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Characterisation of whole-blood extrachromosomal circular DNAs in Kawasaki disease complicated by coronary artery aneurysm.

BACKGROUND: Extrachromosomal circular DNAs are critical regulators of stress responses, immunity, and inflammation pathways. However, their role and underlying mechanisms in Kawasaki disease complicated by coronary artery aneurysm remain poorly understood. METHODS: Whole blood samples from six children with Kawasaki disease, including three with coronary artery aneurysm group and three without coronary artery aneurysm (control group), were subjected to extrachromosomal circular DNA sequencing. Putative extrachromosomal circular DNAs were identified using Circle-Map. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses were performed on genes associated with upregulated extrachromosomal circular DNAs, and an exploratory immune-signature profiling was performed using the single-sample gene set enrichment analysis algorithm. RESULTS: We identified 4,790 differential extrachromosomal circular DNAs between the coronary artery aneurysm and control groups, of which 4,789 were upregulated in the CAA group. The extrachromosomal circular DNAs in the coronary artery aneurysm group were more concentrated and shorter in length than those in the control group. Upregulated extrachromosomal circular DNAs were mainly derived from autosomes, particularly chromosomes 3, 4, and 7. Functional enrichment analysis indicated that genes associated with upregulated extrachromosomal circular DNAs were mainly involved in response to stimulus-related terms and pathways, including chemokine signalling, cGMP-PKG signalling, and calcium signalling. Immune-signature analysis suggested that the coronary artery aneurysm group exhibited more specific immune responses, whereas the control group tended towards broader immune regulatory processes. CONCLUSIONS: Coronary artery aneurysm and control groups exhibited distinct extrachromosomal circular DNA profiles. These findings suggest that extrachromosomal circular DNA alterations are associated with coronary artery aneurysm in Kawasaki disease and may provide new insights into the molecular features underlying this condition.

Coronary artery aneurysm

Circle-seq analysis reveals the involvement of eccDNAs in salt stress response of bermudagrass (Cynodon dactylon).

Extrachromosomal circular DNAs (eccDNAs) have been identified in a wide variety of plant species and play a pivotal role in genomic plasticity, emerging as key drivers of stress adaptation. However, the putative roles of eccDNAs under environmental stress remain largely unexplored in plants. As a high-quality turfgrass, bermudagrass (Cynodon dactylon L.) is a pivotal species for the reclamation and improvement of saline-alkali soils. Therefore, we performed a comprehensive analysis of the eccDNA profiles in bermudagrass under salt stress. A total of 1,068 eccDNAs were identified across all chromosomes. These eccDNAs were characterized by short lengths (ranging from 100 bp to 1 kb) and low GC content. Their genomic distribution was not entirely random but rather exhibited a certain preference for intergenic regions and coding sequences (CDS). Crucially, null model analysis of A/T-rich junction sites revealed that these eccDNAs primarily originate from physically unstable scaffold/matrix attachment regions (S/MARs) via stochastic fragmentation, followed by opportunistic circularization predominantly mediated by the non-homologous end joining (NHEJ) pathway. Notably, salt stress specifically enriched eccDNAs derived from DNA transposons, including the Tc1/Mariner, CACTA and MITE superfamilies. Overall, our findings reveal complex extrachromosomal structural dynamics in bermudagrass, offering novel insights into its genomic adaptation under environmental stress.

Cynodon

Modern biology of extrachromosomal DNA: A decade-long voyage of discovery.

Genomic instability is a hallmark of cancer and is a major driving force of tumorigenesis. A key manifestation of genomic instability is the formation of extrachromosomal DNAs (ecDNAs) - acentric, circular DNA molecules ranging from 50 kb to 5 Mb in size, distinct from chromosomes. Ontological studies have revealed that ecDNA serves as a carrier of oncogenes, immunoregulatory genes, and enhancers, capable of driving elevated transcription of its cargo genes and cancer heterogeneity, leading to rapid tumor evolution and therapy resistance. Although ecDNA was documented over half a century ago, the past decade has witnessed a surge in breakthrough discoveries about its biological functions. Here, we systematically review the modern biology of ecDNA uncovered over the last ten years, focusing on how discoveries during this pioneering stage have illuminated our understanding of ecDNA-driven transcription, heterogeneity, and cancer progression. Furthermore, we discuss ongoing efforts to target ecDNA as a novel approach to cancer therapy. This burgeoning field is entering a new phase, poised to reshape our knowledge of cancer biology and therapeutic strategies.

