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从蜡状芽孢杆菌中生产和纯化有前景的微生物α-淀粉酶及其作为抗铜绿假单胞菌生物膜剂的评估。

A promising microbial α-amylase production, and purification from Bacillus cereus and its assessment as antibiofilm agent against Pseudomonas aeruginosa pathogen.

机构信息

Department of Pharmaceutical Microbiology, Faculty of Pharmacy, Tanta University, Tanta, Egypt.

Departemet of Chemistry of Natural and Microbial Products, National Research Centre, Dokki, Cairo, Egypt.

出版信息

Microb Cell Fact. 2023 Aug 1;22(1):141. doi: 10.1186/s12934-023-02139-6.

Abstract

BACKGROUND AND AIM

The purpose of the current study is to isolate a heavily amylase-producing bacteria of the genus Bacillus from soil samples, optimize the production of the enzyme, purify it, and evaluate its activity against biofilm-producing bacteria. A total of 12 soil samples were collected and screened for promising Bacillus species with good amylolytic activity. Isolation was done by serial dilution and plating technique and amylolytic activity was determined by starch agar plate method. Among the 12 Bacillus isolates recovered from soil samples, 7 showed positive α-amylase production. The best isolate that recorded the greatest amylolytic activity was selected for further studies. This isolate was identified by 16S rRNA sequencing as Bacillus cereus and registered under gene bank accession number OP811897. Furthermore, the α-amylase enzyme was produced by a submerged fermentation technique using best production media and partially purified by ammonium sulfate and chilled ethanol and molecular weight had been determined by SDS-PAGE gel electrophoresis. The production of α-amylase was optimized experimentally by one-factor at a time protocol and statistically by Plackett-Burman design as well as RSM CCD design. Data obtained from OFAT and CCD revealed that α-amylase activities were 1.5- and twofold respectively higher as compared to un-optimized conditions. The most significant factors had been identified and optimized by CCD design.

RESULTS

Among the eleven independent variables tested by PBD, glucose, peptone, (NH4)SO4, and Mg SO were the most significant parameters for α-amylase production with an actual yield of 250U/ml. The best physical parameters affecting the enzyme production were incubation time at 35 °C, and pH 5.5 for 48 h. The partially purified enzyme with 60% ammonium sulphate saturation with 1.38- fold purification showed good stability characteristics at a storage temperature of 4 °C and pH up to 8.5 for 21 days. Antibiofilm activity of purified α-amylase was determined against Pseudomonas aeruginosa (ATCC 35659) by spectrophotometric analysis and CLSM microscopic analysis. Results demonstrated biofilm inhibition by 84% of the formed Pseudomonas biofilm using a microtiter plate assay and thickness inhibition activity by 83% with live/Dead cells percentage of 17%/83% using CLSM protocol.

CONCLUSIONS

A highly stable purified α-amylase from B. cereus showed promising antibiofilm activity against one of the clinically important biofilm-forming MDR organisms that could be used as a cost-effective tool in pharmaceutical industries.

摘要

背景与目的

本研究的目的是从土壤样本中分离出一种产淀粉酶的芽孢杆菌属细菌,优化酶的生产,对其进行纯化,并评估其对生物膜形成细菌的活性。共采集 12 个土壤样本,筛选出具有良好淀粉酶活性的有希望的芽孢杆菌属。通过连续稀释和平板技术进行分离,通过淀粉琼脂平板法测定淀粉酶活性。从土壤样本中回收的 12 个芽孢杆菌属分离物中,有 7 个显示出阳性α-淀粉酶产生。选择记录最大淀粉酶活性的最佳分离物进行进一步研究。该分离物通过 16S rRNA 测序鉴定为蜡样芽孢杆菌,并在基因银行注册号 OP811897 下注册。此外,α-淀粉酶酶通过最佳生产培养基的液体发酵技术产生,并通过硫酸铵和冷乙醇部分纯化,并通过 SDS-PAGE 凝胶电泳确定分子量。通过单因素实验方案和 Plackett-Burman 设计以及 RSM CCD 设计对α-淀粉酶的生产进行了实验优化。通过 OFAT 和 CCD 获得的数据显示,与未优化条件相比,α-淀粉酶活性分别提高了 1.5 倍和 2 倍。通过 CCD 设计确定并优化了最重要的因素。

结果

在 PBD 测试的 11 个独立变量中,葡萄糖、蛋白胨、(NH4)2SO4和 Mg SO4是影响α-淀粉酶产生的最重要参数,实际产量为 250U/ml。影响酶产生的最佳物理参数为 35°C孵育时间和 48 h 时 pH 值为 5.5。在 4°C的储存温度和 pH 值高达 8.5 的条件下,具有 60%硫酸铵饱和度的部分纯化酶显示出良好的稳定性特征,在 21 天内保持 1.38 倍的纯化度。通过分光光度法分析和 CLSM 显微镜分析,测定了纯化的α-淀粉酶对铜绿假单胞菌(ATCC 35659)的抗生物膜活性。结果表明,微量滴定板测定法中铜绿假单胞菌生物膜形成的抑制率为 84%,使用活/死细胞百分比为 17%/83%的 CLSM 方案时,厚度抑制活性为 83%。

结论

从蜡样芽孢杆菌中分离出的一种高度稳定的纯化α-淀粉酶对一种具有临床重要性的生物膜形成 MDR 生物体表现出有希望的抗生物膜活性,可作为制药行业的一种具有成本效益的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ee9/10391895/271cdd932973/12934_2023_2139_Fig1_HTML.jpg

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