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Selective Extraction of Genomic DNA From Animal Tissues Using a Hydrophobic Magnetic Ionic Liquid.

The development of green and efficient methods for genomic DNA extraction from animal tissues is crucial for molecular diagnostics, food traceability, and genetic research. Conventional methods often involve toxic reagents, multiple centrifugation steps, and are time-consuming. In this study, a hydrophobic magnetic ionic liquid (MIL), N-octyl-4-dimethylaminopyridinium hexafluorophosphate MIL ([C8DMAP][PF6]‑Ni MIL), was synthesized and applied for the selective extraction of genomic DNA from various animal tissues. The material exhibited strong paramagnetic behavior, high thermal stability, and excellent hydrophobicity, enabling rapid phase separation under an external magnetic field. A mechanical shaking-assisted extraction method was developed, and key parameters including temperature, time, shaking speed, and [C8DMAP][PF6]-Ni MIL dosage were systematically optimized. The method demonstrated high selectivity for DNA over proteins, RNA, and amino acids, with a maximum recovery rate of 78.06 ± 1.91%. Compared to a commercial DNA extraction kit, the [C8DMAP][PF6]-Ni MIL-based approach provided higher yields from several tissues, including mouse liver, brain, and rabbit lung. Furthermore, the [C8DMAP][PF6]-Ni MIL could be reused for at least six cycles while maintaining extraction efficiency. This work not only provides a high-performance material for DNA extraction, but also demonstrates a sustainable and easily retrievable liquid-phase separation strategy, offering a generalizable platform for complex sample pretreatment.

Animals

The 'DNA-membrane complex' of Escherichia coli B/r. Its composition and properties and the fate of nascent and genome DNA during DNA synthesis.

The composition and properties of 'DNA-membrane complex' of Escherichia coli B/r have been investigated. The 'complexes' contain most of the DNA and membrane of the cells, and about 50% and 25% of the RNA and protein respectively. The properties of DNA synthesized by the 'complexes' are described and the process is concluded to be largely mediated through polymerase I. Nascent DNA synthesized by the 'DNA-membrane complexes' was of two main classes, one of molecular weight around 600,000--800,000 and the other of higher molecular weight. Polynucleotide ligase activity was not detectable. The onset of synthesis coincided with the dissociation of at least 70% of the genome DNA and all of the nascent DNA from the 'complexes' and was concomitant with the action of a nuclease on parental DNA. This nuclease activity was not ATP-dependent.

Adenosine Triphosphate

Effects of Mg2+ and ATP on YOYO-1 labeling of genomic DNA in single molecule experiments.

Nanofluidic channels have emerged as a suitable tool to study DNA-protein interactions. Many DNA-interacting proteins require ATP to fully function and use Mg2+ as a cofactor. Mg2+ and ATP are however also known to influence the binding of dyes, such as the commonly used YOYO-1, to DNA. This study investigates the effects of Mg2+ ions and ATP on YOYO-1 labeled genomic DNA and shows, via single molecule experiments in nanochannels, that Mg2+ reduces the fluorescence intensity of YOYO-1 labeled DNA, as well as the extension of the DNA, at both low and high dye loadings. When combined, ATP counteracts the loss of fluorescence caused by Mg2+, but only at comparable concentrations. Additionally, while increasing the photobleaching rate, Mg2+ delays dye-mediated photolytic DNA damage, reducing DNA fragmentation in the nanofluidic channels. Determination of the apparent binding constant by bulk measurements corroborates the single molecule observations, suggesting that Mg2+ causes dissociation of YOYO-1 from DNA. These findings demonstrate that the addition of Mg2+ and ATP poses challenges in DNA-protein studies using nanofluidics, which can be mitigated by optimizing experimental conditions.

ATP

In vitro synthesis of double-stranded DNA from the Kilham rat virus single-stranded DNA genome.

Double-stranded, full-length linear DNA was synthesized in vitro by using single-stranded linear DNA as a self-priming template from the parvovirus Kilham rat virus and Escherichia coli DNA polymerase "large fragment" as the polymerizing enzyme. To ascertain the order of the synthesis of the cleavage fragments and to assess the accuracy of the in vitro synthesis, restriction endonuclease cleavage sites with known recognition sequences were mapped on the DNA. Comparing the cleavage pattern of the synthesized DNA with that of double-stranded viral DNA isolated from infected cells confirms that the in vitro synthesis produces a faithful copy of the viral single-stranded genome. Electron micrographs of the in vitro product reveal it to be a double-stranded linear molecule.

Cell-Free System

RadiSeq: a single- and bulk-cell whole-genome DNA sequencing simulator for radiation-damaged cell models.

