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N6-methyladenine DNA modification modulates pathogen virulence in nematodes.

Understanding the global regulatory mechanisms that control pathogen virulence gene expression is essential for elucidating the molecular basis of pathogenicity. N6-methyladenine (6 mA) plays a crucial role in regulating gene expression in response to various environmental stresses; however, its role in pathogen virulence remains largely unexplored. Here, we report the widespread occurrence of 6 mA across 17 nematode isolates and map its genomic landscape in six notorious agriculturally important pathogen root-knot nematodes (RKNs). We demonstrated that 6 mA is characterized by a conserved GAG motif across nematodes, but exhibits species-specific distribution patterns and distinct effects on gene expression. In particular, its enrichment in transposable elements (TEs) differs between polyploid and diploid nematodes, suggesting lineage-specific epigenetic regulation potentially associated with polyploidy. We further identified two functional 6 mA demethylases, MiNMAD-1 and MiNMAD-2, and confirmed their catalytic activity and active sites. Host-induced gene silencing (HIGS) of minmad-1 significantly increased plant resistance to three polyploid RKN species. A detailed functional analysis revealed that minmad-1 knockdown broadly affected gene expression during the parasitic stage, including genes involved in virulence, thereby reducing nematode infectivity. Together, our findings suggest 6 mA demethylase as a key epigenetic regulator of RKNs' virulence, providing new insights into nematode biology and offering promising targets for the development of sustainable control strategies.

Animals

Human disease and the evolution of pathogen virulence.

Theorists who make a priori generalizations about the tendency of host-parasite systems to co-evolve toward commensalism or increased parasitism err because they do not consider the empirical relation between host pathology and pathogen transmission. Natural selection should favor increased pathogen virulence in diseases where host pathology contributes to pathogen transmission and favor decreased virulence when pathology impedes transmission. This paper classifies important human diseases according to the contribution human pathology makes to pathogen transmission.

Animals

Genetic mapping of lymphocytic choriomeningitis virus pathogenicity: virulence in guinea pigs is associated with the L RNA segment.

The Armstrong CA 1371 (ARM) and WE strains of lymphocytic choriomeningitis virus (LCMV) differ in the ability to produce disease in adult guinea pigs. Infection with the ARM strain is not lethal, even at high virus doses (greater than 10,000 PFU), whereas the WE strain causes 100% mortality even at low doses (less than 10 PFU). To determine the genetic basis of this virulence, intertypic reassortants were made between the ARM and WE strains of LCMV. The two reassortants with the genotypes WE/ARM (L segment of WE and S segment of ARM) and ARM/WE (L segment of ARM and S segment of WE) were tested for their pathogenicity in guinea pigs. The ARM/WE reassortant was avirulent like the ARM/ARM parental strain. Minimal viral replication was observed in organs of guinea pigs inoculated with 10(2) or 10(5) PFU of ARM/ARM or ARM/WE, and all animals survived. In contrast, the WE/ARM reassortant was highly virulent like the WE/WE parental strain and killed all of the infected animals. High levels of viral replication were observed in guinea pigs infected with the latter two strains. In contrast to these in vivo observations, both the parental strains and the ARM/WE or WE/ARM reassortants had similar growth potential in cultured guinea pig fibroblasts. Thus, the L RNA segment of LCMV WE is important for viral replication in vivo and is associated with fatal acute disease after infection of adult guinea pigs.

Animals

A competitive exclusion principle for pathogen virulence.

For a modified Anderson and May model of host parasite dynamics it is shown that infections of different levels of virulence die out asymptotically except those that optimize the basic reproductive rate of the causative parasite. The result holds under the assumption that infection with one strain of parasite precludes additional infections with other strains. Technically, the model includes an environmental carrying capacity for the host. A threshold condition is derived which decides whether or not the parasites persist in the host population.

Animals

Infections in the diabetic patient: the role of immune dysfunction and pathogen virulence factors.

