Kuzminov, A. Bacterial nucleoid is a riddle wrapped in a mystery inside an enigma. J. Bacteriol. 206, e0021123 (2024).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Castañeda-Barba, S., Top, E. M. & Stalder, T. Plasmids, a molecular cornerstone of antimicrobial resistance in the One Health era. Nat. Rev. Microbiol. 22, 18–32 (2024).

Article 
PubMed 

Google Scholar
 

Jaworski, J. J. et al. ecDNA replication is disorganized and vulnerable to replication stress. Nucleic Acids Res. 53, gkaf711 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Kang, X. et al. Extrachromosomal DNA replication and maintenance couple with DNA damage pathway in tumors. Cell 188, 3405–3421.e27 (2025).

Article 
CAS 
PubMed 

Google Scholar
 

Sankar, V. et al. Genetic elements promote retention of extrachromosomal DNA in cancer cells. Nature 649, 152–160 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Kraft, K. et al. Enhancer activation from transposable elements in extrachromosomal DNA. Nat. Cell Biol. 27, 1914–1924 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Pradella, D. et al. Engineered extrachromosomal oncogene amplifications promote tumorigenesis. Nature 637, 955–964 (2025).

Article 
CAS 
PubMed 

Google Scholar
 

Yi, E., Chamorro González, R., Henssen, A. G. & Verhaak, R. G. W. Extrachromosomal DNA amplifications in cancer. Nat. Rev. Genet. 23, 760–771 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cox, D., Yuncken, C. & Spriggs, A. I. Minute chromatin bodies in malignant tumours of childhood. Lancet 1, 55–58 (1965).

Article 

Google Scholar
 

Lubs, H. A. Jr & Salmon, J. H. The chromosomal complement of human solid tumors. II. Karyotypes of glial tumors. J. Neurosurg. 22, 160–168 (1965).

Article 
PubMed 

Google Scholar
 

Kim, H. et al. Extrachromosomal DNA is associated with oncogene amplification and poor outcome across multiple cancers. Nat. Genet. 52, 891–897 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Bailey, C. et al. Origins and impact of extrachromosomal DNA. Nature 635, 193–200 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Pecorino, L. T., Verhaak, R. G. W., Henssen, A. & Mischel, P. S. Extrachromosomal DNA (ecDNA): an origin of tumor heterogeneity, genomic remodeling, and drug resistance. Biochem. Soc. Trans. 50, 1911–1920 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Hernandez-Beltran, J. C. R. et al. Plasmid-mediated phenotypic noise leads to transient antibiotic resistance in bacteria. Nat. Commun. 15, 2610 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Lange, J. T. et al. The evolutionary dynamics of extrachromosomal DNA in human cancers. Nat. Genet. 54, 1527–1533 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Wang, Y. et al. Extrachromosomal DNA gives cancer a new evolutionary pathway. Preprint at bioRxiv https://doi.org/10.1101/2025.04.26.650733 (2025).

Wu, S. et al. Circular ecDNA promotes accessible chromatin and high oncogene expression. Nature 575, 699–703 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Kado, C. I. Origin and evolution of plasmids. Antonie Van Leeuwenhoek 73, 117–126 (1998).

Article 
CAS 
PubMed 

Google Scholar
 

Rodríguez-Beltrán, J., DelaFuente, J., León-Sampedro, R., MacLean, R. C. & San Millán, Á Beyond horizontal gene transfer: the role of plasmids in bacterial evolution. Nat. Rev. Microbiol. 19, 347–359 (2021).

Article 
PubMed 

Google Scholar
 

Koonin, E. V. Temporal order of evolution of DNA replication systems inferred by comparison of cellular and viral DNA polymerases. Biol. Direct 1, 39 (2006).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Smillie, C., Garcillán-Barcia, M. P., Francia, M. V., Rocha, E. P. C. & de la Cruz, F. Mobility of plasmids. Microbiol. Mol. Biol. Rev. 74, 434–452 (2010).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ares-Arroyo, M., Coluzzi, C. & Rocha, E. P. C. Origins of transfer establish networks of functional dependencies for plasmid transfer by conjugation. Nucleic Acids Res. 51, 3001–3016 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ares-Arroyo, M., Nucci, A. & Rocha, E. P. C. Expanding the diversity of origin of transfer-containing sequences in mobilizable plasmids. Nat. Microbiol. 9, 3240–3253 (2024).

Article 
CAS 
PubMed 

Google Scholar
 

Tazzyman, S. J. & Bonhoeffer, S. Why there are no essential genes on plasmids. Mol. Biol. Evol. 32, 3079–3088 (2015).

CAS 
PubMed 

Google Scholar
 

Thomas, C. M. & Summers, D. Bacterial plasmids. Encyclopedia of Life Sciences https://doi.org/10.1002/9780470015902.a0000468.pub2 (2008).

