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Comprehensive circRNA expression profile and hub genes screening during human liver development.

BACKGROUND: Understanding the expression of non-coding RNA in the liver during embryonic development provides important insights into liver diseases. Therefore, we investigated circular RNA (circRNA) roles in human liver development, an unexplored research domain. METHODS: Using high-throughput sequencing and bioinformatics, we analysed foetal liver samples across developmental stages (7-20 weeks post-conception). Differentially expressed (DE) genes were identified and subjected to enrichment analysis using Gene Ontology (GO), Kyoto Encyclopaedia of Genes and Genomes (KEGG), and Disease Ontology (DO). Modular analysis was performed using the Search Tool for Retrieval of Interacting Genes (STRING), followed by construction of a protein-protein interaction (PPI) network using Cytoscape software. The key genes were screened using Molecular Complex Detection (MCODE). The mRNA levels of hub genes were validated using quantitative reverse transcription polymerase chain reaction (qRT-PCR). RESULTS: There were 645 DE circRNAs and 5,145 DE mRNAs between human livers at the three growth stages (HB, EH, and LH). It was found that the activity of circRNAs was boosted remarkably in the hepatoblastic stage. Enrichment analysis found they mainly involved in nervous system regulation of liver function, embryonic organ development and digestive system development. In addition, DE circRNAs were primarily involved in the PI3K-AKT, MAPK and calcium pathways, potentially contributing to adult liver diseases. Notably, only hsa_circ_001471 and novel_circ_017382 were simultaneously identified at all stages and were persistently downregulated. A co-expression regulatory network involving these circRNAs was established. Three hub genes (LGR5, FOXL1 and RSPO3) were identified from the PPI network of 167 genes and may play key roles in human liver development. The RT-qPCR validation results were in agreement with the sequencing data. CONCLUSIONS: Our findings provide the first insights into the roles and regulatory networks of circRNAs in human liver development, laying the groundwork for further investigations of molecular and signalling networks.

Humans

Analysis of the expression of cloned genes using an Escherichia coli cell-free system.

An Escherichia coli coupled transcription-translation cell-free system, which is efficient in the synthesis of proteins directed by exogenously added DNA, is described. These cell-free extracts direct protein synthesis against a low background of endogenous protein synthesis providing a means for analyzing the expression of isolated genes. This is especially important when using restriction enzyme-linearized DNAs which are less efficient templates than circular DNAs. This cell-free system has been used to study the expression of the proteins coded by plasmids pBR322 and pBL101.

Bacterial Proteins

Depth-coded motion signals in plaid perception and optokinetic nystagmus.

When two sine-wave gratings drift in different directions at the same speed behind a circular window, a single coherent plaid is seen rather than one grating sliding over the other. We find that as the stereo depth separation of the two component gratings increases, the probability of seeing a plaid declines. The gain of the slow phase of vertical optokinetic nystagmus (OKN) also falls as the separation of the components increases. When the two grating components are in the same depth plane, the vertical eye velocity is greater than that of either component. This shows that the OKN is being driven by the plaid, whose vertical speed is roughly twice as fast as the components. We conclude that both perception and OKN are fed by the same motion signal, which arises after binocular combination and after plaid synthesis.

Depth Perception

Isolation of transcriptionally active chromatin from mammalian nucleoli.

Nucleoli isolated from HeLa cells are functionally active but contain large amounts of RNA and proteins (RNA/DNA ratio 1:1; protein/DNA ratio 7:1). We have isolated from the nucleolus a DNA-protein complex that has the characteristics of nucleolar chromatin (RNA/DNA ratio less than 0.05:1; protein/DNA ratio 1.7:1). This nucleolar chromatin has most of the transcriptional activity of the intact nucleolus and, as assayed by circular dichroism and dye binding, has largely preserved its structure. The isolation of a transcriptionally active, fragment of chromatin, which constitutes only a small part of the total genome and codes for only one recognizable product, offers several advantages for the study of chromatin structure and function.

Cell Nucleolus

Genomic analysis of an Arctic marine Tenacibaculum sp. SM2510 reveals its genetic potential for glutathione utilization.

