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The alkaline protease from strain 2709 (AprE 2709) is widely used in Chinese industries but faces stability challenges under high-temperature conditions. This study employed molecular modeling and mutagenesis to identify Asn residues at positions 61, 160, and 211 as key sites affecting the stability of AprE 2709. By leveraging the additive and cooperative effects of mutations, the mutant enzyme AprE 2709 (N61G/N160G/N211G) was engineered, exhibiting enhanced thermostability and catalytic activity. The mutant demonstrated a 2.89-fold increase in half-life at 60 °C and a 1.56-fold improvement in catalytic efficiency compared to the wild-type enzyme. Structural analysis revealed that the improved thermostability was due to altered electrostatic interactions and strengthened hydrophobic contacts. Targeting Asn residues prone to deamidation presents a promising strategy for improving protein heat tolerance. These findings not only enhance our understanding of enzyme stability but also lay a foundation for future research aimed at optimizing alkaline proteases for diverse industrial applications, particularly in high-temperature processes.
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http://dx.doi.org/10.3390/molecules30051160 | DOI Listing |
J Gen Appl Microbiol
May 2025
State Key Laboratory of Industrial Fermentation Microbiology of the Ministry of Education, College of Biotechnology, Tianjin University of Science and Technology.
Serratia nuclease Nuc A is a non-specific nucleotide hydrolase that has been widely used in large-scale protein purification or eliminating nucleic acid contamination from purified proteins. To enhance the enzyme production, the Serratia nuclease gene was synthesized and expressed in Bacillus licheniformis 2709, a robust strain capable of secreting native and heterologous proteins selectively or non-selectively. To further increase the secretory expression level of the enzyme, different strong promoters and signal peptides were fused with the mature Nuc A-encoding gene at various genetic loci.
View Article and Find Full Text PDFMolecules
March 2025
College of Chemistry and Chemical Engineering, Shanxi University, Taiyuan 030006, China.
The alkaline protease from strain 2709 (AprE 2709) is widely used in Chinese industries but faces stability challenges under high-temperature conditions. This study employed molecular modeling and mutagenesis to identify Asn residues at positions 61, 160, and 211 as key sites affecting the stability of AprE 2709. By leveraging the additive and cooperative effects of mutations, the mutant enzyme AprE 2709 (N61G/N160G/N211G) was engineered, exhibiting enhanced thermostability and catalytic activity.
View Article and Find Full Text PDFInt J Biol Macromol
May 2025
Key laboratory of industrial fermentation microbiology, Ministry of education, College of biotechnology, Tianjin University of Science & Technology, Tianjin 300450, PR China. Electronic address:
The DegS/DegU two-component signal transduction system (TCS), plays significant roles in a broad range of bacterial responses to the complicated environment in Bacillus subtilis. However, few efforts have been made to explore the physiological functions of DegS/DegU in alkaline protease (AprE) biosynthesis in the industrial strain Bacillus licheniformis 2709. In this study, it was found that the biosynthesis of AprE is severely hampered in degS and degU deficient mutants compared with the original strain.
View Article and Find Full Text PDFInt J Biol Macromol
May 2024
Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, College of Biotechnology, Tianjin University of Science &Technology, Tianjin 300450, PR China. Electronic address:
Alkaline protease AprE, produced by Bacillus licheniformis 2709 is an important edible hydrolase, which has potential applications in nutrient acquisition and medicine. The expression of AprE is finely regulated by a complex transcriptional regulation system. However, there is little study on transcriptional regulation mechanism of AprE biosynthesis in Bacillus licheniformis, which limits system engineering and further enhancement of AprE.
View Article and Find Full Text PDFEnzyme Microb Technol
January 2024
Key laboratory of industrial fermentation microbiology, Ministry of education, College of biotechnology, Tianjin University of Science &Technology, Tianjin 300450, PR China. Electronic address:
Bacillus licheniformis 2709 is the main industrial producer of alkaline protease (AprE), but its biosynthesis is strictly controlled by a highly sophisticated transcriptional network. In this study, the UP elements of aprE located 74-98, 98-119 and 140-340 bp upstream of the transcriptional start site (TSS) were identified, which presented obvious effects on the transcription of aprE. To further analyze the transcriptional mechanism, the specific proteins binding to the approximately 500-bp DNA sequences were subsequently captured by reverse-chromatin immunoprecipitation (reverse-ChIP) and DNA pull-down (DPD) assays, which captured the transcriptional factors CggR, FruR, and YhcZ.
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