Jurėnas, D., Fraikin, N., Goormaghtigh, F. & Van Melderen, L. Biology and evolution of bacterial toxin–antitoxin systems. Nat. Rev. Microbiol. 20, 335–350 (2022).

Article 
PubMed 

Google Scholar
 

Shigenobu, S. & Wilson, A. C. C. Genomic revelations of a mutualism: the pea aphid and its obligate bacterial symbiont. Cell. Mol. Life Sci. 68, 1297–1309 (2011).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Kirkness, E. F. et al. Genome sequences of the human body louse and its primary endosymbiont provide insights into the permanent parasitic lifestyle. Proc. Natl Acad. Sci. USA 107, 12168–12173 (2010).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Köstlbacher, S., Collingro, A., Halter, T., Domman, D. & Horn, M. Coevolving plasmids drive gene flow and genome plasticity in host-associated intracellular bacteria. Curr. Biol. 31, 346–357.e3 (2021).

Article 
PubMed 

Google Scholar
 

Shaw, L. P. et al. Niche and local geography shape the pangenome of wastewater- and livestock-associated Enterobacteriaceae. Sci. Adv. 7, eabe3868 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Harrison, P. W., Lower, R. P. J., Kim, N. K. D. & Young, J. P. W. Introducing the bacterial ‘chromid’: not a chromosome, not a plasmid. Trends Microbiol. 18, 141–148 (2010).

Article 
CAS 
PubMed 

Google Scholar
 

Guglielmini, J., Quintais, L., Garcillán-Barcia, M. P., de la Cruz, F. & Rocha, E. P. C. The repertoire of ICE in prokaryotes underscores the unity, diversity, and ubiquity of conjugation. PLoS Genet. 7, e1002222 (2011).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Pfeifer, E., Moura de Sousa, J. A., Touchon, M. & Rocha, E. P. C. Bacteria have numerous distinctive groups of phage-plasmids with conserved phage and variable plasmid gene repertoires. Nucleic Acids Res. 49, 2655–2673 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ravin, N. V., Svarchevsky, A. N. & Dehò, G. The anti-immunity system of phage-plasmid N15: identification of the antirepressor gene and its control by a small processed RNA. Mol. Microbiol. 34, 980–994 (1999).

Article 
CAS 
PubMed 

Google Scholar
 

Hall, J. P. J., Botelho, J., Cazares, A. & Baltrus, D. A. What makes a megaplasmid? Philos. Trans. R. Soc. Lond. B Biol. Sci. 377, 20200472 (2022).

Article 
CAS 
PubMed 

Google Scholar
 

Clowes, R. C. Molecular structure of bacterial plasmids. Bacteriol. Rev. 36, 361–405 (1972).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Fogarty, E. C. et al. A cryptic plasmid is among the most numerous genetic elements in the human gut. Cell 187, 1206–1222.e16 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cazares, A. et al. A megaplasmid family driving dissemination of multidrug resistance in Pseudomonas. Nat. Commun. 11, 1370 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Acman, M., van Dorp, L., Santini, J. M. & Balloux, F. Large-scale network analysis captures biological features of bacterial plasmids. Nat. Commun. 11, 2452 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Redondo-Salvo, S. et al. Pathways for horizontal gene transfer in bacteria revealed by a global map of their plasmids. Nat. Commun. 11, 3602 (2020).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Yu, M. K., Fogarty, E. C. & Eren, A. M. Diverse plasmid systems and their ecology across human gut metagenomes revealed by PlasX and MobMess. Nat. Microbiol. 9, 830–847 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Frolova, D. et al. Applying rearrangement distances to enable plasmid epidemiology with pling. Microb. Genom. 10, 001300 (2024).

CAS 
PubMed 
PubMed Central 

Google Scholar
 

Norberg, P. et al. The IncP-1 plasmid backbone adapts to different host bacterial species and evolves through homologous recombination. Nat. Commun. 2, 268 (2011).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Elken, E., Heinaru, E., Jõesaar, M. & Heinaru, A. Formation of new PHE plasmids in pseudomonads in a phenol-polluted environment. Plasmid 110, 102504 (2020).

Article 
CAS 
PubMed 

Google Scholar
 

Peters, M. et al. Acquisition of a deliberately introduced phenol degradation operon, pheBA, by different indigenous pseudomonas species. Appl. Environ. Microbiol. 63, 4899–4906 (1997).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Sheppard, A. E. et al. Nested Russian doll-like genetic mobility drives rapid dissemination of the carbapenem resistance gene blaKPC. Antimicrob. Agents Chemother. 60, 3767–3778 (2016).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cazares, A. et al. Pre- and postantibiotic epoch: the historical spread of antimicrobial resistance. Science 390, eadr1522 (2025).

Article 
CAS 
PubMed 

Google Scholar
 

Ipoutcha, T., Wang, Y., Rocha, E. P. C. & Penades, J. R. Interplay between mobile genetic elements drives a fusion–deletion life cycle of plasmids to fuel antimicrobial resistance. Preprint at bioRxiv https://doi.org/10.64898/2026.01.09.696371 (2026).

