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首页> 外文期刊>Engineering in Life Sciences >Enhancement of extracellular bispecific anti-MUC1 nanobody expression in E. coli BL21 (DE3) by optimization of temperature and carbon sources through an autoinduction condition
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Enhancement of extracellular bispecific anti-MUC1 nanobody expression in E. coli BL21 (DE3) by optimization of temperature and carbon sources through an autoinduction condition

机译:通过自动化条件优化温度和碳源,通过优化温度和碳源来增强大肠杆菌BL21(DE3)中的细胞外双特异性抗MUC1纳米谱表达

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摘要

Escherichia coli is one of the most suitable hosts for production of antibodies and antibody fragments. Antibody fragment secretion to the culture medium improves product purity in cell culture and diminishes downstream costs. In this study, E. coli strain BL21 (DE3) harboring gene encoding bispecific anti-MUC1 nanobody was selected, and the autoinduction methodology for expression of bispecific anti-MUC1 nanobody was investigated. Due to the replacement of IPTG by lactose as inducer, less impurity and toxicity in the final product were observed. To increase both intracellular and extracellular nanobody production, initially, the experiments were performed for the key factors including temperature and duration of protein expression. The highest amount of nanobody was produced after 21 h at 33 degrees C. The effect of different carbon sources, glycerol, glucose, lactose, and glycine as a medium additive at optimum temperature and time were also assessed by using response surface methodology. The optimized concentrations of carbon sources were obtained as 0.75% (w/v), 0.03% (w/v), 0.1% (w/v), and 0.75% (w/v) for glycerol, glucose, lactose, and glycine, respectively. Finally, the production of nanobody in 2 L fermenter under the optimized autoinduction conditions was evaluated. The results show that the total titer of 87.66 mu g/mL anti-MUC1 nanobody, which is approximately seven times more than the total titer of nanobody produced in LB culture medium, is 12.23 mu g/L .
机译:大肠杆菌是用于生产抗体和抗体片段的最合适的宿主之一。抗体片段分泌培养基可提高细胞培养物的产物纯度,并降低下游成本。在本研究中,选择了编码编码双特异性抗MUC1纳米曲面的基因的大肠杆菌菌株BL21(DE3),研究了用于表达双特异性抗MUC1纳米体的自动化方法。由于乳糖替换IPTG作为诱导剂,观察到最终产品中的较少的杂质和毒性。最初,增加细胞内和细胞外纳米体产生,对蛋白质表达温度和持续时间的关键因素进行实验。通过使用响应表面方法,还通过使用响应表面方法评估了在33℃下在21小时后产生最高量的纳米曲面。不同碳源,甘油,葡萄糖,乳糖和甘氨酸作为介质添加剂的效果。获得优化的碳源浓度为0.75%(w / v),0.03%(w / v),0.1%(w / v)和0.75%(w / v)用于甘油,葡萄糖,乳糖和甘氨酸, 分别。最后,评价了在优化的自动诱导条件下在2L发酵罐中产生纳米脂肪。结果表明,总滴度为87.66μg/ ml抗MUC1纳米曲面,其比LB培养基中产生的纳米曲面总滴度大约七倍,为12.23μg/ L。

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