A toxin-antitoxin system confers stability to the IncP-7 plasmid pCAR1

被引:4
|
作者
Takashima, Aya [1 ]
Kawano, Hibiki [1 ]
Ueda, Tomomi [1 ]
Suzuki-Minakuchi, Chiho [1 ,2 ]
Okada, Kazunori [1 ]
Nojiri, Hideaki [1 ,2 ]
机构
[1] Univ Tokyo, Agrobiotechnol Res Ctr, Grad Sch Agr & Life Sci, Bunkyo Ku, 1-1-1 Yayoi, Tokyo 1138657, Japan
[2] Univ Tokyo, Collaborat Res Inst Innovat Microbiol, Bunkyo Ku, 1-1-1 Yayoi, Tokyo 1138657, Japan
关键词
Escherichia coli; Plasmid; Pseudomonas; Stability; Toxin-antitoxin; COMPLETE NUCLEOTIDE-SEQUENCE; BROAD-HOST-RANGE; PSEUDOMONAS-FLUORESCENS; PROMISCUOUS PLASMID; GROWTH-INHIBITION; F-PLASMID; CARBAZOLE; BACTERIA; MAINTENANCE; PUTIDA;
D O I
10.1016/j.gene.2021.146068
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Toxin-antitoxin (TA) systems were initially discovered as plasmid addiction systems. Previously, our studies implied that the high stability of the IncP-7 plasmid pCAR1 in different Pseudomonas spp. hosts was due to the presence of a TA system on the plasmid. Bioinformatics approaches suggested that ORF174 and ORF175 could constitute a type II TA system, a member of the RES-Xre family, and that these two open reading frames (ORFs) constitute a single operon. As expected, the ORF175 product is a toxin, which decreases the viability of the host, P. resinovorans, while the ORF174 product functions as an antitoxin that counteracts the effect of ORF175 on cell growth. Based on these findings, we renamed ORF174 and ORF175 as prcA (antitoxin gene) and prcT (toxin gene), respectively. The prcA and prcT genes were cloned into the unstable plasmid vector pSEVA644. The recombinant vector was stably maintained in P. resinovorans and Escherichia coli cells under nonselective conditions following 6 days of daily subculturing. The empty vector (without the prcA and prcT genes) could not be maintained, which suggested that the PrcA/T system can be used as a tool to improve the stability of otherwise unstable plasmids in P. resinovorans and E. coli strains.
引用
收藏
页数:8
相关论文
共 40 条
  • [31] Identification of a functional toxin-antitoxin system located in the genomic island PYG1 of piezophilic hyperthermophilic archaeon Pyrococcus yayanosii
    Li, Zhen
    Song, Qinghao
    Wang, Yinzhao
    Xiao, Xiang
    Xu, Jun
    EXTREMOPHILES, 2018, 22 (03) : 347 - 357
  • [32] A Type III protein-RNA toxin-antitoxin system from Bacillus thuringiensis promotes plasmid retention during spore development
    Short, Francesca L.
    Monson, Rita E.
    Salmond, George P. C.
    RNA BIOLOGY, 2015, 12 (09) : 933 - 937
  • [33] Maintenance and genetic load of plasmid pKON1 of Paracoccus kondratievae, containing a highly efficient toxin-antitoxin module of the hipAB family
    Czarnecki, Jakub
    Dziewit, Lukasz
    Kowalski, Lukasz
    Ochnio, Magdalena
    Bartosik, Dariusz
    PLASMID, 2015, 80 : 45 - 53
  • [34] Identification of chromosomal type II toxin-antitoxin system from plant pathogenic Pseudomonas cichorii JBC 1
    Choi, Wonho
    Kim, Jae-hui
    Lee, Ju Seok
    Park, Jung-Ho
    MOLECULAR & CELLULAR TOXICOLOGY, 2023, 19 (03) : 613 - 620
  • [35] The bacterial Type III toxin-antitoxin system, ToxIN, is a dynamic protein-RNA complex with stability-dependent antiviral abortive infection activity
    Short, Francesca L.
    Akusobi, Chidiebere
    Broadhurst, William R.
    Salmond, George P. C.
    SCIENTIFIC REPORTS, 2018, 8
  • [36] The Type I toxin-antitoxin par locus from Enterococcus faecalis plasmid pAD1: RNA regulation by both cis- and trans-acting elements
    Weaver, Keith E.
    PLASMID, 2015, 78 : 65 - 70
  • [37] The chromosomal SezAT toxin-antitoxin system promotes the maintenance of the SsPI-1 pathogenicity island in epidemic Streptococcus suis
    Yao, Xinyue
    Chen, Tian
    Shen, Xiaodong
    Zhao, Yan
    Wang, Min
    Rao, Xiancai
    Yin, Supeng
    Wang, Jing
    Gong, Yali
    Lu, Shuguang
    Le, Shuai
    Tan, Yinling
    Tang, Jiaqi
    Hu, Fuquan
    Li, Ming
    MOLECULAR MICROBIOLOGY, 2015, 98 (02) : 243 - 257
  • [38] AvrRxo1 Is a Bifunctional Type III Secreted Effector and Toxin-Antitoxin System Component with Homologs in Diverse Environmental Contexts
    Triplett, Lindsay R.
    Shidore, Teja
    Long, John
    Miao, Jiamin
    Wu, Shuchi
    Han, Qian
    Zhou, Changhe
    Ishihara, Hiromichi
    Li, Jianyong
    Zhao, Bingyu
    Leach, Jan E.
    PLOS ONE, 2016, 11 (07):
  • [39] Chromosomal localization of PemIK toxin-antitoxin system results in the loss of toxicity - Characterization of pemIKSa1-Sp from Staphylococcus pseudintermedius
    Janczak, Monika
    Hyz, Karolina
    Bukowski, Michal
    Lyzen, Robert
    Hydzik, Marcin
    Wegrzyn, Grzegorz
    Szalewska-Palasz, Agnieszka
    Grudnik, Przemyslaw
    Dubin, Grzegorz
    Wladyka, Benedykt
    MICROBIOLOGICAL RESEARCH, 2020, 240
  • [40] Exploiting yoeB-yefM toxin-antitoxin system of Streptococcus pneumoniae on the selective killing of miR-21 overexpressing breast cancer cell line (MCF-7)
    Houri, Hamidreza
    Ghalavand, Zohreh
    Faghihloo, Ebrahim
    Fallah, Fatemeh
    Mohammadi-Yeganeh, Samira
    JOURNAL OF CELLULAR PHYSIOLOGY, 2020, 235 (03) : 2925 - 2936