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result(s) for
"Typhoid Fever - genetics"
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The phylogeography and incidence of multi-drug resistant typhoid fever in sub-Saharan Africa
by
Owusu-Dabo, Ellis
,
Argimon, Silvia
,
Jaeger, Anna
in
631/326/41/2530
,
631/326/421
,
692/308/174
2018
There is paucity of data regarding the geographical distribution, incidence, and phylogenetics of multi-drug resistant (MDR)
Salmonella
Typhi in sub-Saharan Africa. Here we present a phylogenetic reconstruction of whole genome sequenced 249 contemporaneous
S
. Typhi isolated between 2008-2015 in 11 sub-Saharan African countries, in context of the 2,057 global
S
. Typhi genomic framework. Despite the broad genetic diversity, the majority of organisms (225/249; 90%) belong to only three genotypes, 4.3.1 (H58) (99/249; 40%), 3.1.1 (97/249; 39%), and 2.3.2 (29/249; 12%). Genotypes 4.3.1 and 3.1.1 are confined within East and West Africa, respectively. MDR phenotype is found in over 50% of organisms restricted within these dominant genotypes. High incidences of MDR
S
. Typhi are calculated in locations with a high burden of typhoid, specifically in children aged <15 years. Antimicrobial stewardship, MDR surveillance, and the introduction of typhoid conjugate vaccines will be critical for the control of MDR typhoid in Africa.
Typhoid fever is caused by the bacterium
Salmonella
Typhi. Here, Park et al. analyse the genomes of 249
S
. Typhi isolates from 11 sub-Saharan African countries, identifying genes and plasmids associated with antibiotic resistance and showing that multi-drug resistance is highly pervasive in sub-Saharan Africa.
Journal Article
Evaluation of mdh, dld, tcfA, and folE gene markers for detection of enteric fever using real-time PCR
2026
Enteric fever, a systemic infection caused by
Salmonella enterica
serovars Typhi and Paratyphi, continue to pose a substantial public health concern, with an estimated 20 million cases annually. It is transmitted via the consumption of contaminated food or water and is a substantial public health issue in low- and middle-income nations, resulting in extended fever, stomach pain, and severe sequelae if not addressed. The clinical diagnosis of enteric fever is complicated by nonspecific symptoms, the low sensitivity and specificity of blood cultures and serological methods, and the restricted application of qPCR in routine diagnostics, partly due to the insufficient testing or validation of numerous gene targets across various
Salmonella
strains. The study was conducted to evaluate
mdh
,
dld
,
tcfA
, and
folE
gene markers for detection of enteric fever causing typhoidal
Salmonella
species using real-time PCR. Primers specific to the
mdh
,
dld
,
tcfA
, and
folE
genes were developed and assessed utilizing Primer3Plus, an oligo calculator, and NCBI BLAST. Conventional PCR with optimized thermal profiles was employed for amplification, succeeded by SYBR Green-based real-time PCR and gel electrophoresis to verify the size and specificity of the amplicons. Sanger sequencing of specific
folE
amplicons confirmed their identity and revealed conserved sequences among
S. Typhi
and
S. Paratyphi
. The
mdh
gene demonstrated significant genus-level specificity, whereas
dld
and
tcfA
exhibited diagnostic potential for typhoidal strains. Initial in-silico predictions suggested that
folE
was specific to
S. Typhi
, but it was also experimentally identified in
S. Paratyphi
isolates. Sanger sequencing validated significant sequence similarity and a synonymous SNP, demonstrating functional conservation of
folE
, which encodes GTP cyclohydrolase I, among typhoidal
Salmonella
. The
folE
gene sequences for S. Typhi and S. Paratyphi have been submitted to GenBank with accession numbers PV700621 and PV700622. The assay demonstrated a strong correlation with biochemical findings; however, its restricted capacity to differentiate between typhoidal serovars underscores the necessity for more specific molecular markers to enhance diagnostic accuracy, inform targeted therapy, and facilitate comprehensive epidemiological surveillance.