Humans

Extrachromosomal deoxyribonucleic acid in R factor-harboring Enterobacteriaceae.

Extrachromosomal deoxyribonucleic acid (DNA) from 24 different R factor-harboring Enterobacteriaceae was isolated and characterized by analytical ultracentrifugation and electron microscopy. The R factors represented 15 different patterns of transferable drug resistance found in enterobacteria from an enclosed geographic area. All of the strains contained extrachromosomal, circular DNA molecules within the range of 0.4 to 52 mum. More than one size class of circular DNA molecules was observed in the majority of the extrachromosomal DNA preparations. The buoyant density of the extrachromosomal DNA ranged from 1.700 to 1.720 g/cm3. The majority of the bacteria contained extrachromosomal DNAs of various densities. Three-fourths of the R factors were classified as fi+. The investigation illustrates the extensive variability in the physical characteristics of plasmid DNA from R factor-harboring strains.

DNA, Bacterial

[Isolation and preliminary characteristics of the extrachromosomal elements of Bacillus thuringiensis DNA].

Centrifugation of Bacillus thuringiensis 351 DNA in CsCl-ethidium bromide density gradient has revealed, besides the main band of chromosomal DNA (p = 1.56 g/cm2), some additional bands with higher density, which usually correspond cicle superhelix DNAs, are revealed. 6 discrete bands are observed under electrophoresis of total fraction of minor DNA bands, which suggests, that the preparation contains cicle DNAs of different size. The treatment with DNAse results in the appearance of 3 bands corresponding to opened cicle DNA forms, their molecular weight being 12-10(6)--4-10(6) daltons. Cicle super-helix and opened cicle DNA forms are found in minor fraction by means of electrone microscopy. Statistical analysis has revealed the presence of at least three types of cicle molecules of different size. The variant 351-10, free of extrachromosomal elements, is isolated after ethidium bromide treatment at high temperature. Possible mechanisms of cicle DNAs formation are discussed. Biological function of DNA extrachromosomes fragments in Bacillus thuringiensis is still obscure.

Bacillus thuringiensis

Chromosomal and extrachromosomal deoxyribonucleic acid from four bacterial endosymbionts derived from stock 51 of Paramecium tetraurelia.

Four variant lines of stock 51 kappa (Paramecium tetraurelia) were screened for the presence of covalently closed circular (CCC) deoxyribonucleic acid (DNA). Stock 51m43 kappa, a nonkiller resistant to 51 killing, contained four classes of CCC DNA: 2.9 X 10(7), 9.7 X 10(7), and 11.8 X 10(7) daltons. The buoyant densities of 51m43 kappa chromosomal and CCC DNA were 1.700 and 1.698 g/cm3, respectively. Stock 51m43 pi, a sensitive nonkiller, contained two CCC species: 0.3 X 10(7) and 4.4 X 10(7) daltons. The buoyant densities of both the chromosomal and CCC DNA were 1.694 to 1.695 g/cm3. Three sizes of CCC DNA were found in 51m1 pi: 0.3 X 10(7), 2.3 X 10(7), and 4.5 X 10(7) daltons. The buoyant densities of both the chromosoaml DNA and the CC DNA were 1.694 to 1.695 g/cm3. It is not known whether 51m1 kappa, a sensitive spinner killer, contains CCC DNA. The buoyant density of its chromosomal DNA was 1.703 g/cm3. Of the four variant lines, only 51m43 kappa appears to be a mutant of 51 kappa. The chromosomal and CCC DNAs of 51m43 kappa have the same buoyant densities as those of 51 kappa; in addition 51m43 kappa contain a CCC molecule the same size as that found in 51 kappa (2.8 x 10(7) daltons). The three other lines are probably bacterial species that are distinct from 51 kappa and which, at one time, were co-inhabitants with 51 kappa in stock 51 paramecia.

Animals

Class of small multicopy plasmids originating from the mutant antibiotic resistance factor R1 drd-19B2.