Glutathione is a key intracellular antioxidant, playing a crucial role in resisting oxidative stress and maintaining cellular redox homeostasis. However, the glutathione metabolic capacity of Tenacibaculum remains poorly characterized. In this study, a Gram-stain-negative bacterium, Tenacibaculum sp. SM2510, was isolated from seawater collected from Kongsfjorden, Svalbard, Norway. Genome sequencing revealed that the strain possesses a single circular chromosome of 2,904,982 bp with a G + C content of 31.44%, encoding 2564 protein-coding genes. Genomic analysis indicates that Tenacibaculum sp. SM2510 may directly take up extracellular oxidized glutathione (GSSG) and reduce it to reduced glutathione (GSH) through a reductive pathway, which potentially allows the strain to alleviate the accumulation of reactive oxygen species (ROS) caused by strong ultraviolet radiation and low temperature in polar environments. Furthermore, genomic analysis predicts that the strain degrades GSH to produce essential life-sustaining substances. In conclusion, these results suggest that Tenacibaculum sp. SM2510 may potentially utilize exogenous glutathione for both antioxidant defense and nutrient acquisition through direct GSH degradation, providing new insights into the environmental adaptive evolution of polar marine bacteria.

Tenacibaculum

Association of Mu-containing plasmids with the Escherichia coli chromosome upon prophage induction.

To determine the structure of a prophage-containing plasmid during Mu transposition, we have monitored the physical state of pSC101[unk]Mucts after thermoinduction. We have also examined the fate of a mini Mu plasmid constructed in vitro by deleting 27 kilobases from the center of the Mu prophage in pSC101[unk]Mucts. At various times after prophage induction, DNA was extracted from Mu or mini Mu plasmid-containing strains and subjected to electrophoresis in low concentration agarose gels followed by transfer of the DNA to nitrocellulose paper. Separate hybridization with (32)P-labeled pSC101 and Mu DNA revealed the position of the plasmids and the replication of Mu DNA. At times after induction when Mu replication was clearly visible, Mu and mini Mu plasmids were found to migrate with Escherchia coli DNA. This Mu-specific association requires the phage coded A and B proteins. Electron microscopy has shown that some of the associated DNA is comprised of circular plasmid molecules which appear to be in contact with the chromosomal DNA. These structures may represent intermediates or end products of the replication-integration process. The finding that Mu and mini Mu plasmids do not give rise to any detectable excision products and apparently remain intact during Mu transposition supports our proposal that the predominant event after Mu induction is the replication of Mu DNA in situ to generate integrative intermediates.

Bacteriophage mu

[Human hepatitis B virus and hepatocellular carcinoma].

Hepatitis B virus (HBV) is the causative agent of hepatocellular carcinoma (HCC) in man. The HBV genome is a circular partially double-stranded DNA molecule of about 3.2 kb. The HBV genome contains four structural genes coding for the HBV envelope (HBsAg) and core (HBcAg/HBeAg) proteins, endogenous DNA-polymerase with the additional enzymatic activity of a reverse transcriptase and polypeptide X functioning as a trans-activator of cellular and viral genes. HBV DNA integration in the genomes of HCCs and hepatocytes of HBV carriers is an important evidence establishing a relationship between the HBV infection and the development of HCC. The mechanism of HBV DNA integration into the cellular genome and the possible role of integrated HBV DNA sequences in the malignant transformation of hepatocytes are discussed.

Carcinoma, Hepatocellular

Transformed Xenopus embryos as a transient expression system to analyze gene expression at the midblastula transition.

The onset of transcriptional activity during embryogenesis in Xenopus laevis is at the 4000- to 8000-cell stage (stage 8-8.5) and is referred to as the midblastula transition (MBT). Most exogenous circular DNA that is microinjected into the fertilized egg also is expressed at the MBT. The transformed Xenopus embryo at these early stages was used as a transient expression system in order to determine the effects of (1) promoter strength, (2) physical conformation, (3) degree of replication, and (4) a regulatory molecule on the expression of an injected gene coding for chloramphenicol acetyl transferase. This gene linked to a relatively strong promoter (SV40 early promoter -pSV2CAT), a weak promoter (adenovirus early promoter -pE3CAT), or in circular or linear form is expressed at stage 8-8.5 following injection into fertilized eggs. pE3CAT coinjected with the E1a protein (enhances the transcription of the E3 promoter) is also expressed at stage 8.5, but expression is enhanced 2-7.6 fold. These data suggest that the inhibition of transcription prior to the MBT could not be perturbed by either the presence of different promoters or a positive regulatory molecule such as the E1a protein.

Acetyltransferases

Segmented structure of protein sequences and early evolution of genome by combinatorial fusion of DNA elements.

