1.Expression and enzymatic characterization of a chitosanase with tolerance to a wide range of pH from Bacillus atrophaeus.
Wenjuan DU ; Awagul TURSUN ; Zhiqin DONG ; Huijuan MA ; Zhenghai MA
Chinese Journal of Biotechnology 2025;41(1):352-362
To screen and identify a chitosanase with high stability, we cloned the chitosanase gene from Bacillus atrophaeus with a high protease yield from the barren saline-alkali soil and expressed this gene in Escherichia coli. The expressed chitosanase of B. atrophaeus (BA-CSN) was purified by nickel-affinity column chromatography. The properties including optimal temperature, optimal pH, substrate specificity, and kinetic parameters of BA-CSN were characterized. The results showed that BA-CSN had the molecular weight of 31.13 kDa, the optimal temperature of 55 ℃, the optimal pH 5.5, and good stability at temperatures below 45 ℃ and pH 4.0-9.0. BA-CSN also had good stability within 4 h of pH 3.0 and 10.0, be activated by K+, Na+, Mn2+, Ca2+, Mg2+, and Co2+, (especially by Mn2+), and be inhibited by Fe3+, Cu2+, and Ag+. BA-CSN showcased the highest relative activity in the hydrolysis of colloidal chitosan, and it had good hydrolysis ability for colloidal chitin. Under the optimal catalytic conditions, BA-CSN demonstrated the Michaelis constant Km and maximum reaction rate Vmax of 9.94 mg/mL and 26.624 μmoL/(mL·min), respectively, for colloidal chitosan. In short, BA-CSN has strong tolerance to acids and alkali, possessing broad industrial application prospects.
Bacillus/genetics*
;
Hydrogen-Ion Concentration
;
Escherichia coli/metabolism*
;
Glycoside Hydrolases/biosynthesis*
;
Substrate Specificity
;
Enzyme Stability
;
Chitosan/metabolism*
;
Temperature
;
Kinetics
;
Cloning, Molecular
;
Bacterial Proteins/biosynthesis*
;
Recombinant Proteins/genetics*
2.Identification, characterization, substrate binding mode prediction, and modification of a novel amidohydrolase from Microbulbifer thermotolerans.
Nana XU ; Mingzhu YAN ; Hao WANG ; Xiao LIANG ; Weidong LIU ; Huimin QIN ; Jian GAO
Chinese Journal of Biotechnology 2025;41(9):3567-3578
Ochratoxin A (OTA) is ubiquitous in the food and feed fields. It has strong hepatotoxicity and nephrotoxicity, seriously threatening the health of humans and animals. Enzymatic degradation of mycotoxins is considered to be a promising method to control mycotoxin contaminations. In this study, a new ochratoxin A amidohydrolase from Microbulbifer thermotolerans (MiADH) was obtained. After heterologous expression in Escherichia coli and purification, the recombinant protein was studied regarding the hydrolysis activity, hydrolysis products, enzymatic properties, and substrate binding mode. MiADH can degrade OTA into ochratoxin α (OTα) and phenylalanine, demonstrating a detoxifying ability. It demonstrated the best performance at 70 ℃ and pH 8.0, and Cu2+ had the strongest inhibitory effect on the activity of MiADH. MiADH with good thermal stability exhibited huge potential for industrial application. Rational design guided by three-dimensional structural models and substrate docking analysis revealed the important amino acids affecting substrate binding and obtained multiple mutants with improved activity. Among these mutants, V324A had the highest activity, which was 4.2-fold that of the wild type. The identification of MiADH enriches the ochratoxin A degradation enzyme library and provides a new candidate enzyme for the biological detoxification of ochratoxin A in the food and feed industry.
Amidohydrolases/chemistry*
;
Ochratoxins/metabolism*
;
Substrate Specificity
;
Escherichia coli/metabolism*
;
Recombinant Proteins/metabolism*
;
Actinomycetales/genetics*
3.Signature motif identification and enzymatic characterization of a protein tyrosine phosphatase in Metarhizium anisopliae.
