Aug 2026· FEBS Open Bio· 0 citations· 101 references
Medicine
TL;DR
The biochemical characterization and crystal structure of Ta0887, a novel esterase from the thermoacidophilic archaeon Thermoplasma acidophilum, provide a basis for the future engineering of Ta0887 with the aim of enhancing its potential for industrial and biotechnological applications.
Abstract
Microbial esterases are versatile and stable enzymes with a wide range of biotechnological applications. However, few esterases have been characterized from archaea, an important source of extremophilic enzymes. In this study, we report the biochemical characterization and crystal structure of Ta0887, a novel esterase from the thermoacidophilic archaeon Thermoplasma acidophilum. The protein was successfully cloned, expressed, and purified in Escherichia coli. Light scattering assays revealed that Ta0887 is a monomer in solution. Activity assays using p‐nitrophenyl (p‐NP) esters confirmed its esterase activity, showing a substrate preference for p‐NP hexanoate (C6). Furthermore, the substitution of Ser95 with alanine completely abolished enzymatic activity, thereby confirming its essential role as the nucleophilic residue of the catalytic triad. The enzyme exhibited optimal activity at 65 °C and pH 8.0. Notably, Ta0887 displayed high thermal stability, retaining 66% residual activity after incubation at 80 °C for 2 h, consistent with its thermal denaturation midpoint temperature of 80.6 °C. The crystal structure of Ta0887, resolved at 1.93 Å, revealed an α/β‐hydrolase core domain consisting of an eight‐strand β‐sheet, surrounded by seven α‐helices, and a cap domain comprising four α‐helices. Ta0887 features a large substrate‐binding pocket at the interface between the two domains that contains the conserved residues Ser95, Asp187, and His215 of the catalytic triad. Further analysis indicates that an efficiently packed hydrophobic core is a key feature for the observed thermostability. The findings from this study provide a basis for the future engineering of Ta0887 with the aim of enhancing its potential for industrial and biotechnological applications.
Comparative structural analysis with a thermophilic homolog Est5250 revealed that FE2495 possessed a large catalytic pocket, fewer hydrogen bonds and salt bridges, and a distinct amino acid composition depleted in arginine, providing a possible explanation for its broad temperature tolerance.
Yuan-Fang He, Zeyuan Sun, Sheng-Cai Gao et al.· International Journal of Bio...· 0 citations
This study presents the first characterization of a GH3 β-glucosidase from L. buchneri and reveals a non-classical stabilizing effect of EDTA, offering valuable insights for enzyme engineering and biocatalytic applications.
Hui Tang, Jinjian He, Can Li et al.· Metabolites· 0 citations
BbAS is established as a thermostable and industrially promising biocatalyst for efficient turanose production through sequence-based analysis and molecular dynamics simulations.
Jeon-Uk Kang, Ye-Jin Kim, Dong-Ho Seo et al.· Journal of Agricultural and...· 0 citations
Nitrile hydratase is a key enzyme for nitrile-to-amide hydration under mild conditions, yet its application is limited by low heterologous expression, poor solubility, and suboptimal catalysis. Here, we present an integrated strategy to enhance expression, assembly, and function of Pseudonocardia thermophila NHase (PtN...
Xiao-Lin You, Yu-Qing Chen, Zi-Ying Tan et al.· International Journal of Bio...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.