A theory of an early stage of genome evolution by combinatorial fusion of circular DNA units is suggested, based on protein sequence "fossil" evidence. The evidence includes preference of protein sequence lengths for certain sizes--multiples of 123 aa for eukaryotes and multiples of 152 aa for prokaryotes. At the DNA level these sizes correspond to 350-450 base pairs--the known optimal range for DNA ring closure. The methionine residues repeatedly appear along the sequences with the same period of about 120 aa (in eukaryotes), presumably marking the sites of insertion of the early genes--rings of protein-coding DNA. No torsional constraint in this DNA results in very sharp estimate of the helical periodicity of the early DNA, indistinguishable from the experimental mean value for extant DNA. According to the combinatorial fusion theory, based on the above evidence, in the pregenomic, prerecombinational stage the genes and the noncoding sequences existed in form of autonomously replicating DNA rings of close to standard size, randomly segregating between dividing cells, like modern plasmids do. In the recombinational early genomic stage the rings started to fuse, forming larger DNA molecules consisting of several unit genes connected in various combinations and forming long protein-coding sequences (combinatorial fusion). This process, which involved, perhaps, noncoding sequences as well, eventually resulted in the formation of large genomes. The dispersed circular DNA--or, rather, evolutionarily advanced derivatives thereof--may still exist in the form of various mobile DNA elements.

Biological Evolution

Mutational analysis of the simian virus 40 replicon: pseudorevertants of mutants with a defective replication origin.

The circular genome of simian virus 40 is a model mammalian replicon, containing a unique origin of replication (ori) and coding for a protein (SV40 T antigen) known to be involved in initiation of viral DNA replication and to bind in vitro to the origin region. Mutations within the ori sequence lead to defective viral DNA replication and the formation of small viral plaques after infection of a cell monolayer. Second-site revertants (pseudorevertants) of ori mutants were isolated by random local mutagenesis of mutant DNA followed by transfection of cultured cells and the selection of large plaques. In each case, reversion of the plaque phenotype was associated with an increased rate of viral DNA replication. The second-site mutations that suppressed the replication defects were localized by in vitro recombination or marker rescue experiments to the gene for T antigen. Their map positions differ from those of previously described T antigen mutants, possibly reflecting a specific ori-binding domain of T antigen. From these results we infer that T antigen interacts with the ori signal during virus development as it does in vitro and that this interaction regulates the rate of viral DNA replication.

Antigens, Neoplasm

Mitogenome assembly and phylogenetic relationships of Phalaris arundinacea.

INTRODUCTION: As a perennial herb of Poaceae, Phalaris arundinacea plays key roles in grazing, production, and soil and water conservation because of its well-developed rhizomes and seed dispersal. We assembled and annotated the first mitogenome of P. arundinacea to support evolutionary and taxonomic research. METHODS: We assembled and annotated the first complete mitochondrial genome of P. arundinacea by integrating Illumina short reads with Nanopore long reads via a hybrid assembly strategy. The genome architecture was comprehensively characterized, encompassing codon usage bias, repetitive sequence organization, and inter-organellar genetic exchange with the chloroplast genome. RESULTS AND DISCUSSION: Assembly of the P. arundinacea mitogenome revealed two circular structures with a combined length of 526,717 bp. The genome comprised a set of 37 protein-coding genes (PCGs), 27 tRNAs, and 8 rRNAs, with the rRNA genes exhibiting full assembly (100% coverage). The mitochondrial genome contained 154 forward and 164 palindromic repeats, along with 25 tandem repeats and 124 simple sequence repeats (SSRs). Notably, 102 SSRs were distributed on contig1, predominantly in tetrameric form. Furthermore, 376 RNA editing sites were predicted. A total of 104 fragments were integrated into the mitochondrial genome from the chloroplast, amounting to 55,866 bp of transferred sequence. Finally, phylogenetic analysis of 28 plant mitogenomes placed P. arundinacea closest to species within the genus Poa (P. chaixii and P. pratensis). Comparative analysis of non-synonymous-to-synonymous substitution rate (Ka/Ks) ratios across divergent species revealed that the mitochondrial genome of P. arundinacea underwent stabilizing evolutionary dynamics, characterized by predominant purifying selection with several lineage-specific variations in selective pressure. Our findings support the close phylogenetic relationship between P. arundinacea and species of the genus Poa and provide a reference mitochondrial genome resource for future comparative studies within Phalaris that incorporate broader taxon sampling. These results support deeper phylogenetic investigations of P. arundinacea and facilitate future work on its germplasm characterization and applied use.