Hays, M., Young, J. M., Levan, P. F. & Malik, H. S. A natural variant of the essential host gene MMS21 restricts the parasitic 2-micron plasmid in Saccharomyces cerevisiae. eLife 9, e62337 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Hurst, G. D. & Werren, J. H. The role of selfish genetic elements in eukaryotic evolution. Nat. Rev. Genet. 2, 597–606 (2001).

Article 
CAS 
PubMed 

Google Scholar
 

Trivers, A. B. R. Genes in Conflict: The Biology of Selfish Genetic Elements (Harvard Univ. Press, 2006).

Leigh, E. G. How does selection reconcile individual advantage with the good of the group? Proc. Natl Acad. Sci. USA 74, 4542–4546 (1977).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Hotta, Y. & Bassel, A. Molecular size and circularity of DNA in cells of mammals and higher plants. Proc. Natl Acad. Sci. USA 53, 356–362 (1965).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Gaubatz, J. W. Extrachromosomal circular DNAs and genomic sequence plasticity in eukaryotic cells. Mutat. Res. 237, 271–292 (1990).

Article 
CAS 
PubMed 

Google Scholar
 

Dillon, L. W. et al. Production of extrachromosomal microDNAs is linked to mismatch repair pathways and transcriptional activity. Cell Rep. 11, 1749–1759 (2015).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Vilenchik, M. M. & Knudson, A. G. Endogenous DNA double-strand breaks: production, fidelity of repair, and induction of cancer. Proc. Natl Acad. Sci. USA 100, 12871–12876 (2003).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Eugen-Olsen, R. A. B., Hariprakash, J. M., Oestergaard, V. H. & Regenberg, B. Molecular mechanisms of extrachromosomal circular DNA formation. Nucleic Acids Res. 53, gkaf122 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Møller, H. D. et al. Circular DNA elements of chromosomal origin are common in healthy human somatic tissue. Nat. Commun. 9, 1069 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Gao, Z. et al. Excised DNA circles from V(D)J recombination promote relapsed leukaemia. Nature 645, 774–783 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Shee, C. et al. Engineered proteins detect spontaneous DNA breakage in human and bacterial cells. eLife 2, e01222 (2013).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Wang, W. et al. Genome-wide mapping of human DNA replication by optical replication mapping supports a stochastic model of eukaryotic replication. Mol. Cell 81, 2975–2988.e6 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Venter, J. C. et al. The sequence of the human genome. Science 291, 1304–1351 (2001).

Article 
CAS 
PubMed 

Google Scholar
 

Turner, K. M. et al. Extrachromosomal oncogene amplification drives tumour evolution and genetic heterogeneity. Nature 543, 122–125 (2017).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Noer, J. B., Hørsdal, O. K., Xiang, X., Luo, Y. & Regenberg, B. Extrachromosomal circular DNA in cancer: history, current knowledge, and methods. Trends Genet. 38, 766–781 (2022).

Article 
CAS 
PubMed 

Google Scholar
 

Haughey, M., Noorani, I., Swanton, C., Mischel, P. S. & Werner, B. Extrachromosomal DNA: shaping the evolutionary dynamics of cancer. Trends Cancer 11, 901–916 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Shoshani, O. et al. Chromothripsis drives the evolution of gene amplification in cancer. Nature 591, 137–141 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Noorani, I. et al. Extrachromosomal DNA-driven oncogene spatial heterogeneity and evolution in glioblastoma. Cancer Discov. 15, 2078–2095 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Maddamsetti, R. et al. Scaling laws of bacterial and archaeal plasmids. Nat. Commun. 16, 6023 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Prelich, G. Gene overexpression: uses, mechanisms, and interpretation. Genetics 190, 841–854 (2012).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Schimke, R. T., Kaufman, R. J., Alt, F. W. & Kellems, R. F. Gene amplification and drug resistance in cultured murine cells. Science 202, 1051–1055 (1978).

Article 
CAS 
PubMed 

Google Scholar
 

Normark, S., Edlund, T., Grundström, T., Bergström, S. & Wolf-Watz, H. Escherichia coli K-12 mutants hyperproducing chromosomal β-lactamase by gene repetitions. J. Bacteriol. 132, 912–922 (1977).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Sandegren, L. & Andersson, D. I. Bacterial gene amplification: implications for the evolution of antibiotic resistance. Nat. Rev. Microbiol. 7, 578–588 (2009).