It is a common belief that certain infections occur more frequently in patients with diabetes mellitus than in nondiabetics. In some infections, poor diabetic control is strongly linked. Diabetics comprise 50%-70% of all patients who undergo nontraumatic foot or leg amputations, the overwhelming majority of which are necessitated by infection and necrosis of soft tissue and/or bone. Imputed host defense abnormalities include defective immune responses (e.g., white blood cell function, granuloma formation), peripheral neuropathies, impaired distal arterial supply, and problems in "control" of the diabetic state eventuating in catabolic metabolism. Increased bacterial translocation as a source of the causative bacteria is another potential entry site. Possible virulence factors of the invading organisms include polymicrobial synergism, glycocalyx formation, and inoculum size. Attention to the principles of preventive education, vascular evaluation, diabetes management, and adequate debridement maximize healing potential.

Communicable Diseases

Infections from biomaterials and implants: a race for the surface.

Microorganisms in nature and disease are dependent on substratum attachment for optimal growth and development. Similarly, implanted biomaterials tend to potentiate bacteria on their surfaces so that normally friendly special or opportunistic organisms become virulent pathogens. Virulence is also enhanced because both bacteria and biomaterials interfere with host defense mechanisms. Infections centered on biomaterials are most difficult to eliminate and usually require removal of the device. The consequences of device failure are catastrophic and costly. It is the specific nature of the biomaterial surface, which is indirectly a reflection of bulk features, that causes and directs the changes in bacterial behavior which result in virulence. Features of organisms and materials and interactions responsible for these phenomena are reviewed.

Bacterial Adhesion

Pathogenicity and virulence: another view.

The concepts of pathogenicity and virulence have governed our perception of microbial harmfulness since the time of Pasteur and Koch. These concepts resulted in the recognition and identification of numerous etiological agents and provided natural and synthetic agents effective in therapy and prevention of diseases. However, Koch's postulates--the premier product of this view--place the onus of harmfulness solely on the microbial world. Our recent experiences with polymicrobic and nosocomial infections, legionellosis, and acquired immunodeficiency syndrome point to the host as the major determinant of disease. The principles of parasitism, enunciated by Theobold Smith, approximate more accurately the disturbances of the host-parasite equilibrium we designate as infection. Many complex attributes of microbial anatomy and physiology have been obscured by our dependency on the pure-culture technique. For example, bacterial attachment organelles and the production of exopolysaccharides enable microorganisms to interact with mammalian glycocalyces and specific receptors. In addition, selection, through the use of therapeutic agents, aids in the progression of environmental organisms to members of the intimate human biosphere, with the potential to complicate the recovery of patients. These factors emphasize further the pivotal significance of host reactions in infections. Parasitism, in its negative aspects, explains the emergence of "new" infections that involve harm to more than host organs and cells: we may encounter subtler infections that reveal parasitic and host cell nucleic acid interactions in a form of genomic parasitism.

Animals

Phospholipase activity and virulence of pathogenic leptospirae.

Results of investigation of phospholipase activity and virulence of pathogenic leptospirae on a solid nutrient medium using the method of agar layers with 1% of L-lecithin in the medium of the second layer are presented. It has been demonstrated that only one zone of translucent medium is formed around the colonies of pathological leptospirae, which is obviously due to the release of phospholipase A. The examined virulent strains of pathogenic leptospirae were found to exhibit greater phospholipase activity (width of the translucent zones being 5.0 +/- 0.34 mm) than the avirulent strains (width of the zones being 1.5 +/- 0.11 mm).

Agar

Magnaporthe grisea genes for pathogenicity and virulence identified through a series of backcrosses.

