Bhoite_2024_Biochem.Biophys.Res.Commun_733_150444

Reference

Title : Structure of epoxide hydrolase 2 from Mangifera indica throws light on the substrate specificity determinants of plant epoxide hydrolases - Bhoite_2024_Biochem.Biophys.Res.Commun_733_150444
Author(s) : Bhoite A , Gaur NK , Palange M , Kontham R , Gupta V , Kulkarni K
Ref : Biochemical & Biophysical Research Communications , 733 :150444 , 2024
Abstract :

Epoxide hydrolases (EHs) are a group of ubiquitous enzymes that catalyze hydrolysis of chemically reactive epoxides to yield corresponding dihydrodiols. Despite extensive studies on EHs from different clades, generic rules governing their substrate specificity determinants have remained elusive. Here, we present structural, biochemical and molecular dynamics simulation studies on MiEH2, a plant epoxide hydrolase from Mangifera indica. Comparative structure-function analysis of nine homologs of MiEH2, which include a few AlphaFold structural models, show that the two conserved tyrosines (MiEH2(Y152) and MiEH2(Y232)) from the lid domain dissect substrate binding tunnel into two halves, forming substrate-binding-pocket one (BP1) and two (BP2). This compartmentalization offers diverse binding modes to their substrates, as exemplified by the binding of smaller aromatic substrates, such as styrene oxide (SO). Docking and molecular dynamics simulations reveal that the linear epoxy fatty acid substrates predominantly occupy BP1, while the aromatic substrates can bind to either BP1 or BP2. Furthermore, SO preferentially binds to BP2, by stacking against catalytically important histidine (MiEH2(H297)) with the conserved lid tyrosines engaging its epoxide oxygen. Residue (MiEH2(L263)) next to the catalytic aspartate (MiEH2(D262)) modulates substrate binding modes. Thus, the divergent binding modes correlate with the differential affinities of the EHs for their substrates. Furthermore, long-range dynamical coupling between the lid and core domains critically influences substrate enantioselectivity in plant EHs.

PubMedSearch : Bhoite_2024_Biochem.Biophys.Res.Commun_733_150444
PubMedID: 39067247
Gene_locus related to this paper: manin-a0a1u9zcc2

Related information

Gene_locus manin-a0a1u9zcc2
Structure 8JY1

Citations formats

Bhoite A, Gaur NK, Palange M, Kontham R, Gupta V, Kulkarni K (2024)
Structure of epoxide hydrolase 2 from Mangifera indica throws light on the substrate specificity determinants of plant epoxide hydrolases
Biochemical & Biophysical Research Communications 733 :150444

Bhoite A, Gaur NK, Palange M, Kontham R, Gupta V, Kulkarni K (2024)
Biochemical & Biophysical Research Communications 733 :150444