scholarly article | Q13442814 |
P356 | DOI | 10.1099/MIC.0.2008/016998-0 |
P953 | full work available at URL | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2652038 |
P932 | PMC publication ID | 2652038 |
P698 | PubMed publication ID | 18599820 |
P5875 | ResearchGate publication ID | 5253232 |
P50 | author | Gordon Dougan | Q15994408 |
Robert A Kingsley | Q83608861 | ||
Stephen Baker | Q88026329 | ||
Timothy Perkins | Q95580300 | ||
P2093 | author name string | Anne Bishop | |
Deborah House | |||
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Coordinate regulation of Salmonella enterica serovar Typhimurium invasion of epithelial cells by the Arp2/3 complex and Rho GTPases | Q30310782 | ||
Vi polysaccharide of Salmonella typhi targets the prohibitin family of molecules in intestinal epithelial cells and suppresses early inflammatory responses | Q30448411 | ||
Osmolarity and growth phase overlap in regulation of Salmonella typhi adherence to and invasion of human intestinal cells | Q33603552 | ||
The ability of Salmonella to enter mammalian cells is affected by bacterial growth state | Q33616743 | ||
The flagellar sigma factor FliA (sigma(28)) regulates the expression of Salmonella genes associated with the centisome 63 type III secretion system | Q34004319 | ||
Salmonella enterica serovar typhi modulates cell surface expression of its receptor, the cystic fibrosis transmembrane conductance regulator, on the intestinal epithelium. | Q34185037 | ||
Rearrangements in the genome of the bacterium Salmonella typhi | Q34675351 | ||
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Characterization of the rcsA and rcsB genes from Salmonella typhi: rcsB through tviA is involved in regulation of Vi antigen synthesis | Q35604057 | ||
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Invasion by Salmonella typhimurium is affected by the direction of flagellar rotation | Q36946395 | ||
Distribution of the invA, -B, -C, and -D genes of Salmonella typhimurium among other Salmonella serovars: invA mutants of Salmonella typhi are deficient for entry into mammalian cells | Q36967459 | ||
Expression of Salmonella typhimurium genes required for invasion is regulated by changes in DNA supercoiling | Q36984314 | ||
Epithelial cell contact-induced alterations in Salmonella enterica serovar Typhi lipopolysaccharide are critical for bacterial internalization | Q38294997 | ||
Characterization of candidate live oral Salmonella typhi vaccine strains harboring defined mutations in aroA, aroC, and htrA. | Q39509638 | ||
Salmonella enterica serovar typhi uses type IVB pili to enter human intestinal epithelial cells | Q39515860 | ||
Salmonella enterica serovar Typhi possesses a unique repertoire of fimbrial gene sequences. | Q39519757 | ||
Multiple factors independently regulate hilA and invasion gene expression in Salmonella enterica serovar typhimurium | Q39538569 | ||
Differential early interactions between Salmonella enterica serovar Typhi and two other pathogenic Salmonella serovars with intestinal epithelial cells. | Q39571269 | ||
Composition, acquisition, and distribution of the Vi exopolysaccharide-encoding Salmonella enterica pathogenicity island SPI-7. | Q39853025 | ||
The Type IVB Pili of Salmonella enterica Serovar Typhi Bind to the Cystic Fibrosis Transmembrane Conductance Regulator | Q39912906 | ||
Intact motility as a Salmonella typhi invasion-related factor. | Q40158474 | ||
Double immunofluorescence microscopic technique for accurate differentiation of extracellularly and intracellularly located bacteria in cell culture. | Q40203819 | ||
Characterization of defined ompR mutants of Salmonella typhi: ompR is involved in the regulation of Vi polysaccharide expression | Q40375337 | ||
The Vi capsular antigen of Salmonella enterica serotype Typhi reduces Toll-like receptor-dependent interleukin-8 expression in the intestinal mucosa. | Q40419113 | ||
A flagellar gene fliZ regulates the expression of invasion genes and virulence phenotype in Salmonella enterica serovar Typhimurium | Q40609349 | ||
SipA, SopA, SopB, SopD, and SopE2 contribute to Salmonella enterica serotype typhimurium invasion of epithelial cells. | Q40735292 | ||
The GTPase Rac1 selectively regulates Salmonella invasion at the apical plasma membrane of polarized epithelial cells | Q40820195 | ||
Establishment of a real-time PCR-based approach for accurate quantification of bacterial RNA targets in water, using Salmonella as a model organism | Q40937906 | ||
Cancer immunotherapy based on killing of Salmonella-infected tumor cells | Q45073489 | ||
The Salmonella enterica serovar Typhi Vi capsule and self-association pili share controls on expression | Q50078935 | ||
Vi-Suppressed wild strain Salmonella typhi cultured in high osmolarity is hyperinvasive toward epithelial cells and destructive of Peyer's patches | Q50115994 | ||