Ze TAN ; Pei ZHU ; Zhenlun LI ; Shuiying YANG
Chinese Journal of Biotechnology 2025;41(9):3579-3588
Protein tyrosine phosphatases (PTPs, EC 3.1.3.48) are key regulators of cellular processes, with the catalytic activity attributed to the conserved motif (H/V)CX5R(S/T), where cysteine and arginine residues are critical. Previous studies revealed that alternative splicing of extracellular phosphatase mRNA precursors in Metarhizium anisopliae generated two distinct transcripts, with the longer sequence containing a novel HCPTPMLS motif resembling PTP signatures but lacking the arginine residue. To identify the novel signature motif and characterize its enzymatic properties, we heterologously expressed and purified both proteins in Pichia pastoris and comprehensively characterized their enzymatic properties. The protein containing the HCPTPMLS motif (designated as L-protein) exhibited the highest activity at pH 5.5 and a strong preference for pTyr substrates. Its phosphatase activity was inhibited by Ag+, Zn2+, Cu2+, molybdate, and tungstate, but enhanced by Ca2+ and EDTA. AcP101 (lacking HCPTPMLS) showed the maximal activity at pH 6.5 and a strong preference toward pNPP (P < 0.05), with the activity inhibited by NaF and tartrate, but enhanced by Mg2+ and Mn2+. Functional analysis confirmed that the L-protein retained the PTP activity despite the absence of arginine in its signature motif, while AcP101 functioned as an acid phosphatase. This study provides the first functional validation of an arginine-deficient PTP motif, expanding the definition of PTP signature motifs and offering new insights for phosphatase classification.
Metarhizium/genetics*
;
Protein Tyrosine Phosphatases/chemistry*
;
Amino Acid Motifs
;
Recombinant Proteins/biosynthesis*
;
Amino Acid Sequence
;
Pichia/metabolism*
;
Fungal Proteins/chemistry*
;
Substrate Specificity
;
Saccharomycetales
4.Expression of β-xylosidase An-xyl from Aspergillus niger and characterization of its xylose tolerance.
Le LI ; Cheng PENG ; Kunpeng YU ; Yiling TANG ; Yanling LIN ; Lijun LI ; Hui NI ; Qingbiao LI
Chinese Journal of Biotechnology 2023;39(11):4593-4607
The hydrolysis of xylo-oligosaccharides catalyzed by β-xylosidase plays an important role in the degradation of lignocellulose. However, the enzyme is easily inhibited by its catalytic product xylose, which severely limits its application. Based on molecular docking, this paper studied the xylose affinity of Aspergillus niger β-xylosidase An-xyl, which was significantly differentially expressed in the fermentation medium of tea stalks, through cloning, expression and characterization. The synergistic degradation effect of this enzyme and cellulase on lignocellulose in tea stems was investigated. Molecular docking showed that the affinity of An-xyl to xylose was lower than that of Aspergillus oryzae β-xylosidase with poor xylose tolerance. The Ki value of xylose inhibition constant of recombinant-expressed An-xyl was 433.2 mmol/L, higher than that of most β-xylosidases of the GH3 family. The Km and Vmax towards pNPX were 3.6 mmol/L and 10 000 μmol/(min·mL), respectively. The optimum temperature of An-xyl was 65 ℃, the optimum pH was 4.0, 61% of the An-xyl activity could be retained upon treatment at 65 ℃ for 300 min, and 80% of the An-xyl activity could be retained upon treatment at pH 2.0-8.0 for 24 h. The hydrolysis of tea stem by An-xyl and cellulase produced 19.3% and 38.6% higher reducing sugar content at 2 h and 4 h, respectively, than that of using cellulase alone. This study showed that the An-xyl mined from differential expression exhibited high xylose tolerance and higher catalytic activity and stability, and could hydrolyze tea stem lignocellulose synergistically, which enriched the resource of β-xylosidase with high xylose tolerance, thus may facilitate the advanced experimental research and its application.
Aspergillus niger/genetics*
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Xylose/metabolism*
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Molecular Docking Simulation
;
Xylosidases/genetics*
;
Cellulases
;
Tea
;
Hydrogen-Ion Concentration
;
Substrate Specificity
5.Heterologous expression of a novel β-glucosidase BglD2 and its application in polydatin-hydrolyzing.
