This work used site-directed mutagenesis in an extensive manner to study the role of the highly conserved isoleucine 563 of Thermococcus sp.
Abstract
CO dehydrogenases (CODH) are metalloenzymes that reversibly oxidize CO to CO2 at a buried NiFe4S4 active site. The substrates, CO and CO2, need therefore to be transported through the protein matrix to reach the active site. The most likely pathway for intra-protein diffusion is the hydrophobic channel identified in the crystal structures. We used site-directed mutagenesis in an extensive manner to study the role of the highly conserved isoleucine 563 of Thermococcus sp. AM4 CODH2. Certain substitutions significantly change the biochemical properties of the enzyme (KM for CO, catalytic efficiency, product inhibition constant, catalytic bias, …), and increase its resistance to the inhibitor O2, showing that isoleucine 563 plays a key role in determining access to the active site. The mutations have the same effects on the rates of binding of CO and O2, showing that the two molecules follow the same pathway and are not discriminated by the protein matrix. The I563F mutation decreases the bimolecular rate constant of inhibition by O2 15-fold and increases the IC50 20-fold. This is the strongest improvement in O2 resistance reported so far, but it comes at the cost of reduced substrate affinity.
A structure-guided rational design to invert the coenzyme specificity of GDH by targeting a single residue within the conserved GXXXGXG motif of the Rossmann fold provides a generalizable framework for engineering cofactor preference in short-chain dehydrogenase/reductase family enzymes.
Y. Shen, Keju Jing· International Journal of Fro...· 0 citations
This study provides an atomistic view of CODH as a finely tuned molecular nanomachine, in which entangled hydrophilic and hydrophobic networks coordinate substrate and water delivery to the C-cluster, while key protein-matrix residues act as strategic gatekeepers.
Shalini Yadav, Dimitrios A. Pantazis· Chemical Science· 0 citations
We have determined the molecular structure and investigated the catalytic mechanism of two ribozymes of the Hepatitis delta virus family, found in the nematode Caenorhabditis briggsae and virus Ackermannviridae. Crystal structures of both conform to the double-pseudoknot architecture adopted by the viral HDV ribozyme....
Yu-Hang Luo, Xiao-Xue Chen, Xiao-Wei Lin et al.· Nature Communications· 0 citations
Photosystem II (PSII) catalyzes water oxidation and oxygen evolution by a light-induced electron transfer chain, leading to the generation of electrons, protons and dioxygen. D1-S264 is a residue located close to the QB-binding site, and mutation of this residue has been shown to bring significant effects on the electr...
Song-Bo Fan, Y. Nakajima, K. Kato et al.· Biochimica et Biophysica Act...· 0 citations
The metabolism of gibberellin (GA) is generally mediated by GA 2-oxidase (GA2ox) through 2β-hydroxylation. These enzymes belong to the 2-oxoglutarate-dependent dioxygenase (2ODD, DOX) superfamily. However, MdDOX-Co, another 2ODD, was recently found to catalyze atypical GA 12α-hydroxylation. MdDOX-Co belongs to the DOXC...
Taiki Inoue, Yusaku Karasuno, T. Wakabayashi et al.· Biochimie· 0 citations
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.