The large mutant R-factor R1drd-19B2 gives rise to several classes of small, covalently closed circular deoxyribonucleic acids (DNAs), designated as Rsc DNAs, when harbored by the K-12 strain CRT46 which carries a dnaA mutation. The molecular weights of these DNA molecules range from 3 X 106 to 8.4 X 106. Cells arising from single colonies of CRT46-R1drd-19B2 harbor only one to two copies of the large mutant R-factor and in addition 10 to 20 copies of Rsc plasmid of a discrete size class per chromosome. The larger Rsc DNAs carry the ampicillin resistance gene. After transformation the small circular DNAs are present in Escherichia coli C in a large number of copies, up to 100 copies per chromosome. Hybridization studies between Rsc plasmids indicate that they possess common DNA sequences.

Ampicillin

A map of the restriction targets in yeast 2 micron plasmid DNA cloned on bacteriophage lambda.

The 2 micron circular DNA from S. cerevisiae has been cloned on bacteriophage lambda. The two forms of circular DNA which exist in equilibrium due to recombination between inverted repeat sequences were separated as stable clones, and a map of targets for restriction endonucleases EcoRI, HindIII and HpaI was constructed. The circular DNAs isolated from a particular oligomycin resistant strain and its parent oligomycin snesitive strain were compared by restriction endonuclease analysis, and no difference was detected. The potential uses of cloned 2 micron DNA in determining the possible biological role of these plasmids are considered.

Coliphages

Physical properties and gel electrophoresis behavior of R12-derived plasmid DNAs.

A series of closed circular (I) plasmid DNAs has been derived from drug resistance factor R12, and the nicked circular (II) and linear (III) derivatives of these molecules prepared by irradiation in the presence of ethidium bromide and by treatment with restriction enzyme EcoRI, respectively. These DNAs encompass the molecular weight range 3.6 to 61 megadaltons. The base compositions range from 45% to 51% (GC) as estimated by buoyant density determinations. The smaller plasmids are significantly less supercoiled (9-10%) than are the larger (12-13%). The gel electrophoretic behavior of the three DNA structural forms was determined as a function of molecular weight in agarose gels of concentrations ranging from 0.7% to 1.6% and at electrophoresis salt concentrations from 0.02 M to 0.08 M sodium acetate. The mobilities of DNAs I and III undergo a reversal relative to each other at a molecular weight which decreases with increasing agarose gel concentration. The molecular weight at which DNA II fails to enter a gel depends upon the ionic strength during electrophoresis but not upon the gel concentration.

Centrifugation, Density Gradient

In vitro construction of different oligomeric forms of lambdadv DNA and studies of their transforming activities.

Plasmid lambdadv1, which is in a dimeric form, was converted to a linear monomer duplex by the action of EcoRI restriction endonuclease that incises at a unique site in this plasmid genome. The resulting products were then joined by Escherichia coli DNA ligase to produce molecules with various oligomeric forms, and from these monomeric, dimeric, or trimeric circular molecules were purified. By transformation of cells with these DNAs, clones were obtained that carried lambdadv1 in a monomeric or dimeric form. The former type of clones have not been generated in vivo, except for one in a different host strain, and carriers of timeric or tetrameric lambdadv1's have not been obtained so far. It was observed that a considerable fraction of these oligomeric circular DNAs were converted to lower oligomers (e.g., from trimer to dimer) during transformation. The characteristics of the monomeric lambdadv1 carriers obtained were compared with those of dimeric lambdadv1 carriers. The stabilities of the plasmids of the two forms were the same. However, the monomeric plasmid carriers were less tolerant to lambdavir phage infection and perpetuated about 30% less plasmid genomes in monomer units. Furthermore, dimeric plasmid carriers appeared spontaneously and accumulated in cultures of the monomeric lambdadv1 carriers.

Coliphages

Isolation, by tetracycline selection, of small plasmids derived from R-factor R12 in Escherichia coli K-12.

