Structure-guided insights into heterocyclic ring-cleavage catalysis of the non-heme Fe (II) dioxygenase NicX.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33637718.
- Also identified by DOI 10.1038/s41467-021-21567-9 and PMC identifier 7910607.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Biodegradation of aromatic and heterocyclic compounds requires an oxidative ring cleavage enzymatic step. Extensive biochemical research has yielded mechanistic insights about catabolism of aromatic substrates; yet much less is known about the reaction mechanisms underlying the cleavage of heterocyclic compounds such as pyridine-ring-containing ones like 2,5-hydroxy-pyridine (DHP). 2,5-Dihydroxypyridine dioxygenase (NicX) from Pseudomonas putida KT2440 uses a mononuclear nonheme Fe(II) to catalyze the oxidative pyridine ring cleavage reaction by transforming DHP into N-formylmaleamic acid (NFM). Herein, we report a crystal structure for the resting form of NicX, as well as a complex structure wherein DHP and NFM are trapped in different subunits. The resting state structure displays an octahedral coordination for Fe(II) with two histidine residues (His<sup>265</sup> and His<sup>318</sup>), a serine residue (Ser<sup>302</sup>), a carboxylate ligand (Asp<sup>320</sup>), and two water molecules. DHP does not bind as a ligand to Fe(II), yet its interactions with Leu<sup>104</sup> and His<sup>105</sup> function to guide and stabilize the substrate to the appropriate position to initiate the reaction. Additionally, combined structural and computational analyses lend support to an apical dioxygen catalytic mechanism. Our study thus deepens understanding of non-heme Fe(II) dioxygenases.
Medical subject headings
- Bacterial Proteins
- Dioxygenases
- Heterocyclic Compounds
- Pseudomonas putida