Article 
CAS 
PubMed 

Google Scholar
 

Yao, Y. et al. Intra- and interpopulation transposition of mobile genetic elements driven by antibiotic selection. Nat. Ecol. Evol. 6, 555–564 (2022).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Maddamsetti, R. et al. Duplicated antibiotic resistance genes reveal ongoing selection and horizontal gene transfer in bacteria. Nat. Commun. 15, 1449 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Venkatesan, M. M. et al. Complete DNA sequence and analysis of the large virulence plasmid of Shigella flexneri. Infect. Immun. 69, 3271–3285 (2001).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cornelis, G. R. et al. The virulence plasmid of Yersinia, an antihost genome. Microbiol. Mol. Biol. Rev. 62, 1315–1352 (1998).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Pilla, G. & Tang, C. M. Going around in circles: virulence plasmids in enteric pathogens. Nat. Rev. Microbiol. 16, 484–495 (2018).

Article 
CAS 
PubMed 

Google Scholar
 

Wang, H. et al. Increased plasmid copy number is essential for Yersinia T3SS function and virulence. Science 353, 492–495 (2016).

Article 
CAS 
PubMed 

Google Scholar
 

Clewell, D. B., Yagi, Y. & Bauer, B. Plasmid-determined tetracycline resistance in Streptococcus faecalis: evidence for gene amplification during growth in presence of tetracycline. Proc. Natl Acad. Sci. USA 72, 1720–1724 (1975).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Rownd, R. & Mickel, S. Dissociation and reassociation of RTF and r-determinants of the R-factor NR1 in Proteus mirabilis. Nat. New Biol. 234, 40–43 (1971).

Article 
CAS 
PubMed 

Google Scholar
 

Tian, R. et al. HPV integration generates a cellular super-enhancer which functions as ecDNA to regulate genome-wide transcription. Nucleic Acids Res. 51, 4237–4251 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Purshouse, K. et al. Oncogene expression from extrachromosomal DNA is driven by copy number amplification and does not require spatial clustering in glioblastoma stem cells. eLife 11, e80207 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Bryant, J. A., Sellars, L. E., Busby, S. J. W. & Lee, D. J. Chromosome position effects on gene expression in Escherichia coli K-12. Nucleic Acids Res. 42, 11383–11392 (2014).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Chong, S., Chen, C., Ge, H. & Xie, X. S. Mechanism of transcriptional bursting in bacteria. Cell 158, 314–326 (2014).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Dixon, J. R. et al. Topological domains in mammalian genomes identified by analysis of chromatin interactions. Nature 485, 376–380 (2012).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Chen, W. et al. Sequencing of methylase-accessible regions in integral circular extrachromosomal DNA reveals differences in chromatin structure. Epigenetics Chromatin 14, 40 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Partridge, S. R. Analysis of antibiotic resistance regions in Gram-negative bacteria. FEMS Microbiol. Rev. 35, 820–855 (2011).

Article 
CAS 
PubMed 

Google Scholar
 

Lipszyc, A., Szuplewska, M. & Bartosik, D. How do transposable elements activate expression of transcriptionally silent antibiotic resistance genes? Int. J. Mol. Sci. 23, 8063 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Jacoby, G. A. AmpC β-lactamases. Clin. Microbiol. Rev. 22, 161–182, Table of Contents (2009).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Poirel, L., Decousser, J.-W. & Nordmann, P. Insertion sequence ISEcp1B is involved in expression and mobilization of a bla(CTX-M) β-lactamase gene. Antimicrob. Agents Chemother. 47, 2938–2945 (2003).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Shaw, L. P. & Neher, R. A. Visualizing and quantifying structural diversity around mobile resistance genes. Microb. Genom. 9, 001168 (2023).

CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ogunlana, L. et al. Regulatory fine-tuning of mcr-1 increases bacterial fitness and stabilises antibiotic resistance in agricultural settings. ISME J. 17, 2058–2069 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ludden, C. et al. Defining nosocomial transmission of Escherichia coli and antimicrobial resistance genes: a genomic surveillance study. Lancet Microbe 2, e472–e480 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Yi, H. et al. ecDNA-borne PVT1 fusion stabilizes oncogenic mRNAs. Preprint at bioRxiv https://doi.org/10.1101/2025.04.01.646515 (2025).

Hung, K. L. et al. ecDNA hubs drive cooperative intermolecular oncogene expression. Nature 600, 731–736 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Deniz, Ö et al. Endogenous retroviruses are a source of enhancers with oncogenic potential in acute myeloid leukaemia. Nat. Commun. 11, 3506 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Suzuki-Minakuchi, C. et al. Effects of three different nucleoid-associated proteins encoded on IncP-7 plasmid pCAR1 on host Pseudomonas putida KT2440. Appl. Environ. Microbiol. 81, 2869–2880 (2015).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Shintani, M., Suzuki-Minakuchi, C. & Nojiri, H. Nucleoid-associated proteins encoded on plasmids: occurrence and mode of function. Plasmid 80, 32–44 (2015).

Article 
CAS 
PubMed 

Google Scholar
 

Billane, K., Harrison, E., Cameron, D. & Brockhurst, M. A. Why do plasmids manipulate the expression of bacterial phenotypes? Philos. Trans. R. Soc. Lond. B Biol. Sci. 377, 20200461 (2022).

