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[Genomic analysis in Candida albicans].

With the recent advances in DNA sequencing technology, a succession of entire genome sequences have been published. A number of genome projects are underway in pathogenic fungi. From these, we present the history and current status of the genomic analysis of Candida albicans. The sequencing project for this organism has been undertaken at Stanford University, and is now nearing the end.

Candida albicans↗

Sequence comparison of the large genomic RNA segments of two strains of lymphocytic choriomeningitis virus differing in pathogenic potential for guinea pigs.

Two strains of lymphocytic choriomeningitis virus (LCMV) differ in their ability to cause a lethal disease in outbred guinea pigs: the Armstrong (ARM) strain is not lethal at high doses (10(6) PFU), whereas the WE strain is lethal at less than 10 PFU inoculated intraperitoneally. The high pathogenic potential of LCMV WE has been mapped to the larger (L) of the two genomic RNA segments by genetic reassortment analysis (Riviere, Y., Ahmed, R., Southern, P. J., Buchmeier, M. J. and Oldstone, M. B. A., J. Virol. 55, 704-709, 1985). Here we describe the completed sequence of the LCMV WE L RNA, and its comparison to the L RNA of the non-virulent strain, LCMV ARM. Similar to the L RNA of LCMV ARM, the L RNA of WE is 7.2 kb long and contains two open reading frames (ORFs): the 5" ORF encodes a small RING finger (zinc-binding) protein, p11 Z, and the 3" ORF encodes the putative RNA-dependent RNA polymerase (RdRp or L protein). Comparison of nucleotide sequences for both viruses revealed 84% L RNA homology. At the amino acid level similarity between the two strains is 87% in the Z ORF, and 88% in the RdRp ORF. The most divergent regions are found in the N-terminal parts of the RdRp and Z proteins and are most likely to account for differences in pathogenic potential.

Amino Acid Sequence↗

Bacterial genomics and adaptation to life on plants: implications for the evolution of pathogenicity and symbiosis.

Many bacteria form intimate associations with plants. Despite the agricultural and biotechnological significance of these bacteria, no whole genome sequences have yet been described. Plant-associated bacteria form a phylogenetically diverse group, with representative species from many major taxons. Sequence information from genomes of closely related bacteria, in combination with technological developments in the field of functional genomics, provides new opportunities for determining the origin and evolution of traits that contribute to bacterial fitness and interactions with plant hosts.

Adaptation, Biological↗

MITOMAP: a human mitochondrial genome database--1998 update.

We have continued to develop MITOMAP (http://www.gen.emory. edu/MITOMAP ), a comprehensive database for the human mitochondrial DNA (mtDNA). MITOMAP uses the mtDNA sequence as the unifying element for bringing together information on mitochondrial genome structure and function, pathogenic mutations and their clinical characteristics, population associated variation, and gene-gene interactions. Over the past year we have increased the degree of interlinking of MITOMAP information available on the web page, by using our generalized information management system, GENOME. As increasingly larger regions of the human genome are sequenced and characterized, the need for integrating such information is growing. Consequently, MITOMAP and GENOME provide a valuable reference for the mitochondrial biologist, in addition to being a model for the development of comprehensive, information storage and retrieval systems for other components of the human genome. This paper documents the changes to MITOMAP which have been implemented over the past year.

Computer Communication Networks↗

Genomic variation in C. albicans.

Candida albicans displays many types of variation which affect a broad spectrum of phenotypes. Among them are antigenic, chromosomal, morphologic, and biochemical variation. The ability to modulate many phenotypes is clearly an important factor in the success of this fungus as a pathogen and variation at the genomic level may be the common denominator among the different systems. Genomic variation in C. albicans has been studied by many researchers and a number of different mechanisms have been identified. Among them are ploidy fluctuations, which allow the organism to cycle from 2n chromosome number to 4n or higher; translocation, which has been demonstrated to involve many different chromosomes and affects many phenotypes including virulence; mitotic recombination, which has been demonstrated to increase resistance to certain drugs; and nondisjunction, which has been shown to have morphological consequences. The number and diversity of these mechanisms combine to make C. albicans a highly successful organism. Although normally a commensal of humans, when invasive, C. albicans can inhabit almost any site in the body. It is not known what governs the transition of C. albicans from a commensal to pathogenic invader, however, variation at the genomic level likely plays a role. One possible consequence of variation is the generation of atypical strains, further expanding the documented phenotypic plasticity of this organism. The exposure of patients to cytotoxic drugs during treatment of such diseases as AIDS or cancer increases the selective pressure and has exacerbated both the frequency and degree of variability observed in C. albicans. The molecular analysis of genomic variation in C. albicans is proving to be a fertile area of research and future investigations can only be expected to add to the mechanisms documented in this review.

