Loftie-EatonW., and RawlingsD.E.2012. Diversity, biology and evolution of IncQ-family plasmids. Plasmid. 67:15–34.
2.
OlivaM., MonnoR., D'AddabboP., PesoleG., DionisiA.M, ScrasciaM., ChiaraM., HornerD.S, ManzariC., LuzziI., CaliaC., D'ErchiaA.M, and PazzaniC.2017. A novel group of IncQ1 plasmids conferring multidrug resistance. Plasmid. 89:22–26.
3.
CerdeiraL.T., LamM.M.C, WyresK.L, WickR.R, JuddL.M, LopesR., RibasR.M, MoraisM.M, HoltK.E, and LincopanN.2019. Small IncQ1 and Col-like plasmids harboring blaKPC-2 and non-Tn4401 elements (NTEKPC-IId) in high-risk lineages of Klebsiella pneumoniae CG258. Antimicrob. Agents Chemother. AAC:02140-18.
4.
WickR.R., JuddL.M, GorrieC.L, and HoltK.E.2017. Unicycler: resolving bacterial genome assemblies from short and long sequencing reads. PLoS Comput. Biol. 13:e1005595.
5.
LeeK., and LeeB.2016. Structure, biology, and therapeutic application of toxin–antitoxin systems in pathogenic bacteria. Toxins. 8:305.
6.
CoskunU., CicekA.C, KilincC., GuckanR., DagciogluY., DemirO., and SandalliC.2018. Effect of mazEF, higBA and relBE toxin–antitoxin systems on antibiotic resistance in Pseudomonas aeruginosa and Staphylococcus isolates. Malawi. Med. J. 30:67–72.
7.
ZhangY., XiaB., LiM., ShiJ., LongY., JinY., BaiF., ChengZ., JinS., and WuW.2018. HigB reciprocally controls biofilm formation and the expression of type III secretion system genes through influencing the intracellular c-di-GMP level in Pseudomonas aeruginosa. Toxins. 10:E424.
8.
PoliskyB.1988. ColE1 replication control circuitry: sense from antisense. Cell. 55:929–932.
9.
WatveM.M., DahanukarN., and WatveM.G.2010. Sociobiological control of plasmid copy number in bacteria. PLoS One. 5:e9328.
10.
San MillanA., Santos-LopezA., Ortega-HuedoR., Bernabe-BalasC., KennedyS.P, and Gonzalez-ZornB.2015. Small-plasmid-mediated antibiotic resistance is enhanced by increases in plasmid copy number and bacterial fitness. Antimicrob. Agents Chemother. 59:3335–3341.