We have identified genes for pathogenicity toward rice (Oryza sativa) and genes for virulence toward specific rice cultivars in the plant pathogenic fungus Magnaporthe grisea. A genetic cross was conducted between the weeping lovegrass (Eragrostis curvula) pathogen 4091-5-8, a highly fertile, hermaphroditic laboratory strain, and the rice pathogen O-135, a poorly fertile, female-sterile field isolate that infects weeping lovegrass as well as rice. A six-generation backcrossing scheme was then undertaken with the rice pathogen as the recurrent parent. One goal of these crosses was to generate rice pathogenic progeny with the high fertility characteristic of strain 4091-5-8, which would permit rigorous genetic analysis of rice pathogens. Therefore, progeny strains to be used as parents for backcross generations were chosen only on the basis of fertility. The ratios of pathogenic to nonpathogenic (and virulent to avirulent) progeny through the backcross generations suggested that the starting parent strains differ in two types of genes that control the ability to infect rice. First, they differ by polygenic factors that determine the extent of lesion development achieved by those progeny that infect rice. These genes do not appear to play a role in infection of weeping lovegrass because both parents and all progeny infect weeping lovegrass. Second, the parents differ by simple Mendelian determinants, "avirulence genes," that govern virulence toward specific rice cultivars in all-or-none fashion. Several crosses confirm the segregation of three unlinked avirulence genes, Avr 1-CO39, Avr 1-M201 and Avr1-YAMO, alleles of which determine avirulence on rice cultivars CO39, M201, and Yashiro-mochi, respectively. Interestingly, avirulence alleles of Avr1-CO39, Avr1-M201 and Avr1-YAMO were inherited from the parent strain 4091-5-8, which is a nonpathogen of rice. Middle repetitive DNA sequences ("MGR sequences"), present in approximately 40-50 copies in the genome of the rice pathogen parent, and in very low copy number in the genome of the nonpathogen of rice, were used as physical markers to monitor restoration of the rice pathogen genetic background during introgression of fertility. The introgression of highest levels of fertility into the most successful rice pathogen progeny was incomplete by the sixth generation, perhaps a consequence of genetic linkage between genes for fertility and genes for rice pathogenicity. One chromosomal DNA segment with MGR sequence homology appeared to be linked to the gene Avr1-CO39. Finally, many of the crosses described in this paper exhibited a characteristic common to many crosses involving M. grisea rice pathogen field isolates.(ABSTRACT TRUNCATED AT 400 WORDS)

Ascomycota

Pathogenicity and virulence of wild-type and melanin-deficient Wangiella dermatitidis.

Wild-type, dematiaceous Wangiella dermatitidis (DMD 368) and melanin-deficient mutant (Mel 3) strains derived therefrom were compared for pathogenic and virulent effects in Swiss albino mice following intravenous infection. Parameters examined were mouse survival and central nervous system signs of infection, time-course cultures of fungus from brains, lungs, livers, spleens and kidneys, and histopathology of brains. Over a range of concentrations, DMD 368 produced 100% mortality while one Mel 3 strain, DMD 369, produced no mortality by 21 days after inoculation. However, in chronic infections with DMD 369, mice developed ataxia and torticollis. These signs of disease were indistinguishable from those produced by low concentrations of DMD 368. The brain was the most severely affected organ where both DMD 368 and 369 grew exponentially. Histological responses to the two strains appeared to be indistinguishable. However, the mutant appeared not to form the invasive hyphal forms of growth associated with the acute, fatal infections caused by the wild type. Thus, although the absence of melanin was associated with decreased mortality in mice, the chronic neurological signs of mouse phaeohyphomycosis appeared to be unrelated to melanin.

Animals

Virulence and pathogenicity of Helicobacter pylori.

H. pylori is a highly virulent organism as evidenced by its low infective dose and widespread high prevalence in human populations. Its virulence is achieved through its ability to survive in a moist environment and its massive urease production which allows it to survive in the acidic gastric juice long enough to colonize the gastric mucus. Gastric colonization is facilitated by cell wall associated lectins which permit the bacterium to bind to gastric mucus and the gastric epithelial cell. Once in this location, H. pylori produces several enzymes which may harm the gastric epithelium, particularly urease (through ammonia generation) and phospholipases A and C. H. pylori also weakens the gastric mucous layer by digesting its glycoproteins and lipids, making the mucus less hydrophobic and more water soluble. Helicobacter pylori attracts phagocytic cells, inducing both acute and chronic inflammation as well as an antibody response. Persistence of H. pylori in the mucosa may be enhanced by its cytotoxin and catalase production, by which it survives after phagocytosis by neutrophils.

Bacterial Toxins

Virulence of pathogenic and non-pathogenic zymodemes of Entamoeba histolytica (Indian strains) in guinea-pigs.

Guinea-pigs were inoculated with Entamoeba histolytica strains isolated from cases of amoebic liver abscess, amoebic dysentery and asymptomatic cyst passers and the strains were classified in zymodemes by isoenzyme electrophoresis. It was observed that certain non-pathogenic zymodemes were potentially pathogenic for the guinea-pigs. The relationship of zymodemes and virulence in laboratory animals is discussed.

Amebiasis