Literature DB >> 35366507

Structural insights into the catalytic mechanism of granzyme B upon substrate and inhibitor binding.

Neha Tripathi1, Richard Danger2, Mélanie Chesneau2, Sophie Brouard3, Adèle D Laurent4.   

Abstract

Human granzyme B (hGzmB), which is present in various immune cells, has attracted much attention due to its role in various pathophysiological conditions. The hGzmB activity is triggered at a catalytic triad (His59, Asp103, Ser198), cleaving its specific substrates. To date, the drug design strategy against hGzmB mainly targets the catalytic triad, which causes the non-specificity problem of inhibitors due to the highly conserved active site in serine proteases. In the present work, microsecond classical molecular dynamics simulations are devoted to exploring the structural dynamics of the hGzmB catalytic cycle in the presence of Ac-IEPD-AMC, a known substrate (active hGzmB), and Ac-IEPD-CHO, a known inhibitor (inactive hGzmB). By comparing active and inactive forms of hGzmB in the six different stages of the hGzmB catalytic cycle, we revealed, for the very first time, an additional network of interactions involving Arg216, a residue located outside the conventional binding site. Upon activation, the His59∙∙∙Asp103 hydrogen bond is broken due to the formation of the Asp103∙∙∙Arg216 salt bridge, expanding the active site to facilitate the substrate-binding. On the contrary, the binding of inhibitor Ac-IEPD-CHO to hGzmB prevents the Arg216-mediated interactions within the catalytic triad, thus preventing hGzmB activity. In silico Arg216Ala mutation confirms the role of Arg216 in enzyme activity, as the substrate Ac-IEPD-AMC failed to bind to the mutated hGzmB. Importantly, as Arg216 is not conserved amongst the various granzymes, the current findings can be a major step to guide the design of hGzmB specific therapeutics.
Copyright © 2022. Published by Elsevier Inc.

Entities:  

Keywords:  Catalytic mechanism; Human granzyme B; In silico Mutation; Molecular dynamics; Serine proteases

Mesh:

Substances:

Year:  2022        PMID: 35366507     DOI: 10.1016/j.jmgm.2022.108167

Source DB:  PubMed          Journal:  J Mol Graph Model        ISSN: 1093-3263            Impact factor:   2.518


  1 in total

1.  Investigation of bioactive compounds from Bacillus sp. against protein homologs CDC42 of Colletotrichum gloeosporioides causing anthracnose disease in cassava by using molecular docking and dynamics studies.

Authors:  Narendra Kumar Papathoti; Kishore Mendam; Bala Hanumath Sriram Kanduri; Wannaporn Thepbandit; Rungthip Sangpueak; Chanon Saengchan; Nguyen Huy Hoang; Vineela Sai Megavath; Madhuri Kurakula; Toan Le Thanh; Natthiya Buensanteai
Journal:  Front Mol Biosci       Date:  2022-09-23
  1 in total

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