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Identification of a functional toxin-antitoxin system located in the genomic island PYG1 of piezophilic hyperthermophilic archaeon Pyrococcus yayanosii

机译:鉴定位于压叠高疗法古氏古菌yayanosii的基因组岛PyG1中的功能性毒素 - 抗毒素系统

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摘要

Toxin-antitoxin (TA) system is bacterial or archaeal genetic module consisting of toxin and antitoxin gene that be organized as a bicistronic operon. TA system could elicit programmed cell death, which is supposed to play important roles for the survival of prokaryotic population under various physiological stress conditions. The phage abortive infection system (AbiE family) belongs to bacterial type IV TA system. However, no archaeal AbiE family TA system has been reported so far. In this study, a putative AbiE TA system (PygAT), which is located in a genomic island PYG1 in the chromosome of Pyrococcus yayanosii CH1, was identified and characterized. In Escherichia coli, overexpression of the toxin gene pygT inhibited its growth while the toxic effect can be suppressed by introducing the antitoxin gene pygA in the same cell. PygAT also enhances the stability of shuttle plasmids with archaeal plasmid replication protein Rep75 in E. coli. In P. yayanosii, disruption of antitoxin gene pygA cause a significantly growth delayed under high hydrostatic pressure (HHP). The antitoxin protein PygA can specifically bind to the PygAT promoter region and regulate the transcription of pygT gene in vivo. These results show that PygAT is a functional TA system in P. yayanosii, and also may play a role in the adaptation to HHP environment.
机译:毒素 - 抗毒素(TA)系统是细菌或古遗传模块,由毒素和抗毒素基因组成,该基因被组织为双顺声操纵子。 TA系统可以引发编程的细胞死亡,该死亡应该在各种生理压力条件下发挥重原核群体的存活作用。噬菌体流产感染系统(Abie系列)属于细菌型IV TA系统。但是,到目前为止没有报告Archaeal Abie Family TA系统。在该研究中,鉴定并表征了位于发酵酵母yayanosii CH1中的染色体的基因组岛PyG1中的推定的Abie Ta系统(Pygat)。在大肠杆菌中,毒素基因PyGT的过表达抑制其生长,而通过在同一细胞中引入抗毒素基因Pyga可以抑制毒性效果。 Pygat还提高了在大肠杆菌中与古粒子质复制蛋白质Rep75的梭子质粒的稳定性。在P. Yayanosii中,抗毒素基因Pyga的破坏导致在高静水压力(HHP)下延迟的显着生长。抗毒素蛋白脓蛋白可以特异性结合Pygat启动子区域并调节体内PyGT基因的转录。这些结果表明,Pygat是P. Yayanosii的功能性TA系统,也可能在适应HHP环境中发挥作用。

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