.21419

Source DB:  PubMed          Journal:  Med Res Rev        ISSN: 0198-6325            Impact factor:   12.944


  29 in total

Review 1.  Targeting Metalloenzymes for Therapeutic Intervention.

Authors:  Allie Y Chen; Rebecca N Adamek; Benjamin L Dick; Cy V Credille; Christine N Morrison; Seth M Cohen
Journal:  Chem Rev       Date:  2018-09-07       Impact factor: 60.622

2.  Deficient arginase II expression without alteration in arginase I expression attenuated experimental autoimmune encephalomyelitis in mice.

Authors:  Mariam Choudry; Xiaolei Tang; Tiffany Santorian; Samiksha Wasnik; Jidong Xiao; Weirong Xing; Kin-Hing William Lau; Subburaman Mohan; David J Baylink; Xuezhong Qin
Journal:  Immunology       Date:  2018-04-16       Impact factor: 7.397

3.  Synthesis, evaluation and molecular modelling of piceatannol analogues as arginase inhibitors.

Authors:  J Muller; B Cardey; A Zedet; C Desingle; M Grzybowski; P Pomper; S Foley; D Harakat; C Ramseyer; C Girard; M Pudlo
Journal:  RSC Med Chem       Date:  2020-04-17

4.  In silico design and in vitro assessment of anti-Helicobacter pylori compounds as potential small-molecule arginase inhibitors.

Authors:  Ana Thereza Fiori-Duarte; João Paulo de Oliveira Guarnieri; Jessica Rodrigues Pereira de Oliveira Borlot; Marcelo Lancellotti; Ricardo Pereira Rodrigues; Rodrigo Rezende Kitagawa; Daniel Fábio Kawano
Journal:  Mol Divers       Date:  2022-01-08       Impact factor: 2.943

5.  Discovery and Optimization of Rationally Designed Bicyclic Inhibitors of Human Arginase to Enhance Cancer Immunotherapy.

Authors:  Matthew J Mitcheltree; Derun Li; Abdelghani Achab; Adam Beard; Kalyan Chakravarthy; Mangeng Cheng; Hyelim Cho; Padmanabhan Eangoor; Peter Fan; Symon Gathiaka; Hai-Young Kim; Charles A Lesburg; Thomas W Lyons; Theodore A Martinot; J Richard Miller; Spencer McMinn; Jennifer O'Neil; Anandan Palani; Rachel L Palte; Josep Saurí; David L Sloman; Hongjun Zhang; Jared N Cumming; Christian Fischer
Journal:  ACS Med Chem Lett       Date:  2020-03-23       Impact factor: 4.345

6.  Discovery and Pharmacokinetics of Sulfamides and Guanidines as Potent Human Arginase 1 Inhibitors.

Authors:  Roman Blaszczyk; Joanna Brzezinska; Barbara Dymek; Paulina S Stanczak; Marcin Mazurkiewicz; Jacek Olczak; Julita Nowicka; Karolina Dzwonek; Agnieszka Zagozdzon; Jakub Golab; Adam Golebiowski
Journal:  ACS Med Chem Lett       Date:  2020-03-13       Impact factor: 4.345

Review 7.  Immune biology of glioma-associated macrophages and microglia: functional and therapeutic implications.

Authors:  Jun Wei; Peiwen Chen; Pravesh Gupta; Martina Ott; Daniel Zamler; Cynthia Kassab; Krishna P Bhat; Michael A Curran; John F de Groot; Amy B Heimberger
Journal:  Neuro Oncol       Date:  2020-02-20       Impact factor: 12.300

8.  Arginase inhibition prevents the development of hypertension and improves insulin resistance in obese rats.

Authors:  Kelly J Peyton; Xiao-Ming Liu; Ahmad R Shebib; Fruzsina K Johnson; Robert A Johnson; William Durante
Journal:  Amino Acids       Date:  2018-04-27       Impact factor: 3.520

9.  NOX2-Induced Activation of Arginase and Diabetes-Induced Retinal Endothelial Cell Senescence.

Authors:  Modesto Rojas; Tahira Lemtalsi; Haroldo A Toque; Zhimin Xu; David Fulton; Robert William Caldwell; Ruth B Caldwell
Journal:  Antioxidants (Basel)       Date:  2017-06-15

10.  Cryo-EM structures of inhibitory antibodies complexed with arginase 1 provide insight into mechanism of action.

Authors:  Rachel L Palte; Veronica Juan; Yacob Gomez-Llorente; Marc Andre Bailly; Kalyan Chakravarthy; Xun Chen; Daniel Cipriano; Laurence Fayadat-Dilman; Symon Gathiaka; Heiko Greb; Brian Hall; Mas Handa; Mark Hsieh; Esther Kofman; Heping Lin; J Richard Miller; Nhung Nguyen; Jennifer O'Neil; Hussam Shaheen; Eric Sterner; Corey Strickland; Angie Sun; Shane Taremi; Giovanna Scapin
Journal:  Commun Biol       Date:  2021-07-29
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