Journal Article
Gallbladder carriage generates genetic variation and genome degradation in Salmonella Typhi
by
Karkey, Abhilasha
,
Carey, Megan
,
Nguyen Thi Nguyen, To
in
Adaptation, Biological
,
Adult
,
Aged
2020
Despite recent advances in typhoid fever control, asymptomatic carriage of Salmonella Typhi in the gallbladder remains poorly understood. Aiming to understand if S. Typhi becomes genetically adapted for long-term colonisation in the gallbladder, we performed whole genome sequencing on a collection of S. Typhi isolated from the gallbladders of typhoid carriers. These sequences were compared to contemporaneously sampled sequences from organisms isolated from the blood of acute patients within the same population. We found that S. Typhi carriage was not restricted to any particular genotype or conformation of antimicrobial resistance genes, but was largely reflective of S. Typhi circulating in the general population. However, gallbladder isolates showed a higher genetic variability than acute isolates, with median pairwise SNP distances of 21 and 13 SNPs (p = 2.8x10-9), respectively. Within gallbladder isolates of the predominant H58 genotype, variation was associated with a higher prevalence of nonsense mutations. Notably, gallbladder isolates displayed a higher frequency of non-synonymous mutations in genes encoding hypothetical proteins, membrane lipoproteins, transport/binding proteins, surface antigens, and carbohydrate degradation. Specifically, we identified several gallbladder-specific non-synonymous mutations involved in LPS synthesis and modification, with some isolates lacking the Vi capsular polysaccharide vaccine target due to the 134Kb deletion of SPI-7. S. Typhi is under strong selective pressure in the human gallbladder, which may be reflected phylogenetically by long terminal branches that may distinguish organisms from chronic and acute infections. Our work shows that selective pressures asserted by the hostile environment of the human gallbladder generate new antigenic variants and raises questions regarding the role of carriage in the epidemiology of typhoid fever.
Journal Article
Unique features in the intracellular transport of typhoid toxin revealed by a genome-wide screen
by
Jin, Sheng Chih
,
Chang, Shu-Jung
,
Galán, Jorge E.
in
Antitoxins
,
Bacterial Proteins - antagonists & inhibitors
,
Bacterial Proteins - genetics
2019
Typhoid toxin is a virulence factor for Salmonella Typhi and Paratyphi, the cause of typhoid fever in humans. This toxin has a unique architecture in that its pentameric B subunit, made of PltB, is linked to two enzymatic A subunits, the ADP ribosyl transferase PltA and the deoxyribonuclease CdtB. Typhoid toxin is uniquely adapted to humans, recognizing surface glycoprotein sialoglycans terminated in acetyl neuraminic acid, which are preferentially expressed by human cells. The transport pathway to its cellular targets followed by typhoid toxin after receptor binding is currently unknown. Through a genome-wide CRISPR/Cas9-mediated screen we have characterized the mechanisms by which typhoid toxin is transported within human cells. We found that typhoid toxin hijacks specific elements of the retrograde transport and endoplasmic reticulum-associated degradation machineries to reach its subcellular destination within target cells. Our study reveals unique and common features in the transport mechanisms of bacterial toxins that could serve as the bases for the development of novel anti-toxin therapeutic strategies.