Article 
PubMed 

Google Scholar
 

Hall, R. J., Snaith, A. E., Thomas, M. J. N., Brockhurst, M. A. & McNally, A. Multidrug resistance plasmids commonly reprogram the expression of metabolic genes in Escherichia coli. mSystems 9, e0119323 (2024).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Zhu, Y. et al. Oncogenic extrachromosomal DNA functions as mobile enhancers to globally amplify chromosomal transcription. Cancer Cell 39, 694–707.e7 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Grafen, A. A simple completion of Fisher’s fundamental theorem of natural selection. Ecol. Evol. 11, 735–742 (2021).

Article 
PubMed 

Google Scholar
 

Fisher, R. A. The Genetical Theory of Natural Selection p. 308 (Clarendon, 1930).

Dewan, I. & Uecker, H. A mathematician’s guide to plasmids: an introduction to plasmid biology for modellers. Microbiology 169, 001362 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Levan, G., Mandahl, N., Bregula, U., Klein, G. & Levan, A. Double minute chromosomes are not centromeric regions of the host chromosomes. Hereditas 83, 83–90 (1976).

Article 
CAS 
PubMed 

Google Scholar
 

Nathanson, D. A. et al. Targeted therapy resistance mediated by dynamic regulation of extrachromosomal mutant EGFR DNA. Science 343, 72–76 (2014).

Article 
CAS 
PubMed 

Google Scholar
 

Münch, K., Münch, R., Biedendieck, R., Jahn, D. & Müller, J. Evolutionary model for the unequal segregation of high copy plasmids. PLoS Comput. Biol. 15, e1006724 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Wang, Y. Spatial distribution of high copy number plasmids in bacteria. Plasmid 91, 2–8 (2017).

Article 
CAS 
PubMed 

Google Scholar
 

Werbowy, O., Werbowy, S. & Kaczorowski, T. Plasmid stability analysis based on a new theoretical model employing stochastic simulations. PLoS ONE 12, e0183512 (2017).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Reyes-Lamothe, R. et al. High-copy bacterial plasmids diffuse in the nucleoid-free space, replicate stochastically and are randomly partitioned at cell division. Nucleic Acids Res. 42, 1042–1051 (2014).

Article 
CAS 
PubMed 

Google Scholar
 

Pogliano, J., Ho, T. Q., Zhong, Z. & Helinski, D. R. Multicopy plasmids are clustered and localized in Escherichia coli. Proc. Natl Acad. Sci. USA 98, 4486–4491 (2001).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Wein, T., Hülter, N. F., Mizrahi, I. & Dagan, T. Emergence of plasmid stability under non-selective conditions maintains antibiotic resistance. Nat. Commun. 10, 2595 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Shimizu, N., Miura, Y., Sakamoto, Y. & Tsutsui, K. Plasmids with a mammalian replication origin and a matrix attachment region initiate the event similar to gene amplification. Cancer Res. 61, 6987–6990 (2001).

CAS 
PubMed 

Google Scholar
 

Girard, F. et al. Parasitic plasmids are anchored to inactive regions of eukaryotic chromosomes through a nucleosome signal. EMBO J. 44, 2134–2156 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Sherratt, D. Plasmid partition: sisters drifting apart. EMBO J. 32, 1208–1210 (2013).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Gordon, G. S. et al. Chromosome and low copy plasmid segregation in E. coli: visual evidence for distinct mechanisms. Cell 90, 1113–1121 (1997).

Article 
CAS 
PubMed 

Google Scholar
 

Million-Weaver, S. & Camps, M. Mechanisms of plasmid segregation: have multicopy plasmids been overlooked? Plasmid 75, 27–36 (2014).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Barker, P. E., Drwinga, H. L., Hittelman, W. N. & Maddox, A. M. Double minutes replicate once during S phase of the cell cycle. Exp. Cell Res. 130, 353–360 (1980).

Article 
CAS 
PubMed 

Google Scholar
 

Morrison, P. F. & Chattoraj, D. K. Replication of a unit-copy plasmid F in the bacterial cell cycle: a replication rate function analysis. Plasmid 52, 13–30 (2004).

Article 
CAS 
PubMed 

Google Scholar
 

San Millan, A., Heilbron, K. & MacLean, R. C. Positive epistasis between co-infecting plasmids promotes plasmid survival in bacterial populations. ISME J. 8, 601–612 (2014).

Article 
CAS 
PubMed 

Google Scholar
 

Hung, K. L. et al. Coordinated inheritance of extrachromosomal DNAs in cancer cells. Nature 635, 201–209 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Matlock, W. & MacLean, R. C. Conjugation structures plasmid populations through host-lineage restriction. Preprint at bioRxiv https://doi.org/10.64898/2026.02.19.706745 (2026).