Candida albicans↗

A nonessential African swine fever virus gene UK is a significant virulence determinant in domestic swine.

Sequence analysis of the right variable genomic region of the pathogenic African swine fever virus (ASFV) isolate E70 revealed a novel gene, UK, that is immediately upstream from the previously described ASFV virulence-associated gene NL-S (L. Zsak, Z. Lu, G. F. Kutish, J. G. Neilan, and D. L. Rock, J. Virol. 70:8865-8871, 1996). UK, transcriptionally oriented toward the right end of the genome, predicts a protein of 96 amino acids with a molecular mass of 10.7 kDa. Searches of genetic databases did not find significant similarity between UK and other known genes. Sequence analysis of the UK genes from several pathogenic ASFVs from Europe, the Caribbean, and Africa demonstrated that this gene was highly conserved among diverse pathogenic isolates, including those from both tick and pig sources. Polyclonal antibodies raised against the UK protein specifically precipitated a 15-kDa protein from ASFV-infected macrophage cell cultures as early as 2 h postinfection. A recombinant UK gene deletion mutant, deltaUK, and its revertant, UK-R, were constructed from the E70 isolate to study gene function. Although deletion of UK did not affect the growth characteristics of the virus in macrophage cell cultures, deltaUK exhibited reduced virulence in infected pigs. While mortality among parental E70- or UK-R-infected animals was 100%, all deltaUK-infected pigs survived infection. Fever responses were comparable in E70-, UK-R-, and deltaUK-infected groups; however, deltaUK-infected animals exhibited significant, 100- to 1,000-fold, reductions in viremia titers. These data indicate that the highly conserved UK gene of ASFV, while being nonessential for growth in macrophages in vitro, is an important viral virulence determinant for domestic pigs.

African Swine Fever Virus↗

Discordant neoplasms in monozygotic twins with a germline RECQL5 variant.

RECQL5 is a member of the RecQ helicase family involved in DNA replication, homologous recombination, and maintenance of genomic stability. While germline pathogenic variants in other RecQ helicases cause established cancer predisposition syndromes, the role of RECQL5 in human cancer susceptibility remains uncertain. We report monozygotic adolescent twins with distinct tumors: dysembryoplastic neuroepithelial tumor in one twin and Burkitt lymphoma in the other. Clinical genome sequencing was initially nondiagnostic, but reanalysis identified a rare heterozygous nonsense variant in RECQL5 (NM_004259.7:c.2698C>T, p.(Gln900Ter)), present in both twins and their unaffected mother. The variant is predicted to undergo nonsense-mediated mRNA decay or produce a truncated protein lacking the C-terminal SRI (Set2-Rpb1 interacting) domain, which mediates interaction with RNA polymerase II. However, tumor sequencing data were not available to evaluate loss of heterozygosity or second somatic events. Given the unaffected carrier parent, lack of tumor molecular confirmation, and the biological heterogeneity of the tumors, a causal relationship for this variant cannot be established. This case highlights the challenges of interpreting rare germline variants in genes with emerging but incompletely characterized disease associations. Although the available evidence is insufficient to establish a definitive causal relationship, the identification of a shared loss-of-function RECQL5 variant in monozygotic twins with distinct tumors is noteworthy and adds to the limited clinical evidence suggesting a potential role for RECQL5 in cancer susceptibility. Additional functional studies, tumor-based analyses and the accumulation of well-characterized clinical cases will be essential to determine whether RECQL5 contributes to hereditary cancer predisposition.

Adolescent↗

Restricted structural gene polymorphism in the Mycobacterium tuberculosis complex indicates evolutionarily recent global dissemination.

One-third of humans are infected with Mycobacterium tuberculosis, the causative agent of tuberculosis. Sequence analysis of two megabases in 26 structural genes or loci in strains recovered globally discovered a striking reduction of silent nucleotide substitutions compared with other human bacterial pathogens. The lack of neutral mutations in structural genes indicates that M. tuberculosis is evolutionarily young and has recently spread globally. Species diversity is largely caused by rapidly evolving insertion sequences, which means that mobile element movement is a fundamental process generating genomic variation in this pathogen. Three genetic groups of M. tuberculosis were identified based on two polymorphisms that occur at high frequency in the genes encoding catalase-peroxidase and the A subunit of gyrase. Group 1 organisms are evolutionarily old and allied with M. bovis, the cause of bovine tuberculosis. A subset of several distinct insertion sequence IS6110 subtypes of this genetic group have IS6110 integrated at the identical chromosomal insertion site, located between dnaA and dnaN in the region containing the origin of replication. Remarkably, study of approximately 6,000 isolates from patients in Houston and the New York City area discovered that 47 of 48 relatively large case clusters were caused by genotypic group 1 and 2 but not group 3 organisms. The observation that the newly emergent group 3 organisms are associated with sporadic rather than clustered cases suggests that the pathogen is evolving toward a state of reduced transmissability or virulence.

Alleles↗

Targeted loss of heterozygosity in Candida albicans using CRISPR-Cas9 reveals the functional impact of allelic variation.

The diploid genome of the fungal pathogen Candida albicans is highly heterozygous, with most allele pairs diverging at either the coding or regulatory level. When faced with selection pressure like antifungal exposure, this hidden genetic diversity can provide a reservoir of adaptive mutations through loss of heterozygosity (LOH) events. Validating the potential phenotypic impact of LOH events observed in clinical or experimentally evolved strains can be difficult due to the challenge of precisely targeting one allele over the other. Here, we show that a CRISPR-Cas9 system can be used to overcome this challenge. By designing allele-specific guide RNA sequences, we can induce targeted, directed LOH events, which we validate by whole-genome long-read sequencing. Using this approach, we efficiently recapitulate a recently described LOH event that increases resistance to the antifungal fluconazole. Additionally, we find that the recombination tracts of these induced LOH events have similar lengths to those observed naturally. To facilitate future use of this method, we provide a database of allele-specific sgRNA sequences for Cas9 that provide near genome-wide coverage of heterozygous sites through either direct or indirect targeting. This approach will be useful in probing the adaptive role of LOH events in this important human pathogen.

Candida albicans↗

Bioinformatics in medical practice: what is necessary for a hospital?

Building bioinformatic facilities for a university hospital is pretty similar to using standardized building blocks to construct a house. Starting with the intention to built a dwelling house, a factory or just a shelter the architect draws a construction plan and determines the material to be used. In general, the building is then constructed by the workmen following exactly the plan. However, for particular reasons, minor alterations may be needed to improve the construction of the building. Here we use the metaphor of constructing a "bio-informatics building" to describe the steps needed to support the daily tasks of a university hospital medical microbiology department which uses genomic methods quite extensively for pathogen identification. Today the Giessen "bioinformatics building" is not yet complete but we have been able to lay solid foundations and erect the ground floor which is functional already. Using a combination of standard tools, internet accessible genomic databases and some own software tools we can support genome sequencing from the raw sequence to pathogen identification.

Computational Biology↗

[A single reverse mutation in the 126/183-kda replicase gene of the attenuated tomato strain V-69 of tobacco mosaic virus increases the virus pathogenicity].

To determine the roles of the mutations that were earlier found in the structure of the attenuated tomato strain V-69 of tobacco mosaic virus (TMV), the nucleotide sequences of genomic RNAs of its four pathogenic revertants have been identified and analyzed. The comparison of the structures of viral genomes has demonstrated that all revertants studied have a single reverse mutation at position 1654 relative to the parental TMV strain V-69. This reversion has been introduced into the plasmid construction harboring a full-length cDNA copy of the TMV strain V-69 RNA, and the infective transcripts synthesized in vitro have been tested on TMV-sensitive tomato and tobacco plants. The tests have confirmed that the single reversion at position 1654, which changes the amino acid residue at position 528 of the 126-kDa and 183-kDa proteins of the viral replicase is responsible for the increase in the pathogenicity of revertants compared to the TMV V-69 strain. The mutation at position 1654 of the viral genome may be supposed to be the main factor of the attenuation of TMV strain V-69.

Base Sequence↗

African swine fever virus multigene family 360 and 530 genes are novel macrophage host range determinants.

Pathogenic African swine fever virus (ASFV) isolates primarily target cells of the mononuclear-phagocytic system in infected swine and replicate efficiently in primary macrophage cell cultures in vitro. ASFVs can, however, be adapted to grow in monkey cell lines. Characterization of two cell culture-adapted viruses, MS16 and BA71V, revealed that neither virus replicated in macrophage cell cultures. Cell viability experiments and ultrastructural analysis showed that infection with these viruses resulted in early macrophage cell death, which occurred prior to viral progeny production. Genomic cosmid clones from pathogenic ASFV isolate E70 were used in marker rescue experiments to identify sequences capable of restoring MS16 and BA71V growth in macrophage cell cultures. A cosmid clone representing a 38-kbp region at the left terminus of the genome completely restored the growth of both viruses. In subsequent fine-mapping experiments, an 11-kbp subclone from this region was sufficient for complete rescue of BA71V growth. Sequence analysis indicated that both MS16 and BA71V had significant deletions in the region containing members of multigene family 360 (MGF 360) and MGF530. Deletion of this same region from highly pathogenic ASFV isolate Pr4 significantly reduced viral growth in macrophage cell cultures. These findings indicate that ASFV MGF360 and MGF530 genes perform an essential macrophage host range function(s) that involves promotion of infected-cell survival.

African Swine Fever Virus↗

The multi-talented bacterial adenylate cyclases.

Bacterial pathogens produce a variety of toxins capable of altering the levels of cAMP in the cells of infected hosts. Moreover, cAMP is an important signaling molecule in many bacterial species, involved in regulation of gene expression in response to a variety of environmental stimuli. The genome of the opportunistic pathogen Pseudomonas aeruginosa encodes three adenylate cyclases. One of these is exoenzyme Y, which is translocated into the host cell via a type III secretion system (TTSS). The other two cyclases are CyaA and CyaB, that generate cAMP for intracellular signaling, and together with the cognate cAMP-binding protein Vfr, control the expression of the TTSS and several virulence factors. Using a mouse infection model, it was shown that CyaB, a membrane-bound class III adenylate cyclase plays a more prominent role in regulation of TTSS-encoding genes than CyaA. Given the wide distribution of the class III adenylate cyclases among bacteria, cAMP-dependent regulation of gene expression may have evolved as a conserved mechanism for sensing environmental signals ranging from nutritional content of the surrounding media to the presence of host tissues.

Adenylyl Cyclases↗

Characterisation of pathogenic Yersinia enterocolitica serogroups by pulsed-field gel electrophoresis of genomic NotI restriction fragments.

Enteropathogenic Yersinia enterocolitica is an important cause of human and animal disease. Phenotypic and genotypic characteristics currently used to identify Y. enterocolitica are not necessarily sufficient to differentiate pathogenic from non-pathogenic strains or to analyse the epidemiology of yersiniae at a molecular level. To improve the characterisation of Yersinia isolates, NotI restriction fragment length polymorphisms (RFLPs) of chromosomal DNA of more than 100 clinical, animal and environmental isolates were analysed in pulsed-field gel electrophoresis. Highly conserved RFLP patterns with fragments ranging from 15 to 400 kb were detected within each of 10 Y. enterocolitica serogroups tested. Determination of RFLP types makes it possible to discriminate between isolates of different Y. enterocolitica serogroups and other Yersinia spp. Moreover, NotI restriction endonuclease analysis allows even subtyping of strains belonging to a unique serogroup-biotype. Identification of NotI fragments hybridising with inv- or ail-homologous sequences was used as an additional discriminating marker. The results indicate that NotI RFLP typing can provide a powerful new tool for the differentiation of clinical Y. enterocolitica isolates.

Animals↗

Transposon mutagenesis of Mycoplasma gallisepticum by conjugation with enterococcus faecalis and determination of insertion site by direct genomic sequencing.

Few genetic systems for studying mycoplasmas exist, but transposon Tn916 has been shown to transpose into the genomes of some species and can be used as an insertional mutagen. In the current study, the ability of Enterococcus faecalis to serve as a donor for the conjugative transfer of transposon Tn916 into the genome of the avian pathogen Mycoplasma gallisepticum strain PG31 was examined. Transconjugants were obtained at a frequency of > or =6 x 10(-8) per recipient CFU. To determine the transposon insertion site, an oligonucleotide primer corresponding to the 3' end of Tn916 was designed for the purpose of directly sequencing genomic DNA without PCR amplification. Using the direct sequencing approach, Tn916 was shown to insert into any of numerous sites in the M. gallisepticum genome. This is the first report of conjugal transposition of Tn916 into the M. gallisepticum genome. The ability to determine transposon insertion sites in mycoplasmas by genomic sequencing has not been previously described and allows rapid sequence analysis of transposon-generated mutants.

Animals↗

Beyond water and soil: Air emerges as a major reservoir of human pathogens.

Assessing the risk of human pathogens in the environment is crucial for controlling the spread of diseases and safeguarding human health. However, conducting a thorough assessment of low-abundance pathogens in highly complex environmental microbial communities remains challenging. This study compiled a comprehensive catalog of 247 human-pathogenic bacterial taxa from global biosafety agencies and identified more than 78 million genome-specific markers (GSMs) from their 17,470 sequenced genomes. Subsequently, we analyzed these pathogens' types, abundance, and diversity within 474 shotgun metagenomic sequences obtained from diverse environmental sources. The results revealed that among the four habitats studied (air, water, soil, and sediment), the detection rate, diversity, and abundance of detectable pathogens in the air all exceeded those in the other three habitats. Air, sediment, and water environments exhibited identical dominant taxa, indicating that these human pathogens may have unique environmental vectors for their transmission or survival. Furthermore, we observed the impact of human activities on the environmental risk posed by these pathogens, where greater amounts of human activities significantly increased the abundance of human pathogenic bacteria, especially in water and air. These findings have remarkable implications for the environmental risk assessment of human pathogens, providing valuable insights into their presence and distribution across different habitats.

Humans↗

Role of innate immunity in respiratory mycoplasma infection.

Mycoplasmas are unique among respiratory pathogens. They possess very small genomes, lack cell walls and are strictly dependent on the host for survival. These pathogens have developed the ability to quickly adapt to the host environment through attachment to target cells within the host. Mycoplasmas have been identified as commensal microbial flora of healthy persons yet, infection of the upper and lower respiratory tracts can result in acute cough, fever and headache, and even chronic disease involving multiple organs. The lung contains a complex system of defense mechanisms with which to combat these pathogens, including innate (nonspecific) and acquired (specific) immune responses. Innate defenses include mechanical clearance, cellular responses provided by host phagocytes and molecular protection in the form of antimicrobial peptides. The interaction of mycoplasmas with different components of the innate immune system and mechanisms by which they incite pathology has proved elusive. The mechanisms by which pathogenic mycoplasmas evade the innate immune system are unknown. The purpose of this review is to summarize current knowledge of these interactions in the hope of identifying new avenues for research and therapy.

Animals↗

A suitable Xylella fastidiosa CVC strain for post-genome studies.

The genome sequence of the pathogen Xylella fastidiosa Citrus Variegated Chlorosis (CVC) strain 9a5c has revealed many genes related to pathogenicity mechanisms and virulence determinants. However, strain 9a5c is resistant to genetic transformation, impairing mutant production for the analysis of pathogenicity mechanisms and virulence determinants of this fastidious phytopathogen. By screening different strains, we found out that cloned strains J1a12, B111, and S11400, all isolated from citrus trees affected by CVC, are amenable to transformation, and J1a12 has been used as a model strain in a functional genomics program supported by FAPESP (São Paulo State Research Foundation). However, we have found that strain J1a12, unlike strains 9a5c and B111, was incapable of inducing CVC symptoms when inoculated in citrus plants. We have now determined that strain B111 is an appropriate candidate for post-genome studies of the CVC strain of X. fastidiosa.

Citrus sinensis↗