type 3 secretion system
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Vaccines ◽  
2022 ◽  
Vol 10 (1) ◽  
pp. 111
Author(s):  
Everett Webster ◽  
Kyra W. Seiger ◽  
Susan B. Core ◽  
Amanda L. Collar ◽  
Hannah Knapp-Broas ◽  
...  

An effective vaccine against Chlamydia trachomatis is urgently needed as infection rates continue to rise and C. trachomatis causes reproductive morbidity. An obligate intracellular pathogen, C. trachomatis employs a type 3 secretion system (T3SS) for host cell entry. The tip of the injectosome is composed of the protein CT584, which represents a potential target for neutralization with vaccine-induced antibody. Here, we investigate the immunogenicity and efficacy of a vaccine made of CT584 epitopes coupled to a bacteriophage virus-like particle (VLP), a novel platform for Chlamydia vaccines modeled on the success of HPV vaccines. Female mice were immunized intramuscularly, challenged transcervically with C. trachomatis, and assessed for systemic and local antibody responses and bacterial burden in the upper genital tract. Immunization resulted in a 3-log increase in epitope-specific IgG in serum and uterine homogenates and in the detection of epitope-specific IgG in uterine lavage at low levels. By contrast, sera from women infected with C. trachomatis and virgin controls had similarly low titers to CT584 epitopes, suggesting these epitopes are not systemically immunogenic during natural infection but can be rendered immunogenic by the VLP platform. C. trachomatis burden in the upper genital tract of mice varied after active immunization, yet passive protection was achieved when immune sera were pre-incubated with C. trachomatis prior to inoculation into the genital tract. These data demonstrate the potential for antibody against the T3SS to contribute to protection against C. trachomatis and the value of VLPs as a novel platform for C. trachomatis vaccines.


2021 ◽  
Vol 17 (9) ◽  
pp. e1009932
Author(s):  
Brian C. Russo ◽  
Jeffrey K. Duncan-Lowey ◽  
Poyin Chen ◽  
Marcia B. Goldberg

Many bacterial pathogens require a type 3 secretion system (T3SS) to establish a niche. Host contact activates bacterial T3SS assembly of a translocon pore in the host plasma membrane. Following pore formation, the T3SS docks onto the translocon pore. Docking establishes a continuous passage that enables the translocation of virulence proteins, effectors, into the host cytosol. Here we investigate the contribution of actin polymerization to T3SS-mediated translocation. Using the T3SS model organism Shigella flexneri, we show that actin polymerization is required for assembling the translocon pore in an open conformation, thereby enabling effector translocation. Opening of the pore channel is associated with a conformational change to the pore, which is dependent upon actin polymerization and a coiled-coil domain in the pore protein IpaC. Analysis of an IpaC mutant that is defective in ruffle formation shows that actin polymerization-dependent pore opening is distinct from the previously described actin polymerization-dependent ruffles that are required for bacterial internalization. Moreover, actin polymerization is not required for other pore functions, including docking or pore protein insertion into the plasma membrane. Thus, activation of the T3SS is a multilayered process in which host signals are sensed by the translocon pore leading to the activation of effector translocation.


2021 ◽  
Vol 104 (2) ◽  
pp. 87-96
Author(s):  
E. I. Kyrova* ◽  
A. N. Ignatov

Plant pathogenic xanthomonads virulent to wheat, rye, barley, tomato, sunflower, and brassicas were isolated in Russia in 2001–2008. Physiological tests and multilocus sequence typing analysis confirmed their position within the Xanthomonas arboricola species. The obtained draft genome sequence of representative strain 3004 from barley plants, which is also virulent to sunflower, brassicas, and chestnut, demonstrated an absence of the Type 3 Secretion System T3SS and an evidence for the lateral gene transfer of some other virulence genes from distantly related bacteria. It was concluded that T4SS genes can be used as the target for group-specific PCR analysis of the emerging pathogen. It was proposed to use virD4, virB3, virB4, and virB9 genes to design a detection system. After preliminary experiments with classic PCR for the chosen genes, primers and TaqMan(R) probe were designed to specifically amplify a 121 bp fragment of the VirD4 gene. Amplification products were obtained for all target Xanthomonas arboricola strains and were not detected in other Xanthomonas species, or in other pathogenic or epiphytic bacteria occurring on these host plants. The assay readily detected Xanthomonas arboricola infection in diseased plants and from bacterial colonies isolated on semi-selective media, and was more sensitive and specific than traditional plating methods.