Ho, T. Q., Zhong, Z., Aung, S. & Pogliano, J. Compatible bacterial plasmids are targeted to independent cellular locations in Escherichia coli. EMBO J. 21, 1864–1872 (2002).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Pfeifer, E. & Rocha, E. P. C. Phage-plasmids promote recombination and emergence of phages and plasmids. Nat. Commun. 15, 1545 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ilhan, J. et al. Segregational drift and the interplay between plasmid copy number and evolvability. Mol. Biol. Evol. 36, 472–486 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ramiro-Martínez, P. et al. Plasmid mutation rates scale with copy number. Proc. Natl Acad. Sci. USA 123, e2526088123 (2026).

Article 
PubMed 
PubMed Central 

Google Scholar
 

San Millan, A., Escudero, J. A., Gifford, D. R., Mazel, D. & MacLean, R. C. Multicopy plasmids potentiate the evolution of antibiotic resistance in bacteria. Nat. Ecol. Evol. 1, 10 (2016).

Article 
PubMed 

Google Scholar
 

Escudero, J. A., MacLean, R. C. & San Millan, A. Testing the role of multicopy plasmids in the evolution of antibiotic resistance. J. Vis. Exp. https://doi.org/10.3791/57386 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Müller, N. F. et al. Quantifying plasmid movement in drug-resistant Shigella species using phylodynamic inference. PLoS Pathog. 21, e1013621 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Dillon, M. M., Sung, W., Lynch, M. & Cooper, V. S. Periodic variation of mutation rates in bacterial genomes associated with replication timing. MBio 9, e01371-18 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Higgins, N. P. & Vologodskii, A. V. Topological behavior of plasmid DNA. Microbiol. Spectr. 3, 105–131 (2015).

Article 

Google Scholar
 

Makova, K. D. & Weissensteiner, M. H. Noncanonical DNA structures are drivers of genome evolution. Trends Genet. 39, 109–124 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Bergstrom, E. N. et al. Mapping clustered mutations in cancer reveals APOBEC3 mutagenesis of ecDNA. Nature 602, 510–517 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Coluzzi, C. & Rocha, E. P. C. The spread of antibiotic resistance is driven by plasmids among the fastest evolving and of broadest host range. Mol. Biol. Evol. 42, msaf060 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Yancopoulos, A., Attie, O. & Friedberg, R. Efficient sorting of genomic permutations by translocation, inversion and block interchange. Bioinformatics 21, 3340–3346 (2005).

Article 
CAS 
PubMed 

Google Scholar
 

Braga, M. D. V., Willing, E. & Stoye, J. Genomic distance with DCJ and indels. In Lecture Notes in Computer Science 90–101 (Springer, 2010).

Compeau, P. E. C. A simplified view of DCJ-indel distance. In Lecture Notes in Computer Science 365–377 (Springer, 2012).

Shao, M., Lin, Y. & Moret, B. M. E. An exact algorithm to compute the double-cut-and-join distance for genomes with duplicate genes. J. Comput. Biol. 22, 425–435 (2015).

Article 
CAS 
PubMed 

Google Scholar
 

Bohnenkämper, L., Braga, M. D. V., Doerr, D. & Stoye, J. Computing the rearrangement distance of natural genomes. J. Comput. Biol. 28, 410–431 (2021).

Article 
PubMed 

Google Scholar
 

Molano, L.-A. G., Hirsch, P., Hannig, M., Müller, R. & Keller, A. The PLSDB 2025 update: enhanced annotations and improved functionality for comprehensive plasmid research. Nucleic Acids Res. 53, D189–D196 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Chamorro González, R. et al. Parallel sequencing of extrachromosomal circular DNAs and transcriptomes in single cancer cells. Nat. Genet. 55, 880–890 (2023).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Luebeck, J. et al. AmpliconReconstructor integrates NGS and optical mapping to resolve the complex structures of focal amplifications. Nat. Commun. 11, 4374 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Giurgiu, M. et al. Reconstructing extrachromosomal DNA structural heterogeneity from long-read sequencing data using Decoil. Genom. Res. 34, 1355–1364 (2024).

Article 
CAS 

Google Scholar
 

Zhu, K. et al. CoRAL accurately resolves extrachromosomal DNA genome structures with long-read sequencing. Cancer Biol. 34, 1344–1354 (2024).

CAS 

Google Scholar
 

Zhang, J.-H. et al. eccDNABase: a comprehensive and high-quality database for extrachromosomal circular DNA. Mol. Biol. Evol. 42, msaf223 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Luebeck, J. et al. AmpliconSuite: an end-to-end workflow for analyzing focal amplifications in cancer genomes. Preprint at bioRxiv https://doi.org/10.1101/2024.05.06.592768 (2024).

Baharoglu, Z., Bikard, D. & Mazel, D. Conjugative DNA transfer induces the bacterial SOS response and promotes antibiotic resistance development through integron activation. PLoS Genet. 6, e1001165 (2010).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Sastre-Dominguez, J. et al. Plasmids promote antimicrobial resistance through insertion sequence-mediated gene inactivation. Nat. Microbiol. 11, 976–992 (2026).