Journal Article
Antimicrobial Resistance, Virulence Profiles and Molecular Subtypes of Salmonella enterica Serovars Typhi and Paratyphi A Blood Isolates from Kolkata, India during 2009-2013
by
Ray, Ujjwayini
,
Roy, Indranil
,
Paul, Dilip Kumar
in
Ampicillin
,
Antibiotics
,
Antiinfectives and antibacterials
2014
Enteric fever, caused by Salmonella enterica, remains an unresolved public health problem in India and antimicrobial therapy is the main mode of treatment. The objective of this study was to characterize the Salmonella enterica isolates from Kolkata with respect to their antimicrobial resistance (AMR), virulence profiles and molecular subtypes. Salmonella enterica blood isolates were collected from clinically suspected enteric fever patients attending various hospitals in Kolkata, India from January 2009 to June 2013 and were tested for AMR profiles by standard protocols; for resistance gene transfer by conjugation; for resistance and virulence genes profiles by PCR; and for molecular subtypes by Pulsed Field Gel Electrophoresis (PFGE). A total of 77 Salmonella enterica serovar Typhi (S. Typhi) and 25 Salmonella enterica serovar Paratyphi A (S. Paratyphi A) from Kolkata were included in this study. Although multidrug resistance (resistance to chloramphenicol, ampicillin, co-trimoxazole) was decreasing in S. Typhi (18.2%) and absent in S. Paratyphi A, increased resistance to fluoroquinolone, the current drug of choice, caused growing concern for typhoid treatment. A single, non-conjugative non-IncHI1 plasmid of 180 kb was found in 71.4% multidrug resistant (MDR) S. Typhi; the remaining 28.6% isolates were without plasmid. Various AMR markers (blaTEM-1, catA, sul1, sul2, dfrA15, strA-strB) and class 1 integron with dfrA7 gene were detected in MDR S. Typhi by PCR and sequencing. Most of the study isolates were likely to be virulent due to the presence of virulence markers. Major diversity was not noticed among S. Typhi and S. Paratyphi A from Kolkata by PFGE. The observed association between AMR profiles and S. Typhi pulsotypes might be useful in controlling the spread of the organism by appropriate intervention. The study reiterated the importance of continuous monitoring of AMR and molecular subtypes of Salmonella isolates from endemic regions for better understanding of the disease epidemiology.
Journal Article
Variation at HLA-DRB1 is associated with resistance to enteric fever
by
Hien, Tran Tinh
,
Tram, Trinh Thi Bich
,
Dolecek, Christiane
in
45/43
,
631/208/205/2138
,
692/699/255/1318
2014
Sarah Dunstan, Chiea Chuen Khor and colleagues identify common variants in the
HLA-DRB1
region associated with resistance to enteric fever. Individuals carrying the protective variants exhibit roughly five-fold higher resistance against developing this life-threatening infectious disease.
Enteric fever affects more than 25 million people annually and results from systemic infection with
Salmonella enterica
serovar Typhi or Paratyphi pathovars A, B or C
1
. We conducted a genome-wide association study of 432 individuals with blood culture–confirmed enteric fever and 2,011 controls from Vietnam. We observed strong association at rs7765379 (odds ratio (OR) for the minor allele = 0.18,
P
= 4.5 × 10
−10
), a marker mapping to the HLA class II region, in proximity to
HLA
-
DQB1
and
HLA
-
DRB1.
We replicated this association in 595 enteric fever cases and 386 controls from Nepal and also in a second independent collection of 151 cases and 668 controls from Vietnam. Imputation-based fine-mapping across the extended MHC region showed that the classical
HLA-DRB1*04:05
allele (OR = 0.14,
P
= 2.60 × 10
−11
) could entirely explain the association at rs7765379, thus implicating
HLA-DRB1
as a major contributor to resistance against enteric fever, presumably through antigen presentation.
Journal Article
Azithromycin resistance mechanisms in typhoidal salmonellae in India: A 25 years analysis
2019
Background & objectives: Azithromycin has been in use as an alternate treatment option for enteric fever even when the guidelines on the susceptibility testing were not available. There is lack of data on susceptibility and mechanisms of resistance of azithromycin in Salmonella Typhi and S. Paratyphi A. The aim of the present study was to determine the azithromycin susceptibility and resistance mechanisms in typhoidal salmonellae isolates archived in a tertiary care centre in north India for a period of 25 years.
Methods: Azithromycin susceptibility was determined in 602 isolates of S. Typhi (469) and S. Paratyphi A (133) available as archived collection isolated during 1993 to 2016, by disc diffusion and E-test method.PCR was done for ereA, ermA, ermB, ermC, mefA, mphA and msrA genes from plasmid and genomic DNA and sequencing was done to detect mutations in acrR, rplD and rplV genes.
Results: Azithromycin susceptibility was seen in 437/469 [93.2%; 95% confidence interval (CI), 90.5 to 95.1%] isolates of S. Typhi. Amongst 133 isolates of S. Paratyphi A studied, minimum inhibitory concentration (MIC) of ≤16 mg/l was found in 102 (76.7%; 95% CI, 68.8 to 83.0). MIC value ranged between 1.5 and 32 mg/l with an increasing trend in MIC50and MIC90with time. Mutations were found in acrR in one and rplV in two isolates of S. Typhi. No acquired mechanism for macrolide resistance was found.