Cheng HE ; Yan WU ; Chunyu MENG ; Yazhong XIAO ; Zemin FANG ; Wei FANG
Chinese Journal of Biotechnology 2021;37(2):580-592
A novel β-glucosidase BglD2 with glucose and ethanol tolerant properties was screened and cloned from the deep-sea bacterium Bacillus sp. D1. The application potential of BglD2 toward polydatin-hydrolyzing was also evaluated. BglD2 exhibited the maximal β-glucosidase activity at 45 °C and pH 6.5. BglD2 maintained approximately 50% of its origin activity after incubation at 30 °C and pH 6.5 for 20 h. BglD2 could hydrolyze a variety of substrates containing β (1→3), β (1→4), and β (1→6) bonds. The activity of β-glucosidase was enhanced to 2.0 fold and 2.3 fold by 100 mmol/L glucose and 150 mmol/L xylose, respectively. BglD2 possessed ethanol-stimulated and -tolerant properties. At 30 °C, the activity of BglD2 enhanced to 1.2 fold in the presence of 10% ethanol and even remained 60% in 25% ethanol. BglD2 could hydrolyze polydatin to produce resveratrol. At 35 °C, BglD2 hydrolyzed 86% polydatin after incubation for 2 h. Thus, BglD2 possessed glucose and ethanol tolerant properties and can be used as the potential candidate of catalyst for the production of resveratrol from polydatin.
Enzyme Stability
;
Glucose
;
Glucosides/pharmacology*
;
Hydrogen-Ion Concentration
;
Stilbenes/pharmacology*
;
Substrate Specificity
;
Temperature
;
Xylose
;
beta-Glucosidase/genetics*
6.Oligomerization triggered by foldon to enhance the catalytic efficiency of feruloyl esterase.
Lei ZHANG ; Linchao LEI ; Guangya ZHANG ; Xialan LI
Chinese Journal of Biotechnology 2019;35(5):816-826
A new method to express oligomerized feruloyl esterase (FAE) in Pichia pastoris GS115 to improve the catalytic efficiency was developed. It was realized by fusing the foldon domain at the C-terminus of FAE, and the fusion protein was purified by histidine tag. Fusion of the feruloyl esterase with the foldon domain resulted spontaneously forming a trimer FAE to improve the catalytic performance. The oligomerized FAE and monomeric FAE were obtained by purification. The apparent molecular weight of the oligomerized FAE was about 110 kDa, while the monomeric FAE about 40 kDa, and the optimum temperature of the oligomerized FAE was 50 °C, which is the same as the monomeric one. The optimal pH of the oligomerized FAE is 5.0, while the optimal pH of the monomer FAE is 6.0. When compared with the monomeric ones, the catalytic efficiency (kcat/Km) of the oligomerized FAE increased 7.57-folds. The catalytic constant (kcat) of the oligomerized FAE increased 3.42-folds. The oligomerized FAE induced by foldon have advantages in the catalytic performances, which represents a simple and effective enzyme-engineering tool. The method proposed here for improving the catalytic efficiency of FAE would have great potentials for improving the catalytic efficiency of other enzymes.
Carboxylic Ester Hydrolases
;
metabolism
;
Catalysis
;
Molecular Weight
;
Pichia
;
genetics
;
metabolism
;
Polymerization
;
Protein Engineering
;
Substrate Specificity
7.Protein engineering: from directed evolution to computational design.
Ge QU ; Tong ZHU ; Yingying JIANG ; Bian WU ; Zhoutong SUN
Chinese Journal of Biotechnology 2019;35(10):1843-1856
By constructing mutant libraries and utilizing high-throughput screening methods, directed evolution has emerged as the most popular strategy for protein design nowadays. In the past decade, taking advantages of computer performance and algorithms, computer-assisted protein design has rapidly developed and become a powerful method of protein engineering. Based on the simulation of protein structure and calculation of energy function, computational design can alter the substrate specificity and improve the thermostability of enzymes, as well as de novo design of artificial enzymes with expected functions. Recently, machine learning and other artificial intelligence technologies have also been applied to computational protein engineering, resulting in a series of remarkable applications. Along the lines of protein engineering, this paper reviews the progress and applications of computer-assisted protein design, and current trends and outlooks of the development.