The examination, by agarose gel electrophoresis, of tetracycline-resistant colonies of Escherichia coli K-12 carrying R-factor R12 reveals the presence of smaller plasmid deoxyribonucleic acids (DNAs), incompatible with R12, in many of the clones. These plasmids are demonstrated to be homologous with R12 DNA by electron microscope heteroduplex experiments and by the production of consistent fragment patterns upon digestion with various restriction endonucleases. These autonomously replicating plasmids form a related series of covalently closed circular DNA molecules ranging in size from 3.6 X 10(6) to 61 X 10(6) daltons. Plasmids of molecular weight between 3.6 X 10(6) and 37 X 10(6) confer no antibiotic resistances, but when jointly present with R12 by nonetheless enhance the expression of the tetracycline resistance associated with this latter molecule.

DNA Restriction Enzymes

Aminoglycoside-modifying enzyme of an antibiotic-producing bacterium acts as a determinant of antibiotic resistance in Escherichia coli.

Bacillus circulans NRRL B-3312, a nonpathogenic bacterium that produces the aminoglycoside antibiotic butirosin, is known to contain an aminoglycoside phosphotransferase that is similar to the neomycin phosphotransferases of clinically isolated antibiotic-resistant bacteria. Purified DNAs from B. circulans and the plasmid ColE1-ApR were digested with EcoRI endonuclease and the resulting fragments covalently joined with polynucleotide ligase. The recombined DNA was used to transform E. coli and ampicillin-neomycin resistant colonies were selected. Analysis of several clones indicated that neomycin resistance in the E. coli transformants was due to the presence of the B. circulans phosphotransferase gene. This observation is consistent with the notion that anitbiotic-modifying enzymes from antibiotic-producing organisms may be the sources of antibiotic resistance in plasmid-containing bacteria.

Bacillus

Characterization of a plasmid from Streptomyces coelicolor A3(2).

Covalently closed circular deoxyribonucleic acid (DNA) with a molecular weight of 20 X 10(6) was identified in strains of Streptomyces coelicolor A3(2) of various fertility types. Hybridization studies and digestion by various restriction endonucleases indicated that the circular DNAs (pSH1) were identical regardless of the fertility type (UF, IF, or NF) of the strain from which it was isolated. The pSH1 DNA was cleaved to many fragments by the endonucleases HincII, SmaI, and SalI and to three or four fragments by BamHI and PstI. Plasmid pSH1 carries single sites for each of the two restriction enzymes, EcoRI and HindIII. These sites are 7.6 X 10(6) daltons apart. Attempts to isolate the fertility factor SCP1 as covalently closed circular DNA were unsuccessful. These data suggest that the biochemically isolated plasmid pSH1 is not identical to the genetically characterized fertility factor SCP1, which has been identified in an autonomous state in IF-type strains and in an integrated state in NF-type strains.

Bacteriocins

Analysis of chromosomal integration and deletions of yeast plasmids.

Plasmid DNAs from six strains of Saccharomyces cerevisiae were compared. Three different plasmids were found, designated Scp 1, Scp 2 and Scp 3, with monomer lengths of 6.19, 6.06 and 5.97 kilobases as referenced to sequenced phiX174 DNA. DNA from each of the plasmids was inserted into a lambda vector DNA. Hybrid phage containing inserted DNA of the desired size were enriched by genetic selection and their DNAs analysed by rapid techniques. All three plasmids share the same organization, two unique sequences separated by two inverted repeats, and share basically the same DNA sequences. Scp 2 and Scp 3 differ from Scp 1 by missing a unique HpaI site and by having small overlapping deletions in the same region. The HpaI site in Scp 1 is, therefore, in a nonessential region and suitable for insertion of foreign DNA in the potential use of the yeast plasmid as a vector. Hybridization of labelled cloned plasmid DNA to restriction fragments of linear yeast DNA separated on agarose gels showed that the plasmid DNA was not stably integrated into the yeast chromosomal DNA.

Chromosomes

The relative positions of sea urchin histone genes on the chimeric plasmids pSp2 and pSp17 as studied by electronmicroscopy.

The relative positions of the sea urchin histone genes and the spacer regions on the chimeric plasmids pS p2 and pSp17 have been mapped by hybridizing total histonemessenger RNA to single strands of the plasmid DNAs. The lengths and spacing between the several RNA:DNA duplex regions on the single strands of DNA were measured by the gene 32-ethidium bromide electron microscope mapping method. We find that the genes are interdigitated with spacer sequences of different lengths; that there are three coding sequences on pSp2, all on the same strand, with the relative order H1, H4, and B4; and that there are two coding sequences on pSp17, both on the same strand, corresponding to the messages denoted B1 and B2-B3, where B4, B1, and B2-3 are electrophoretically resolved components of histone mRNA, all of size intermediate between the larger H1 and the smaller H4 message.