Interpretation & conclusions: Azithromycin could be considered as a promising agent against typhoid fever on the basis of MIC distribution in India. However, due to emergence of resistance in some parts, there is a need for continuous surveillance of antimicrobial susceptibility and resistance mechanisms. There is also a need to determine the breakpoints for
S. Paratyphi A.
Journal Article
B Cells Control Mucosal-Associated Invariant T Cell Responses to Salmonella enterica Serovar Typhi Infection Through the CD85j HLA-G Receptor
by
Salerno-Gonçalves, Rosângela
,
Luo, David
,
Sztein, Marcelo B.
in
Adult
,
Antibodies
,
Antigen presentation
2021
Mucosal-associated invariant T (MAIT) cells are an innate-like population of T cells that display a TCR Vα7.2+ CD161+ phenotype and are restricted by the nonclassical MHC-related molecule 1 (MR1). Although B cells control MAIT cell development and function, little is known about the mechanisms underlying their interaction(s). Here, we report, for the first time, that during Salmonella enterica serovar Typhi ( S . Typhi) infection, HLA-G expression on B cells downregulates IFN-γ production by MAIT cells. In contrast, blocking HLA-G expression on S . Typhi-infected B cells increases IFN-γ production by MAIT cells. After interacting with MAIT cells, kinetic studies show that B cells upregulate HLA-G expression and downregulate the inhibitory HLA-G receptor CD85j on MAIT cells resulting in their loss. These results provide a new role for HLA-G as a negative feedback loop by which B cells control MAIT cell responses to antigens.
Journal Article
Salmonella enterica Serovar Typhi Conceals the Invasion-Associated Type Three Secretion System from the Innate Immune System by Gene Regulation
by
Alves, Geraldo E. S.
,
Winter, Maria G.
,
Poon, Victor
in
Animals
,
B cells
,
Bacterial Secretion Systems - genetics
2014
Delivery of microbial products into the mammalian cell cytosol by bacterial secretion systems is a strong stimulus for triggering pro-inflammatory host responses. Here we show that Salmonella enterica serovar Typhi (S. Typhi), the causative agent of typhoid fever, tightly regulates expression of the invasion-associated type III secretion system (T3SS-1) and thus fails to activate these innate immune signaling pathways. The S. Typhi regulatory protein TviA rapidly repressed T3SS-1 expression, thereby preventing RAC1-dependent, RIP2-dependent activation of NF-κB in epithelial cells. Heterologous expression of TviA in S. enterica serovar Typhimurium (S. Typhimurium) suppressed T3SS-1-dependent inflammatory responses generated early after infection in animal models of gastroenteritis. These results suggest that S. Typhi reduces intestinal inflammation by limiting the induction of pathogen-induced processes through regulation of virulence gene expression.
Journal Article
Whole Exome Sequence Analysis for Inborn Errors of IL-12/IFN-γ Axis in Patient with Recurrent Typhoid Fever
2023
Background. The IL-12/IFN-γ axis pathways play a vital role in the control of intracellular pathogens such as Salmonella typhi. Objective. The study is aimed at using whole exome sequencing (WES) to screen out genetic defects in IL-12/IFN-γ axis in patients with recurrent typhoid fever. Methods. WES using next-generation sequencing was performed on a single patient diagnosed with recurrent typhoid fever. Following alignment and variant calling, exomes were screened for mutations in 25 genes that are involved in the IL-12/IFN-γ axis pathway. Each variant was assessed by using various bioinformatics mutational analysis tools such as SIFT, Polyphen2, LRT, MutationTaster, and MutationAssessor. Results. Out of 25 possible variations in the IL-12/IFN-γ axis genes, only 2 probable disease-causing mutations were identified. These variations were rare and include mutations in IL23R and ZNFX I. Other pathogenic mutations were found, but they were not considered likely to cause disease based on various mutation predictors. Conclusion. Applying WES to the patient with recurrent typhoid fever detects variants that are not much important as other genes in the IL-12/IFN-γ axis. Results of the current study suggest that a large population sizes would be needed to examine the functional relevance of IL-12/IFN-γ axis genes with recurrent typhoid fever.
Journal Article