Phalaris arundinacea

Enzymatic oligomerization of bacteriophage P22 DNA and of linear Simian virus 40 DNA.

Linear double-stranded molecules of the circularly permuted and terminally redundant DNA of Salmonella bacteriophage P22 have been converted to oligomeric products in the presence of polynucleotide ligase coded for by the coliphage T4. The reaction has been monitored by sucrose density-gradient centrifugation and electron microscopy. It goes slowly and gives yields of 30-40%. The products are mainly dimers and trimers, but higher oligomers are also present.DNA ligase extracted from uninfected Escherichia coli seems unable to perform a similar reaction, which is concluded to involve the fully base-paired termini. Linear double-stranded molecules of simian virus(SV) 40 DNA, produced by the action of the bacterial restriction endonuclease R(1), are oligomerized by either ligase; therefore, this reaction seems to involve single-stranded cohesive ends. No mixed products could be found when P22 DNA and linear SV 40 DNA were exposed together to the T4 ligase.

Carbon Isotopes

Somatic diversification of the chicken immunoglobulin light-chain gene.

The bursa of Fabricius provides a unique organ for the study of lineage-specific development in a multicellular organism. Unlike mammalian B cells, B cells in the chicken develop in a single wave of differentiation, beginning with the commitment of progenitor cells to the B cell lineage between days 10 and 15 of embryogenesis. By day 18 of embryogenesis, all lymphoid progenitor cells capable of differentiation along the B cell lineage have migrated to the bursa of Fabricius. Following migration to the bursa, these lymphoid progenitors enter exponential growth and begin to populate each of the 10(4) bursal follicles. Between day 18 of embryogenesis and 2-4 weeks of age, B cells undergo a stage of bursal-dependent differentiation. By the end of this period, chickens are able to mount primary immune responses against virtually all antigens. In addition, by this time sufficient numbers of B cells have migrated from the bursa to peripheral lymphoid organs so that the B cell immune system can be maintained even if the bird is bursectomized. Bursectomy of chicks after 4 weeks of age has no long-term effects on the development and maintenance of the B cell immune system in adult birds. Because of the central nature of the surface Ig molecule to B cell development in mammals, the chicken IgL gene locus has been intensively studied during avian B cell development. The chicken IgL locus is a particular interest because it has only one V region capable of rearrangement. Rearrangement of the IgL gene is not dependent on the bursal environment. B cell progenitors rearrange their IgL gene between days 10-15 of embryogenesis, prior to migration to the bursa. IgL gene rearrangement occurs by a deletional mechanism in which a precise joining of the IgL recombination signal sequences leads to a circular episomal element. During this deletion it appears that single nonrandom bases are added to both the V and J coding segments. Subsequent V-J joining occurs at random. Most progenitor B cells appear to rearrange only a single IgL allele. The high frequency of in-frame alleles observed in avian B cell lines appears to result from the selective amplification of cells with productive IgL rearrangements during bursal development between days 12 and 18 of embryogenesis. To create an immunological repertoire, chickens must diversify the coding sequence of this single functional V gene segment during development.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Genetic analysis of the tomato golden mosaic virus. II. The product of the AL1 coding sequence is required for replication.

Tomato golden mosaic virus (TGMV) belongs to the geminivirus subgroup that is characterized by a split genome consisting of two single-stranded circular DNAs. The TGMV A genome component encodes the virus coat protein as well as all of the functions necessary for viral DNA replication. Analysis of the nucleotide sequence indicates that the TGMV A component has, in addition to the coat protein encoding ORF, four overlapping open reading frames (ORFs) with the potential to encode proteins of greater than 10 kD. We have investigated the functions of these putative proteins in both symptom formation and DNA replication by creating mutations in each of the ORFs. Our results show that the AL4 ORF, which is encoded within the N-terminal region of ORF AL1, is not essential for normal virus infection. In contrast, we find that disruption of the AL3 ORF results in delay and attenuation of symptom formation. We also report that the products of the AL1 and AL2 ORFs are absolutely required for symptom formation. Studies of DNA replication show that only the AL1 open reading frame is essential for viral DNA synthesis. The significance of these results for the development of vectors from the geminiviruses is discussed.

DNA Mutational Analysis