Chimera

Biochemical construction and selection of hybrid plasmids containing specific segments of the Escherichia coli genome.

Using a poly(dA-dT) "connector" method, a population of annealed hybrid circular DNAs was constructed in vitro; each hybrid DNA circle containing one full-length molecule of poly(dT)-tailed DNA from E1 colicinogenic factor (Col E1) fragmented by EcoRI endonuclease annealed to any one of a collection of poly(dA)-tailed linear DNA fragments of the entire E. coli genome. This annealed, but unligated, hybrid DNA was used to transform several different auxotrophic mutants of E. coli, and by direct selection, bacterial clones were isolated which contained specific hybrid plasmids. In this manner, bacterial strains containing Col E1 hybrid plasmids carrying the entire tryptophan operon or the arabinsoe and leucine operons were isolated. The methods described should allow the molecular cloning of any portion of the E. coli genome by selection from a pool of DNA molecules containing at least several hundred different hybrids representing the entire bacterial genome.

Arabinose

Functional expression of cloned yeast DNA in Escherichia coli.

A collection of hybrid circular DNAs was constructed in vitro using the poly(dA-dT) "connector" method: each hybrid circle contained one molecule of poly(dT)-tailed DNA of plasmid ColE1 (made linear by digestion with EcoRI endonuclease) annealed to a poly(dA)-tailed fragment of yeast (Saccharomyces cerevisiae) DNA, produced originally by shearing total yeast DNA to an average size of 8 X 10(6) daltons. This DNA preparation was used to transform E. coli cells, selecting colicin-E1-resistant clones that contain hybrid ColE1-yeast DNA plasmids. Sufficient numbers of transformant clones were obtained to ensure that the hybrid plasmid population was representative of the entire yeast genome. Various hybrid ColE1-yeast DNA plasmids capable of complementing E. coli auxotrophic mutations were selected from this population. Plasmid pYeleu 10 complements several different point or deletion mutations in the E. coli or S. typhimurium leuB gene (beta-isopropylmalate dehydrogenase); plasmids pYeleu11, pYeleu12, and pYeleu17 are specific suppressors of the leuB6 mutation in E. coli C600. Plasmid pYehis2 complements a deletion in the E. coli hisB gene (imidazole glycerol phosphate dehydratase). Complementation of bacterial mutations by yeast DNA segments does not appear to be a rare phenomenon.

Alleles

A colony bank containing synthetic Col El hybrid plasmids representative of the entire E. coli genome.

Using the poly(dA-dT) "connector" method (Lobbanand Kaiser, 1973), a population of annealed hybrid circular DNAs was constructed in vitro; each hybrid DNA circle contained one molecule of poly(dT)-tailed Col El-DNA (LRI) annealed to any one of a collection of poly(dA)-tailed linear DNA fragments, produced originally by shearing total E. coli DNA to an average size of 8.5 x 10(6) daltons. This annealed DNA preparation (12 mug) was used to transform an F+ recA E. coli strain (JA200), selecting transformants by their resistance to colicin El. A collection or "bank" pf pver 2000 colicin El-resistant clones was thereby obtained, 70% of which were shown to contain hybrid Col El DNA (E. coli) plasmids. This colony bank is large enough to include hybrid plasmids representative of the entire E. coli genome. Individual plasmids have been readily identified by replica mating the collection onto plates seeded with cultures of various F- auxotrophic recipients, selecting for complementation of the auxotrophic markers by F-mediated transfer of hybrid plasmids to the F- recipients. In this manner, over 80 hybrid Col El-DNA (E. coli), plasmid-bearing clones have been identified in the colony bank, and about 40 known E. coli genes have been tentatively assigned to these various plasmids. The hybrid plasmids are transferred efficiently from F+ donors to appropriate F- recipients. The use of this method to establish similar colony banks in E. coli containing hybrid plasmids representative of various simple eucaryotic genomes is discussed.

Chromosome Mapping