Objective.To build and validate a simulation framework to perform single-cell and bulk-cell whole genome sequencing simulation of radiation-exposed Monte Carlo (MC) cell models to assist radiation genomics studies.Approach.Sequencing the genomes of radiation-damaged cells can provide useful insight into radiation action for radiobiology research. However, carrying out post-irradiation sequencing experiments can often be challenging, expensive, and time-consuming. Although computational simulations have the potential to provide solutions to these experimental challenges, and aid in designing optimal experiments, the absence of tools currently limits such application. MC toolkits exist to simulate radiation exposures of cell models but there are no tools to simulate single- and bulk-cell sequencing of cell models containing radiation-damaged DNA. Therefore, we aimed to develop a MC simulation framework to address this gap by designing a tool capable of simulating sequencing processes for radiation-damaged cells. Main results.We developed RadiSeq-a multi-threaded whole-genome DNA sequencing simulator written in C++. RadiSeq can be used to simulate Illumina sequencing of radiation-damaged cell models produced by MC simulations. RadiSeq has been validated through comparative analysis, where simulated data were matched against experimentally obtained data, demonstrating reasonable agreement between the two. Additionally, it comes with numerous features designed to closely resemble actual whole-genome sequencing. RadiSeq is also highly customizable with a single input parameter file.Significance.RadiSeq enables the research community to perform complex simulations of radiation-exposed DNA sequencing, supporting the optimization, planning, and validation of costly and time-intensive radiation biology experiments. This framework provides a powerful tool for advancing radiation genomics research.

Monte Carlo Method

Cell-free DNA genomic and fragmentomic features for early outcome prediction in large B cell lymphoma.

Curative-intent immunochemotherapy fails in ∼30% of patients with large B cell lymphoma (LBCL), yet no validated molecular tool enables early identification of high-risk individuals to guide treatment intensification. Using shallow whole-genome sequencing (sWGS) of plasma cell-free DNA from 190 LBCL patients, we develop and validate the ACT score (aberrations, composition of fragments, and terminal motif analyses), a composite classifier integrating genomic and fragmentomic features from a single post-cycle-1 sample. ACT-positive patients have worse 2-year outcomes versus ACT-negative patients: time-to-progression 29% vs. 83% (hazard ratio [HR]: 4.4, 95% confidence interval [CI]: 1.9-10.0; p = 1.5 × 10-4) and overall survival 47% vs. 93% (HR: 8.7, 95% CI: 3.0-25.4; p = 1.8 × 10-6). The ACT score is independently prognostic of the International Prognostic Index, and their combination identifies the highest risk patients. Unlike mutation-based approaches, this assay requires neither tumor tissue, germline control, nor a baseline plasma sample. Built on open-source tools and sWGS, the ACT score offers a feasible, scalable strategy for early risk stratification in aggressive LBCL.

Humans

Physical characterization of the superhelical DNA genome of an enveloped mycoplasmavirus.

Mycoplasmavirus MVL2 is a nonlytic enveloped virion containing DNA. This DNA has been shown to be a double-stranded circular superhelical molecule of 11.8 kilobase pairs (7.8 X 10(6) daltons). The superhelix density is greater than that of phi X174 RFI but less than that of PM2 phage DNA. A physical map of the MVL2 genome has been obtained using restriction endonucleases.

Acholeplasma laidlawii

Effectiveness of stabilization methods for the immediate and short-term preservation of bovine fecal and upper respiratory tract genomic DNA.

Previous research on stabilization methods for microbiome investigations has largely focused on human fecal samples. There are a few studies using feces from other species, but no published studies investigating preservation of samples collected from cattle. Given that microbial taxa are differentially impacted during storage it is warranted to study impacts of preservation methods on microbial communities found in samples outside of human fecal samples. Here we tested methods of preserving bovine fecal respiratory specimens for up to 2 weeks at four temperatures (room temperature, 4°C, -20°C, and -80°C) by comparing microbial diversity and community composition to samples extracted immediately after collection. Importantly, fecal specimens preserved and analyzed were technical replicates, providing a look at the effects of preservation method in the absence of biological variation. We found that preservation with the OMNIgene®•GUT kit resulted in community structure most like that of fresh samples extracted immediately, even when stored at room temperature (~20°C). Samples that were flash-frozen without added preservation solution were the next most representative of original communities, while samples preserved with ethanol were the least representative. These results contradict previous reports that ethanol is effective in preserving fecal communities and suggest for studies investigating cattle either flash-freezing of samples without preservative or preservation with OMNIgene®•GUT will yield more representative microbial communities.

Cattle

Patterns of Drug Resistance, Drug Resistance Conferring Mutations and Genomic DNA Methylation Revealed in Mycobacterium tuberculosis From South Africa.

