The transesterification activity, autolysis, thermal stability and conformation of subtilisin Carlsberg, made soluble in dioxane by covalent linking to methoxypoly(ethylene glycol) (PEG), were investigated as a function of the concentration of water in the medium. Electrospray mass spectrometry showed that the modified enzyme preparation was a mixture of proteins containing from 2 to 5 covalently linked PEG chains per subtilisin molecule. PEG-subtilisin catalyzed transesterification between vinyl butyrate and 1-hexanol was optimum at 0.55 MH(2)O, while hydrolysis prevailed above 2 MH(2)O. There was a decrease in the overall enzyme activity with increasing water concentration because of autolysis and denaturation of the enzyme. Subtilisin powder and celite-immobilized subtilisin were more stable and less susceptible to autolysis than the PEG-modified enzyme. Circular dichroism and intrinsic protein-fluorescence studies showed that the conformation of PEG-subtilisin did not change as a function of water concentrations between 0 and 9 M. The K(m,app) value of PEG-subtilisin for 1-hexanol was highly influenced by water, which behaved as a competitive inhibitor in the transesterification reaction with an affinity for the enzyme similar to that of the alcohol. The K(m,app) for the acylating agent was not significantly modified by water. Lyoprotectants such as sorbitol and free PEG did not influence the activity of PEG-subtilisin but notably increased the activity of subtilisin powder and celite-immobilized subtilisin. The addition of 1.7-5.5 M water, however, rendered enzyme preparations containing no additives as active as those containing the lyoprotectants.
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http://dx.doi.org/10.1002/(SICI)1097-0290(19970405)54:1<50::AID-BIT6>3.0.CO;2-X | DOI Listing |
Folia Microbiol (Praha)
January 2025
Biofuels Institute, School of Emergency Management, School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, 212013, China.
Ginsenoside Rh2(S) is well-known for its therapeutic potential against diverse conditions, including some cancers, inflammation, and diabetes. The enzymatic activity of uridine diphosphate glycosyltransferase 51 (UGT51) from Saccharomyces cerevisiae plays a pivotal role in the glycosylation process between UDP-glucose (donor) and protopanaxadiol (acceptor), to form ginsenoside Rh2. However, the catalytic efficiency of the UGT51 has remained a challenging task.
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February 2025
Institute of Physics, Biophysics, Martin-Luther-University Halle-Wittenberg, Halle (Saale), Germany.
The B domain of protein A is a biotechnologically important three-helix bundle protein. It binds the Fc fragment of antibodies with helix 1/2 and the Fab region with helix 2/3. Here we designed a helix shuffled variant by changing the connectivity of the helices, in order to redesign the helix bundle, yielding altered helix-loop-helix properties.
View Article and Find Full Text PDFProtein Sci
February 2025
Department of Molecular Biology, University of Wyoming, Laramie, Wyoming, USA.
Organisms from all kingdoms of life depend on Late Embryogenesis Abundant (LEA) proteins to survive desiccation. LEA proteins are divided into broad families distinguished by the presence of family-specific motif sequences. The LEA_4 family, characterized by 11-residue motifs, plays a crucial role in the desiccation tolerance of numerous species.
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February 2025
York Structural Biology Laboratory, Department of Chemistry, University of York, York, UK.
Tryptophan mannosylation, the covalent addition of an α-ᴅ-mannose sugar to a tryptophan side chain, is a post-translational modification (PTM) that can affect protein stability, folding, and interactions. Compared to other forms of protein glycosylation, it is relatively uncommon but is affected by conformational anomalies and modeling errors similar to those seen in N- and O-glycans in the Protein Data Bank (PDB). In this work, we report methods for detecting, building, and improving mannose structures linked to tryptophans.
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January 2025
Chemical Biotechnology, Groningen Biomolecular Sciences and Biotechnology Institute (GBB), University of Groningen, 9747 AG Groningen, the Netherlands.
Aspartate ammonia lyases catalyze the reversible amination of fumarate to l-aspartate. Recent studies demonstrate that the thermostable enzyme from sp. YM55-1 (AspB) can be engineered for the enantioselective production of substituted β-amino acids.
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