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Escherichia coli Ghost Production by Expression of Lysis Gene E and Staphylococcal Nuclease

机译:裂解基因E和葡萄球菌核酸酶的表达产生大肠杆菌

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The production of bacterial ghosts from Escherichia coli is accomplished by the controlled expression of phage φX174 lysis gene E and, in contrast to other gram-negative bacterial species, is accompanied by the rare detection of nonlysed, reproductive cells within the ghost preparation. To overcome this problem, the expression of a secondary killing gene was suggested to give rise to the complete genetic inactivation of the bacterial samples. The expression of staphylococcal nuclease A in E. coli resulted in intracellular accumulation of the protein and degradation of the host DNA into fragments shorter than 100 bp. Two expression systems for the nuclease are presented and were combined with the protein E-mediated lysis system. Under optimized conditions for the coexpression of gene E and the staphylococcal nuclease, the concentration of viable cells fell below the lower limit of detection, whereas the rates of ghost formation were not affected. With regard to the absence of reproductive cells from the ghost fractions, the reduction of viability could be determined as being at least 7 to 8 orders of magnitude. The lysis process was characterized by electrophoretic analysis and absolute quantification of the genetic material within the cells and the culture supernatant via real-time PCR. The ongoing degradation of the bacterial nucleic acids resulted in a continuous quantitative clearance of the genetic material associated with the lysing cells until the concentrations fell below the detection limits of either assay. No functional, released genetic units (genes) were detected within the supernatant during the lysis process, including nuclease expression.
机译:通过控制噬菌体φX174裂解基因E的表达来完成大肠杆菌的细菌重影生产,并且与其他革兰氏阴性细菌相反,该技术伴随着罕见检测到重影制剂中未裂解的生殖细胞。为了克服这个问题,提出了第二杀伤基因的表达引起细菌样品的完全基因失活。金黄色葡萄球菌核酸酶A在大肠杆菌中的表达导致蛋白质的细胞内积累和宿主DNA降解成短于100 bp的片段。提出了两种核酸酶表达系统,并与蛋白E介导的裂解系统结合。在基因E和葡萄球菌核酸酶共表达的最佳条件下,活细胞浓度降至检测下限以下,而鬼影形成的速率不受影响。关于不存在来自鬼影级分的生殖细胞,活力的降低可以确定为至少7至8个数量级。通过电泳分析和通过实时PCR对细胞内的遗传物质和培养上清液进行绝对定量来表征裂解过程。细菌核酸的不断降解导致与裂解细胞相关的遗传物质的连续定量清除,直到浓度降至任一测定的检测限以下。在裂解过程中,包括核酸酶表达在内的上清液中未检测到功能性,释放的遗传单位(基因)。

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