Tuberculosis remains a major public health threat globally, with drug-resistant strains undermining treatment efficacy. We analyzed 126 Mycobacterium tuberculosis (M. tuberculosis) isolates with diverse drug resistance spectra and selected 35 for whole genome sequencing (WGS) using Illumina NextSeq, SMRT PacBio Onso and SMRT PacBio Revio sequencing platforms. The study aimed to characterize drug resistance profiles, compare short- and long-read sequencing performance, identify lineages among South African isolates, detect known drug resistance mutations and their lineage-specific patterns, and utilize long-read SMRT platforms for epigenetic profiling. Multiple drug resistance mutations were identified, some lineage-specific, and notably, East-African-Indian (EAI) Lineage 1 isolates often considered less pathogenic, showed significant potential for multidrug-resistance development, including higher fluoroquinolone resistance as compared to other lineages. Three DNA motifs with methylated adenines, namely CACGCaG, CtCCaG and GaTNNNNRtAC, were detected, with methylation patterns varying by lineage and strain due to mutations in the corresponding methyltransferases (MTases). A particularly notable finding was the stable maintenance of a genetic heterogeneity in the mamB MTase, performing methylation at CACGCaG motifs. These results highlight the combined role of genetic and epigenetic variation in M. tuberculosis adaptive evolution and underscore the value of integrating long-read sequencing into TB surveillance and research.

Mycobacterium tuberculosis

Reducing competition between msd and genomic DNA improves retron editing efficiency.

Retrons, found in bacteria and used for defense against phages, generate a unique molecule known as multicopy single-stranded DNA (msDNA). This msDNA mimics Okazaki fragments during DNA replication, making it a promising tool for targeted gene editing in prokaryotes. However, existing retron systems often exhibit suboptimal editing efficiency. Here, we identify the msd gene in Escherichia coli, which encodes the noncoding RNA template for msDNA synthesis and carries the homologous sequence of the target gene to be edited, as a critical bottleneck. Sequence homology causes the msDNA to bind to the msd gene, thereby reducing its efficiency in editing the target gene. To address this issue, we engineer a retron system that tailors msDNA to the leading strand of the plasmid containing the msd gene. This strategy minimizes msd gene editing and reduces competition with target genes, significantly increasing msDNA availability. Our optimized system achieves very high retron editing efficiency, enhancing performance and expanding the potential for in vivo techniques that rely on homologous DNA synthesis.

Gene Editing

Structural studies on oncornavirus-related sequences in chicken genomic DNA: two-step analyses of EcoRI and Bgl I restriction digests and tentative mapping of a ubiquitous endogenous provirus digests and tentative mapping of a ubiquitous endogenous provirus.

DNA from a variety of uninfected chicken cell types has been analyzed by using restriction endonuclease digestion and RPC-5 ion-exchange chromatography followed by agarose gel electrophoresis. Endogenous retrovirus sequences were detected by using a 32P-labeled avian leukosis viral RNA probe. One simple pattern was identified in an individual containing unexpressed endogenous proviral genes (gs-chf-phenotype for group-specific antigens and chicken helper factor) that was common to all individuals studied. A tentative restriction has been derived for this and one other gs-chf-endogenous provirus. Other gs-chf-individuals and individuals with other phenotypes (e.g., gs+ chf+ and gsl chlfhE) showed more complicated patterns that often included additional bands and thus probably additional proviruses. RNA from an avian sarcoma virus was used to detect cellular sequences (sarc) homologous to the viral transforming gene (src). Results have revealed that a single restriction endonuclease EcoRI fragment of 13 x 10(6) daltons contains the majority of these sequences and confirm that they are not adjacent to the endogenous provirus.

Animals

Integration of bovine leukemia virus DNA in the bovine genome.

DNA preparations from circulating leukocytes, lymph node tumors, and spleens of three bovine leukemia virus-infected cattle were fractionated by Cs2SO4/3,6-bis(acetatomercurimethyl)dioxane density gradient centrifugation. Bovine leukemia virus proviral sequences were found in large GC-rich fragments having a buoyant density in CsCl close to 1.708 g/cm3. Provirus integration, therefore, does not take place at random locations in the host genome, but in a specific class of DNA segments. Hybridization of cDNA synthesized on viral RNA to EcoRI and Xba I restriction fragments of the DNA from infected cells showed that: (i) only one copy of proviral DNA is integrated per haploid genome; (ii) different restriction patterns were found in the proviral DNAs present in the genomes of different animals, providing evidence for the existence of several strains or mutants; and (iii) different integration sites for the proviral DNA were found in the genome of different animals and of different infected cells in the same animal. The latter finding strongly suggests a polyclonal origin of bovine leukemia virus-infected cells.

Animals