Article 
CAS 
PubMed 

Google Scholar
 

Heap, J. T. et al. Integration of DNA into bacterial chromosomes from plasmids without a counter-selection marker. Nucleic Acids Res. 40, e59 (2012).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Jones, M. G. et al. scAmp analyzes focal gene amplifications at single-cell resolution. Preprint at bioRxiv https://doi.org/10.64898/2026.02.14.705928 (2026).

Koche, R. P. et al. Extrachromosomal circular DNA drives oncogenic genome remodeling in neuroblastoma. Nat. Genet. 52, 29–34 (2020).

Article 
CAS 
PubMed 

Google Scholar
 

Wentzensen, N., Vinokurova, S. & von Knebel Doeberitz, M. Systematic review of genomic integration sites of human papillomavirus genomes in epithelial dysplasia and invasive cancer of the female lower genital tract. Cancer Res. 64, 3878–3884 (2004).

Article 
CAS 
PubMed 

Google Scholar
 

Hülter, N. F., Wein, T., Effe, J., Garoña, A. & Dagan, T. Intracellular competitions reveal determinants of plasmid evolutionary success. Front. Microbiol. 11, 2062 (2020).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Rossine, F., Sanchez, C., Eaton, D., Paulsson, J. & Baym, M. Intracellular competition shapes plasmid population dynamics. Science 390, eadx0665 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Santer, M., Kupczok, A., Dagan, T. & Uecker, H. Fixation dynamics of beneficial alleles in prokaryotic polyploid chromosomes and plasmids. Genetics 222, iyac121 (2022).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Novick, R. P. Plasmid incompatibility. Microbiol. Rev. 51, 381–395 (1987).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

San Millan, A. & MacLean, R. C. Fitness costs of plasmids: a limit to plasmid transmission. Microbiol. Spectr. 5, 65–79 (2017).

Article 

Google Scholar
 

Stayton, C. T. What does convergent evolution mean? The interpretation of convergence and its implications in the search for limits to evolution. Interface Focus. 5, 20150039 (2015).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Moxon, E. R., Rainey, P. B., Nowak, M. A. & Lenski, R. E. Adaptive evolution of highly mutable loci in pathogenic bacteria. Curr. Biol. 4, 24–33 (1994).

Article 
CAS 
PubMed 

Google Scholar
 

Barnett, M., Meister, L. & Rainey, P. B. Experimental evolution of evolvability. Science 387, eadr2756 (2025).

Article 
CAS 
PubMed 

Google Scholar
 

Brockhurst, M. A. & Harrison, E. Ecological and evolutionary solutions to the plasmid paradox. Trends Microbiol. 30, 534–543 (2022).

Article 
CAS 
PubMed 

Google Scholar
 

Rojas-Triana, M., Boomsma, J. J. & Regenberg, B. DNA circles as vehicles for genes to evade chromosomal discipline. Genom. Biol. Evol. 17, evaf223 (2025).

Article 
CAS 

Google Scholar
 

Hull, R. M. et al. Transcription-induced formation of extrachromosomal DNA during yeast ageing. PLoS Biol. 17, e3000471 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Benoit, M. Glyphosate resistance decoded: the reference sequence of the extrachromosomal DNA replicon in Amaranth. Plant Cell 32, 2059–2060 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Joubert, P. M. & Krasileva, K. V. The extrachromosomal circular DNAs of the rice blast pathogen Magnaporthe oryzae contain a wide variety of LTR retrotransposons, genes, and effectors. BMC Biol. 20, 260 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

McDaniels, J. M. et al. Extrachromosomal DNA amplicons in antimalarial-resistant Plasmodium falciparum. Mol. Microbiol. 115, 574–590 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Zhang, X., Deitsch, K. W. & Kirkman, L. A. The contribution of extrachromosomal DNA to genome plasticity in malaria parasites. Mol. Microbiol. 115, 503–507 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Maurais, E. G. et al. Genome instability triggers intercellular DNA transfer between human cells. Cell 189, 4548–4561.e14 (2026).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Imamovic, L. & Sommer, M. O. A. Use of collateral sensitivity networks to design drug cycling protocols that avoid resistance development. Sci. Transl. Med. 5, 204ra132 (2013).