mBio ◽  
2021 ◽  
Author(s):  
Christina K. Lin ◽  
Daniel S. W. Lee ◽  
Saria McKeithen-Mead ◽  
Thierry Emonet ◽  
Barbara Kazmierczak

The expression of specific virulence traits is strongly associated with Pseudomonas aeruginosa ’s success in establishing acute infections but is thought to carry a cost for bacteria. Producing multiprotein secretion systems or motility organelles is metabolically expensive and can target a cell for recognition by innate immune system receptors that recognize structural components of the type 3 secretion system (T3SS) or flagellum.


2021 ◽  
Author(s):  
Brian C. Russo ◽  
Jeffrey K. Duncan-Lowey ◽  
Poyin Chen ◽  
Marcia B. Goldberg

Many bacterial pathogens require a type 3 secretion system (T3SS) to establish a niche. Host contact activates bacterial T3SS assembly of a translocon pore in the host plasma membrane. Following pore formation, the T3SS docks onto the translocon pore. Docking establishes a continuous passage that enables the translocation of virulence proteins, effectors, into the host cytosol. Here we investigate the contribution of actin polymerization to T3SS-mediated translocation. Using the T3SS model organism Shigella flexneri, we show that actin polymerization is required for assembling the translocon pore in an open conformation, thereby enabling effector translocation. Opening of the pore channel is associated with a conformational change to the pore, which is dependent upon actin polymerization and a coiled-coil domain in the pore protein IpaC. An IpaC mutant is identified that shows actin polymerization-dependent pore opening is distinct from the previously described actin polymerization-dependent ruffles that are required for bacterial internalization. Moreover, actin polymerization is not required for other pore functions, including docking or pore protein insertion into the plasma membrane. Thus, activation of the T3SS is a multilayered process in which host signals are sensed by the translocon pore leading to the activation of effector translocation.


2021 ◽  
Vol 118 (16) ◽  
pp. e2100678118
Author(s):  
Paulo J. P. L. Teixeira ◽  
Nicholas R. Colaianni ◽  
Theresa F. Law ◽  
Jonathan M. Conway ◽  
Sarah Gilbert ◽  
...  

Plants have an innate immune system to fight off potential invaders that is based on the perception of nonself or modified-self molecules. Microbe-associated molecular patterns (MAMPs) are evolutionarily conserved microbial molecules whose extracellular detection by specific cell surface receptors initiates an array of biochemical responses collectively known as MAMP-triggered immunity (MTI). Well-characterized MAMPs include chitin, peptidoglycan, and flg22, a 22-amino acid epitope found in the major building block of the bacterial flagellum, FliC. The importance of MAMP detection by the plant immune system is underscored by the large diversity of strategies used by pathogens to interfere with MTI and that failure to do so is often associated with loss of virulence. Yet, whether or how MTI functions beyond pathogenic interactions is not well understood. Here we demonstrate that a community of root commensal bacteria modulates a specific and evolutionarily conserved sector of the Arabidopsis immune system. We identify a set of robust, taxonomically diverse MTI suppressor strains that are efficient root colonizers and, notably, can enhance the colonization capacity of other tested commensal bacteria. We highlight the importance of extracellular strategies for MTI suppression by showing that the type 2, not the type 3, secretion system is required for the immunomodulatory activity of one robust MTI suppressor. Our findings reveal that root colonization by commensals is controlled by MTI, which, in turn, can be selectively modulated by specific members of a representative bacterial root microbiota.


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