Directed Molecular Evolution
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High-Throughput Screening Assays
;
Protein Engineering
;
Proteins
;
chemistry
;
genetics
;
metabolism
;
Substrate Specificity
8.Heterologous expression and substrate specificity of ketoreductase domain in bacillaene polyketide synthase.
Xiaohui SUN ; Chengchuan CHE ; Junjie JI ; Jianting ZHENG ; Ge YANG
Chinese Journal of Biotechnology 2015;31(9):1355-1362
The ketoreductase (KR) domain in the first extending module of the polyketide synthase (PKS) catalyzes the reductions of both an α-keto group and a β-keto group in the biosynthesis of bacillaene, suggesting the intrinsic substrate promiscuity. In order to further investigate the substrate specificity, the KR domain (BacKR1) was heterologously overexpressed in Escherichia coli. In vitro enzymatic analysis showed that only one of the four diastereomers was formed in the reduction of the racemic (±)-2-methyl-3-oxopentanoyl-N-acetylcysteamine thioester catalyzed by BacKR1. In addition, BacKR1 was revealed to catalyze the reductions of cyclohexanone and p-chloroacetophenone, indicating the potential of KR domians of PKSs as biocatalysts.
Bacterial Proteins
;
genetics
;
metabolism
;
Catalysis
;
Cyclohexanones
;
metabolism
;
Escherichia coli
;
enzymology
;
Polyketide Synthases
;
genetics
;
metabolism
;
Protein Structure, Tertiary
;
Substrate Specificity
;
omega-Chloroacetophenone
;
metabolism
9.The structure of WbnH in a near active state.
Fengzhi LI ; Siwei LI ; Xiaofen LIU ; Xue YANG ; Peng WANG ; Yuequan SHEN
Protein & Cell 2015;6(8):615-618
Binding Sites
;
Catalytic Domain
;
Crystallography, X-Ray
;
Escherichia coli
;
genetics
;
metabolism
;
Escherichia coli Proteins
;
chemistry
;
genetics
;
metabolism
;
Models, Molecular
;
N-Acetylgalactosaminyltransferases
;
chemistry
;
genetics
;
metabolism
;
Protein Structure, Secondary
;
Protein Structure, Tertiary
;
Substrate Specificity
10.Increasing activity of a monoamine oxidase by random mutation.
Xuejun CHEN ; Yuanhui MA ; Jianhua SHAO ; Dunyue LAI ; Zhiguo WANG ; Zhenming CHEN
Chinese Journal of Biotechnology 2014;30(1):109-118
The monoamine oxidase mutant A-1 (F210V/L213C) from Aspergillus niger showed some catalytic activity on mexiletine. To futher improve its activity, the mutant was subjected to directed evolution with MegaWHOP PCR (Megaprimer PCR of Whole Plasmid) and selection employing a high-throughput agar plate-based colorimetric screen. This approach led to the identification of a mutant ep-1, which specific activity was 189% of that for A-1. The ep-1 also showed significantly improved enantioselectivity, with the E value increased from 101 to 282; its kinetic k(cat)/K(m) value increased from 0.001 51 mmol/(L x s) to 0.002 89 mmol/(L x s), suggesting that catalytic efficiency of ep-1 had been improved. The mutant showed obviously higher specific activities on 7 of all tested 11 amines substrates, and the others were comparable. Sequence analysis revealed that there was a new mutation T162A on ep-1. The molecular dynamics simulation indicated that T162A may affect the secondary structure of the substrate channel and expand the binding pocket.
Aspergillus niger
;
enzymology
;
Catalysis
;
Kinetics
;
Monoamine Oxidase
;
genetics
;
metabolism
;
Mutation
;
Polymerase Chain Reaction
;
Protein Engineering
;
Protein Structure, Secondary
;
Substrate Specificity

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