Article 
PubMed 

Google Scholar
 

Herencias, C. et al. Collateral sensitivity associated with antibiotic resistance plasmids. eLife 10, e65130 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Kuosmanen, T. et al. Drug-induced resistance evolution necessitates less aggressive treatment. PLoS Comput. Biol. 17, e1009418 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Rodrigues, M., McBride, S. W., Hullahalli, K., Palmer, K. L. & Duerkop, B. A. Conjugative delivery of CRISPR–Cas9 for the selective depletion of antibiotic-resistant enterococci. Antimicrob. Agents Chemother. 63, e01454-19 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Sünderhauf, D. et al. Removal of AMR plasmids using a mobile, broad host-range CRISPR–Cas9 delivery tool. Microbiology 169, 001334 (2023).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Zhou, Y. et al. Exploiting a conjugative endogenous CRISPR–Cas3 system to tackle multidrug-resistant Klebsiella pneumoniae. EBioMedicine 88, 104445 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Kippnich, J., Benz, F., Uecker, H. & Baumdicker, F. Effectiveness of CRISPR–Cas in sensitizing bacterial populations with plasmid-encoded antimicrobial resistance. Genetics 231, iyaf192 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Colom, J. et al. Sex pilus specific bacteriophage to drive bacterial population towards antibiotic sensitivity. Sci. Rep. 9, 12616 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Wong, I. T.-L. et al. Targeting extrachromosomal DNA in human cancers. Nat. Rev. Drug Discov. 25, 374–389 (2026).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Okasha, S. Cancer and the levels of selection. Br. J. Philos. Sci. 75, 537–560 (2024).

Article 

Google Scholar
 

Bussey, K. J. & Davies, P. C. W. Reverting to single-cell biology: the predictions of the atavism theory of cancer. Prog. Biophys. Mol. Biol. 165, 49–55 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Daignan-Fornier, B. & Pradeu, T. Critically assessing atavism, an evolution-centered and deterministic hypothesis on cancer. Bioessays 46, e2300221 (2024).

Article 
PubMed 

Google Scholar
 

Ofir, G. et al. Antiviral activity of bacterial TIR domains via immune signalling molecules. Nature 600, 116–120 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Bernheim, A., Cury, J. & Poirier, E. Z. The immune modules conserved across the tree of life: towards a definition of ancestral immunity. PLoS Biol. 22, e3002717 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Lederberg, J. Cell genetics and hereditary symbiosis. Physiol. Rev. 32, 403–430 (1952).

Article 
CAS 
PubMed 

Google Scholar
 

Sakamoto, W. & Takami, T. Chloroplast DNA dynamics: copy number, quality control and degradation. Plant Cell Physiol. 59, 1120–1127 (2018).

Article 
CAS 
PubMed 

Google Scholar
 

Wai, T. et al. The role of mitochondrial DNA copy number in mammalian fertility. Biol. Reprod. 83, 52–62 (2010).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Prescott, D. M. The DNA of ciliated protozoa. Microbiol. Rev. 58, 233–267 (1994).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Stefanov, B.-A. & Nowacki, M. Functions and mechanisms of eukaryotic RNA-guided programmed DNA elimination. Biochem. Soc. Trans. 53, 473–485 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cohen, S., Menut, S. & Méchali, M. Regulated formation of extrachromosomal circular DNA molecules during development in Xenopus laevis. Mol. Cell. Biol. 19, 6682–6689 (1999).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Chan, K.-M., Liu, Y.-T., Ma, C.-H., Jayaram, M. & Sau, S. The 2 micron plasmid of Saccharomyces cerevisiae: a miniaturized selfish genome with optimized functional competence. Plasmid 70, 2–17 (2013).

Article 
CAS 
PubMed 

Google Scholar
 

Rizvi, S. M. A., Prajapati, H. K. & Ghosh, S. K. The 2 micron plasmid: a selfish genetic element with an optimized survival strategy within Saccharomyces cerevisiae. Curr. Genet. 64, 25–42 (2018).

Article 
CAS 
PubMed 

Google Scholar
 

Lee, W.-I. et al. Applying T-cell receptor excision circles and immunoglobulin κ-deleting recombination excision circles to patients with primary immunodeficiency diseases. Ann. Med. 46, 555–565 (2014).

Article 
CAS 
PubMed 

Google Scholar
 

Tomaska, L., Nosek, J., Kramara, J. & Griffith, J. D. Telomeric circles: universal players in telomere maintenance? Nat. Struct. Mol. Biol. 16, 1010–1015 (2009).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Smalheiser, N. R. Mobile circular DNAs regulating memory and communication in CNS neurons. Front. Mol. Neurosci. 16, 1304667 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Dimitriu, T., Matthews, A. C. & Buckling, A. Increased copy number couples the evolution of plasmid horizontal transmission and plasmid-encoded antibiotic resistance. Proc. Natl Acad. Sci. USA 118, e2107818118 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Kalluri, R. & McAndrews, K. M. The role of extracellular vesicles in cancer. Cell 186, 1610–1626 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cai, J. et al. Extracellular vesicle-mediated transfer of donor genomic DNA to recipient cells is a novel mechanism for genetic influence between cells. J. Mol. Cell Biol. 5, 227–238 (2013).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ramiro-Martínez, P. et al. Universal rules govern plasmid copy number. Nat. Commun. 16, 6022 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Stammnitz, M. R. et al. The origins and vulnerabilities of two transmissible cancers in Tasmanian devils. Cancer Cell 33, 607–619.e15 (2018).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar