Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Pathogen genomics”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 829 records · Page 46Linked to original sources

Fine-resolution physical mapping of genomic diversity in Candida albicans.

It has been suggested that Candida albicans, a diploid asexual fungus, achieves genetic diversity by genomic rearrangement. This important human pathogen may provide a system in which to analyze alternate routes to genomic diversity. C. albicans has a highly variable karyotype; its chromosomes contain a middle repeated DNA sequence called the Major Repeat Sequence (MRS), composed of subrepeats HOK, RPS, and RB2. RPS is tandemly repeated while the other subrepeats occur once in each MRS. Chromosome 7, the smallest of the eight chromosomes, has been previously mapped. The complete physical map of this chromosome was used to analyze chromosome 7 diversity in six strains, including two well-characterized laboratory strains (1006 and WO-1) and four clinical ones. We found four types of events to explain the genomic diversity: 1) Chromosome length polymorphism (CLP) results from expansion and contraction of the RPS; 2) reciprocal translocation occurs at the MRS loci; 3) chromosomal deletion; and (4) trisomy of individual chromosomes. These four phenomena play an important role in generating genomic diversity in C. albicans.

Aneuploidy↗

Deep learning-based assessment of missense variants in the COG4 gene presented with bilateral congenital cataract.

OBJECTIVE: We compared the protein structure and pathogenicity of clinically relevant variants of the COG4 gene with AlphaFold2 (AF2), Alpha Missense (AM), and ThermoMPNN for the first time. METHODS AND ANALYSIS: The sequences of clinically relevant Cog4 missense variants (one novel identified p.Y714F and three pre-existing p.G512R, p.R729W and p.L769R from Uniprot Q9H9E3) were imported into AF2 for protein structural prediction, and the pathogenicity was estimated using AM and ThermoMPNN. Different pathogenicity metrics were aggregated with principal component analysis (PCA) and further analysed at three levels (amino acid position, substitution and post-translation) based on all possible Cog4 missense variants (n=14 915). RESULTS: Localised protein structural impact including change of conformation and amino acid polarity, breakage of hydrogen bond and salt-bridge, and formation of alpha-helix were identified among clinically relevant Cog4 variants. The global structural comparison with multidimensional scaling demonstrated variants with similar protein structures (AF2) tended to exhibit similar clinical and biological phenotypes. The Cog4 p.Y714F variant exhibited greater protein structural similarity to mutated Cog4 found in Saul‒Wilson syndrome (p.G512R) and shared similar clinical phenotype (congenital cataract and psychomotor retardation). PCA of included pathogenic metrics demonstrated p.Y714F occurred at a critical position in Cog4 amino acid sequence with disrupted post-translational phosphorylation. CONCLUSION: Deep learning algorithms, including AF2, AM and ThermoMPNN, can be useful for evaluating variant of uncertain significance (VUS) by structural and pathogenicity prediction. Despite classified as VUS (American College of Medical Genetics and Genomics criteria: PM1, PP4), the pathogenicity in this Cog4 variant cannot be ruled out and warrants further investigation.

Mutation, Missense↗

Highly variable rates of genome rearrangements between hemiascomycetous yeast lineages.

Hemiascomycete yeasts cover an evolutionary span comparable to that of the entire phylum of chordates. Since this group currently contains the largest number of complete genome sequences it presents unique opportunities to understand the evolution of genome organization in eukaryotes. We inferred rates of genome instability on all branches of a phylogenetic tree for 11 species and calculated species-specific rates of genome rearrangements. We characterized all inversion events that occurred within synteny blocks between six representatives of the different lineages. We show that the rates of macro- and microrearrangements of gene order are correlated within individual lineages but are highly variable across different lineages. The most unstable genomes correspond to the pathogenic yeasts Candida albicans and Candida glabrata. Chromosomal maps have been intensively shuffled by numerous interchromosomal rearrangements, even between species that have retained a very high physical fraction of their genomes within small synteny blocks. Despite this intensive reshuffling of gene positions, essential genes, which cluster in low recombination regions in the genome of Saccharomyces cerevisiae, tend to remain syntenic during evolution. This work reveals that the high plasticity of eukaryotic genomes results from rearrangement rates that vary between lineages but also at different evolutionary times of a given lineage.

Candida albicans↗

Gene conversions in genes encoding outer-membrane proteins in H. pylori and C. pneumoniae.

Helicobacter pylori and Chlamydia pneumoniae are both pathogenic to humans. Their genomes have recently been completed, allowing detailed study of their evolution and organization. Here we describe an evolutionary analysis of the H. pylori and C. pneumoniae genes that encode their outer-membrane proteins. By comparing complete genome sequences of two H. pylori strains and two C. pneumoniae strains, we identify multiple independent conversions among these genes. Such recombination events might provide a selective advantage for these bacterial pathogens.

Bacterial Outer Membrane Proteins↗

A minimal tiling path cosmid library for functional analysis of the Pseudomonas aeruginosa PAO1 genome.

Pseudomonas aeruginosa is an important pathogenic and environmental bacterium, with the most widely studied strain being PAO1. Using the PAO1 reference cosmid library and the recently completed PAO1 genome sequence, we have mapped a minimal tiling path across the genome using a two-step strategy. First, we sequenced both ends of a set of over 500 random and previously mapped clones to create a backbone. Second, we end-sequenced a second set of cosmid clones that were identified to lie within the larger gaps using hybridization of the reference library filters with probes designed against sequences at the center of each gap. The minimal tiling path was calculated using the program Domino (http://www.bit.uq.edu.au/download/), with the overlap between adjacent clones set to 5 kb (where possible) to minimize the chance of truncating genes. This yielded a minimal tiling cosmid library (334 clones) covering 93.7% of the genome in 57 contigs. This library has reduced to a workable set the number of clones required to represent the majority of the P. aeruginosa genome and gives the precise location of each cosmid, enabling most genes of interest to be located on clones without further screening. This library should prove a useful resource to accelerate functional analysis of the P. aeruginosa genome.

Cloning, Molecular↗

Contribution of Efa1/LifA to the adherence of enteropathogenic Escherichia coli to epithelial cells.

Enteropathogenic E. coli(EPEC) is an important diarrhoeal pathogen that induces characteristic lesions on the host intestine termed attaching and effacing (A/E) lesions. In this study we have examined the contribution of a large gene, efa1, which is present in all A/E pathogens, to the adherence phenotype of EPEC. An efa- derivative of EPEC JPN15 was constructed and this mutant was significantly less adherent to epithelial cells than the parent strain. The JPN15 efa- derivative was FAS-positive, produced EspA filaments and showed comparable levels of EspA secretion to JPN15. In addition, polyclonal antibodies raised to Efa1 partially inhibited the adherence of JPN15 to cultured epithelial cells. In further work, we showed that human and rabbit hosts infected with an A/E pathogen produced antibodies to Efa1 and we observed that the truncated form of efa1 present in EHEC O157:H7 was specific to that serotype. Generally efa1 was present in its entirety in the genomes of other A/E pathogens. Overall our data suggest that Efa1 has host cell binding activity, at least in tissue culture, and that it is produced during infection. These findings suggest that Efa1 may play a direct role in the pathogenesis of infections caused by A/E pathogens.

Animals↗

The US 9, 10, 11, and 12 genes of herpes simplex virus type 1 are of no importance for its neurovirulence and latency in mice.

We have studied the pathogenic and latency/reactivation potential of a herpes simplex virus type 1 (HSV-1) variant (N38) which has a deletion of four genes, US9, US10, US11, and US12, in the short unique region of the HSV-1 genome. N38 was as pathogenic as the parental wild-type virus following intracerebral infection of mice and replicated with wild-type kinetics in the brain. After intraperitoneal infection, some restricted replication of N38 was observed in the adrenal gland and the deletion virus was about 20-fold less virulent than the parental virus. There was no significant difference between two viruses in the frequency of reactivation or in reactivation time. The results indicate that US9, US10, US11, and US12 gene products are dispensable for its neurovirulence and latency in mice.

Animals↗

Cloned avirulence genes from the tomato pathogen Pseudomonas syringae pv. tomato confer cultivar specificity on soybean.

Three different cosmid clones were isolated from a genomic library of the tomato pathogen Pseudomonas syringae pv. tomato, which, when introduced into the soybean pathogen P. syringae pv. glycinea, caused a defensive hypersensitive response (HR) in certain soybean cultivars. Each clone was distinguished by the specific cultivars that reacted hypersensitively and by the intensity of the HR elicited. Unlike wild-type P. syringae pv. tomato isolates, which elicit the HR on all soybean cultivars, all three clones exhibited cultivar specificities analogous to avirulence genes previously cloned from P. syringae pv. glycinea. However, the collective phenotypes of the three clones accounted for HRs on all tested soybean cultivars. One of the three P. syringae pv. tomato clones contained an avirulence gene homologous to avrA, which was previously cloned from P. syringae pv. glycinea race 6. The other two P. syringae pv. tomato clones expressed unique HR patterns on various soybean cultivars, which were unlike those caused by any known P. syringae pv. glycinea race or previously cloned P. syringae pv. glycinea avr gene. Further characterization of the second P. syringae pv. tomato clone indicated that the avirulence phenotype resided on a 5.6-kilobase HindIII fragment that, in Southern blot analyses, hybridized to an identical-size fragment in various P. syringae pathovars, including all tested glycinea races. These results demonstrate that avirulence genes may be distributed among several P. syringae pathovars but may be modified so that the HR is not elicited in a particular host plant. Furthermore, the data raise the possibility that avirulence genes may function in host-range determination at levels above race-cultivar specificity.

Journal Article↗

Integrative genomic, transcriptional, and proteomic diversity in natural isolates of the human pathogen Burkholderia pseudomallei.

Natural isolates of pathogenic bacteria can exhibit a broad range of phenotypic traits. To investigate the molecular mechanisms contributing to such phenotypic variability, we compared the genomes, transcriptomes, and proteomes of two natural isolates of the gram-negative bacterium Burkholderia pseudomallei, the causative agent of the human disease melioidosis. Significant intrinsic genomic, transcriptional, and proteomic variations were observed between the two strains involving genes of diverse functions. We identified 16 strain-specific regions in the B. pseudomallei K96243 reference genome, and for eight regions their differential presence could be ascribed to either DNA acquisition or loss. A remarkable 43% of the transcriptional differences between the strains could be attributed to genes that were differentially present between K96243 and Bp15682, demonstrating the importance of lateral gene transfer or gene loss events in contributing to pathogen diversity at the gene expression level. Proteins expressed in a strain-specific manner were similarly correlated at the gene expression level, but up to 38% of the global proteomic variation between strains comprised proteins expressed in both strains but associated with strain-specific protein isoforms. Collectively, >65 hypothetical genes were transcriptionally or proteomically expressed, supporting their bona fide biological presence. Our results provide, for the first time, an integrated framework for classifying the repertoire of natural variations existing at distinct molecular levels for an important human pathogen.

Bacterial Proteins↗

Molecular cloning of full-length HIV-1 genomes directly from plasma viral RNA.

Human immunodeficiency virus type 1 (HIV-1) in plasma reflects the replicating virus population at any point in time in vivo. Studies of the relationship of the complete HIV-1 genome to pathogenesis therefore need to focus on plasma virions. Since dual infections and recombination can occur in vivo, cloning an intact plasma virus genome as a single full-length molecule is desirable. For these reasons, we developed an efficient method to clone full-length HIV-1 genomes directly from plasma viral RNA. This method used reverse transcription and long polymerase chain reaction (PCR) amplification. Virion-associated RNA was isolated from plasma samples and then reverse-transcribed to make cDNA for PCR amplification. Two different strategies were employed to amplify the full-length genome: one amplified a 9-kb fragment, and the other amplified two overlapping 5-kb fragments. Although both strategies were successful, the second was preferable for amplifying HIV-1 genomes from samples with low viral titers. By directly ligating the PCR-derived fragments into a phagemid vector, we constructed clones that comprised full-length HIV-1 RNA genomes. Using this technique, we have constructed hundreds of clones containing full-length HIV-1 genomes derived from the plasma of HIV-1-infected individuals, some of whom had low HIV-1 titers. Different HIV-1 molecular species were cloned from a single clinical sample, as demonstrated by restriction site polymorphism. This method provides a tool for studying complete HIV-1 genomes in relation to pathogenic processes.

Base Sequence↗

Insights into the origin, hybridisation and adaptation of Candida metapsilosis hybrid pathogens.

Hybridisation is a source of genetic diversity, can drive adaptation to new niches and has been found to be a frequent event in lineages harbouring pathogenic fungi. However, little is known about the genomic implications of hybridisation nor its impact on pathogenicity-related traits. A common limitation for addressing these questions is the narrow representativity of sequenced genomes, mostly corresponding to strains isolated from infected patients. The opportunistic human pathogen Candida metapsilosis is a hybrid that descends from the crossing between unknown parental lineages. Here, we sequenced the genomes of five new C. metapsilosis isolates, one representing the first African isolate for this species, and four environmental isolates from marine niches. Our comparative genomic analyses, including a total of 29 sequenced strains, shed light on the phylogenetic relationships between C. metapsilosis hybrid isolates and show that environmental strains are closely related to clinical ones and belong to different clades, suggesting multiple independent colonisations. Furthermore, we identify a new diverging clade likely emerging from the same hybridisation event that originated two other previously described hybrid clades. Lastly, we evaluate phenotypes relevant during infection such as drug susceptibility, thermotolerance or virulence. We identify low drug susceptibility phenotypes which we suggest might be driven by loss of heterozygosity events in key genes. We discover that thermotolerance is mainly clade-dependent and find a correlation with the faecal origin of some strains which highlights the adaptive potential of the fungus as commensal.

Humans↗

Genome organization of the Kresse strain of porcine parvovirus: identification of the allotropic determinant and comparison with those of NADL-2 and field isolates.

The Kresse strain of porcine parvovirus (PPV) was cloned into pUC19, and independent infectious clones were sequenced. The PPV Kresse and NADL-2 strains, which have different pathogenicities, shared an identical genomic organization and a high degree of sequence identity. Partial genomes (1.5 or 1.6 kb) of 15 field isolates were also amplified by PCR in regions with significant sequence differences between the laboratory strains. Five amino acid differences were consistently present within the VP1/VP2 coding region of the Kresse strain and virulent field isolates. A number of inconsistent point mutations were also found throughout the genomes of field isolates. In addition, among those with the vaccine amino acid profile, all but one isolate (IAF-3) contained a 127-bp noncoding direct repeat downstream of the capsid protein gene. The one exception was also the only vaccine-type PPV obtained from a mummified fetus. In order to identify genetic elements responsible for the distinct tropism (and possibly the pathology) of the Kresse strain, in vitro cell systems which differentiated the virulent from the vaccinal strains were established. Subsequently, chimeric infectious clones of the Kresse and NADL-2 strains were used to identify the allotropic determinant located in the VP1/VP2 region. The transfer of the BglII fragment of the Kresse genome, containing three amino acid differences, into the NADL-2 background, or the opposite construct, caused the phenotype of the target genome to revert to that of the parent strain of the BglII fragment. Prediction of the localization of amino acid differences on the basis of canine parvovirus capsid structure indicates that each is located on or near the outer surface of the virion. In particular, the position of one mutation (S-436-->P) maps by analogy to the threefold spike, the most accessible region of the capsid.

Amino Acid Sequence↗

Genes to genetic immunization: identification of bacterial vaccine candidates.

Pathogenic bacteria still represent a major threat to human health worldwide and the need for new vaccines is great. Virulence factors, particularly surface-located molecules, often make good vaccine targets because they are essential for access to their niche within the host. The advent of whole-genome sequencing of bacterial pathogens has revolutionized the methods by which these organisms are studied and provides us with the possibility of identifying potential targets for vaccines by sequence scanning alone. Other developments in molecular biology, such as whole genome expression and mass mutagenesis, are also contributing to the identification of potential vaccine targets. In this chapter, we review approaches that exploit whole genome sequence data to identify potential virulence determinants and vaccine antigens.

Animals↗

Molecular genetics in Aspergillus fumigatus.

Manipulation of the genome of the human pathogen Aspergillus fumigatus is not well developed. Approaches and data from related model organisms are being used to develop molecular genetic systems in A. fumigatus; for example, the molecular typing of strains during infection. A genome-sequencing programme has begun and will form the basis for future development.

Aspergillosis↗

Genomic analyses of microbial virulence.

Genomic sequencing of bacterial pathogens is providing an increasing wealth of new data. It is, however, still unclear how this information can be used to develop new experimental approaches. Here, we describe recent efforts to complement existing bacterial genetics with genomic methods for the study of pathogenesis.

Bacteria↗

Identification and differentiation of mycobacteria using the PAN promoter sequence from Mycobacterium paratuberculosis as a DNA probe.

A 165 bp DNA fragment containing the PAN promoter from Mycobacterium paratuberculosis was used as a probe in Southern blots to detect the presence of related sequences in other species of mycobacteria. Among the species tested homologous sequences appeared to be present in representative pathogens belonging to the Mycobacterium tuberculosis complex, the MAIS complex, Mycobacterium kansasii and also the non-pathogenic vaccine strain Mycobacterium bovis BCG. In addition, the probe could differentiate between these species on the basis of a restriction fragment length polymorphism (RFLP). No hybridization was observed with DNA extracted from a selected group of other slow-growing and fast-growing mycobacteria nor from a selection of other bacterial pathogens. It appears that the PAN sequence is identifying genomic regions common to the major pathogenic groups of mycobacteria.

Base Sequence↗

Upsurge of pneumococcal clade I-α/CC180 serotype 3 and its association with a LytA mutation linked to immune evasion and disease potential: an observational and experimental study.

BACKGROUND: Streptococcus pneumoniae serotype 3 is one of the most prevalent serotypes that cause invasive pneumococcal disease (IPD) in children and adults worldwide. Serotype 3 is associated with vaccine failures and breakthrough episodes in children vaccinated with 13-valent pneumococcal conjugate vaccine (PCV13). In this study, we aimed to investigate potential genetic mechanisms that could explain the increase in cases of serotype 3 IPD in Spain. METHODS: We analysed the epidemiology of serotype 3 causing IPD in Spain, during 2009-23, in different age groups. Molecular characterisation was performed by whole-genome sequencing. Host-pathogen interactions of the different lineages were evaluated in terms of interaction with lung epithelial cells, biofilm formation, and capsular polysaccharide production, using opsonophagocytosis assays and mouse models of pneumonia. We used Poisson regression models to compare incidence and chi-square test calculations to identify clonal variations across vaccine periods. FINDINGS: Genomic analyses confirmed the predominance of clade I-&#x3b1;/clonal complex (CC) 180 in Spain, which shows increased resistance to complement-mediated immunity and phagocytosis and enhanced potential to infect lung cells. In all isolates of this lineage, we observed a single amino acid substitution (166His&#x2192;Tyr) in the crucial virulence factor LytA, which increased its enzymatic activity. On evaluating the phagocytosis of mutants without LytA of the two major lineages of serotype 3 (CC180 and CC260), LytA was responsible for the increased phagocytosis-evasion pattern of clade I-&#x3b1;/CC180. Evaluation of individuals with IPD caused by different serotype 3 genotypes confirmed a significant (p<0&#xb7;05) association between cardiac and respiratory comorbidities and infection by sequence type 180/CC180, which showed the importance of CC180 in IPD. INTERPRETATION: Our findings confirm that PCV13 reduced IPD cases caused by the susceptible CC260 lineage until CC260 was replaced by the clade I-&#x3b1;/CC180 lineage, which has a higher potential to cause IPD and divert the host immune system. A key mutation on LytA protein was associated with this hypervirulent phenotype. Emerging lineages jeopardise the effectiveness of pneumococcal conjugate vaccines. FUNDING: Ministerio de Ciencia e Innovaci&#xf3;n, Instituto de Salud Carlos III, and PubMLST.

Animals↗

Erwinia papayae sp. nov., a pathogen of papaya (Carica papaya).

Bacterial canker of papaya (Carica papaya) emerged during the 1980s in different islands of the Caribbean. Nineteen strains of Gram-negative, rod-shaped, non-spore-forming bacteria isolated from papaya were compared to 38 reference and type strains of phytopathogenic Enterobacteriaceae and related bacteria. Phylogenetic analysis of 16S rRNA gene sequences showed that the papaya strains belonged to the genus Erwinia. The DNA G+C content of strain CFBP 5189T, 52.5 mol%, is in the range of the genus Erwinia. The 19 papaya strains were all pathogenic to papaya and were differentiated clearly from type or reference strains of phytopathogenic enterobacteria and related bacteria by phenotypic tests. The papaya strains constituted a discrete DNA hybridization group, indicating that they belonged to a unique genomic species. Thus, strains pathogenic to papaya belong to a novel species for which the name Erwinia papayae sp. nov. is proposed, with the type strain CFBP 5189T (=NCPPB 4294T).

Base Composition↗