The RcsB-RcsC regulatory system of Salmonella typhi differentially modulates the expression of invasion proteins, flagellin and Vi antigen in response to osmolarity | Q50129536 | ||
Vi-deficient and nonfimbriated mutants of Salmonella typhi agglutinate human blood type antigens and are hyperinvasive | Q50131356 | ||
Comparison of Salmonella typhi and Salmonella typhimurium invasion, intracellular growth and localization in cultured human epithelial cells | Q50146506 | ||
Evaluation of Salmonella typhimurium strains harbouring defined mutations in htrA and aroA in the murine salmonellosis model | Q50180559 | ||
P4510 | describes a project that uses | ImageJ | Q1659584 |
P433 | issue | Pt 7 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | Salmonella enterica | Q2264864 |
P1104 | number of pages | 13 | |
P304 | page(s) | 1914-1926 | |
P577 | publication date | 2008-07-01 | |
P1433 | published in | Microbiology | Q11339587 |
P1476 | title | Interaction of Salmonella enterica serovar Typhi with cultured epithelial cells: roles of surface structures in adhesion and invasion | |
P478 | volume | 154 |
Q35920960 | A Phylogenetic and Phenotypic Analysis of Salmonella enterica Serovar Weltevreden, an Emerging Agent of Diarrheal Disease in Tropical Regions |
Q40187306 | An AIL family protein promotes type three secretion system-1-independent invasion and pathogenesis of Salmonella enterica serovar Typhi |
Q33785722 | Analysis of interactions of Salmonella type three secretion mutants with 3-D intestinal epithelial cells |
Q40962273 | Attenuation of in vitro host-pathogen interactions in quinolone-resistant Salmonella Typhi mutants. |
Q37539812 | Autophagy at the gut interface: mucosal responses to stress and the consequences for inflammatory bowel diseases |
Q34751198 | Comparative genomics of Salmonella enterica serovars Derby and Mbandaka, two prevalent serovars associated with different livestock species in the UK |
Q47305121 | Comparison of Salmonella enterica serovars Typhi and Typhimurium reveals typhoidal-specific responses to bile |
Q64099675 | Controlling Epithelial Polarity: A Human Enteroid Model for Host-Pathogen Interactions |
Q36728030 | Differences in Host Cell Invasion and Salmonella Pathogenicity Island 1 Expression between Salmonella enterica Serovar Paratyphi A and Nontyphoidal S. Typhimurium |
Q46360407 | Effects of residual antibiotics in groundwater on Salmonella typhimurium: changes in antibiotic resistance, in vivo and in vitro pathogenicity. |
Q36911282 | Evaluation of regulated delayed attenuation strategies for Salmonella enterica serovar Typhi vaccine vectors in neonatal and infant mice |
Q37379658 | Fitness benefits in fluoroquinolone-resistant Salmonella Typhi in the absence of antimicrobial pressure |
Q50282354 | Functional Analysis of the Chaperone-Usher Fimbrial Gene Clusters of Salmonella enterica serovar Typhi |
Q37035982 | Gallbladder epithelium as a niche for chronic Salmonella carriage |
Q64969344 | Host-pathogen interactions in typhoid fever: the model is the message. |
Q37846872 | Immunity to salmonellosis |
Q33766209 | Induction of Salmonella pathogenicity island 1 under different growth conditions can affect Salmonella-host cell interactions in vitro |
Q35443593 | Non-typhoidal Salmonella Typhimurium ST313 isolates that cause bacteremia in humans stimulate less inflammasome activation than ST19 isolates associated with gastroenteritis |
Q39676097 | Protection of epithelial cells from Salmonella enterica serovar Enteritidis invasion by antibodies against the SPI-1 type III secretion system |
Q27011946 | Salmonella as a vaccine delivery vehicle |
Q31172548 | Salmonella enterica Serovar Typhi conceals the invasion-associated type three secretion system from the innate immune system by gene regulation |
Q41976795 | Salmonella enterica serovar enteritidis pathogenicity island 1 is not essential for but facilitates rapid systemic spread in chickens. |
Q39718784 | Salmonella enterica serovar typhimurium invades fibroblasts by multiple routes differing from the entry into epithelial cells. |
Q35546962 | The Hd, Hj, and Hz66 flagella variants of Salmonella enterica serovar Typhi modify host responses and cellular interactions |
Q39809027 | The TviA auxiliary protein renders the Salmonella enterica serotype Typhi RcsB regulon responsive to changes in osmolarity |
Q41929841 | The Typhi colonization factor (Tcf) is encoded by multiple non-typhoidal Salmonella serovars but exhibits a varying expression profile and interchanging contribution to intestinal colonization |
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Q52764586 | Three-dimensional organotypic co-culture model of intestinal epithelial cells and macrophages to study Salmonella enterica colonization patterns. |
Q60048625 | Virulotyping of Salmonella enterica serovar Typhi isolates from Pakistan: Absence of complete SPI-10 in Vi negative isolates |
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