Nontoxigenic Vibrio cholerae 01 Intestinal Pathology in Adult Mice

1995 ◽  
Vol 283 (1) ◽  
pp. 43-48 ◽  
Author(s):  
Munshi Moyenuddin ◽  
Raul Weiss ◽  
I. Kaye Wachsmuth ◽  
Donald G. Ahearn
2009 ◽  
Vol 77 (8) ◽  
pp. 3475-3484 ◽  
Author(s):  
E. Nygren ◽  
B.-L. Li ◽  
J. Holmgren ◽  
S. R. Attridge

ABSTRACT We describe here a new animal model that offers the prospect of using conventional adult mice for direct evaluation of the protective potential of new cholera vaccines. Pretreatment of adult mice with oral streptomycin allowed intestinal colonization by streptomycin-resistant Vibrio cholerae strains of either the O1 or the O139 serogroup. Bacteria were recovered in greatest numbers from the cecum and large intestine, but recoveries from all regions of the gut correlated significantly with bacterial excretion in fresh fecal pellets, which thus provides a convenient indicator of the extent and duration of gut colonization. Mice immunized mucosally or systemically with viable or inactivated V. cholerae were shown to be comparatively refractory to colonization after challenge with the immunizing strain. Several variables were examined to optimize the model, the most significant being the size of the challenge inoculum; surprisingly, a smaller challenge dose resulted in more consistent and sustained colonization. Studies with mutant strains unable to produce cholera toxin or toxin-coregulated pili revealed that neither factor contributed significantly to colonization potential. Protection against V. cholerae challenge was shown to be serogroup restricted, and significant inverse correlations were detected between serum and intestinal anti-lipopolysaccharide antibody responses and the levels of excretion of challenge organisms.


2016 ◽  
Vol 66 (5) ◽  
pp. 479 ◽  
Author(s):  
Pramod Kumar ◽  
Jayprakash Yadav ◽  
Meenu Jain ◽  
Preeti Yadav ◽  
A.K. Goel ◽  
...  

In recent years, emerging trend of antibiotic resistance in Vibrio cholerae associated with cholera epidemics is a matter of serious concern for the management of the disease. Indiscriminate use of antibiotics generally results in selection of antibiotic resistant strains. Introduction of newer antibiotics is a challenging task for the researchers as bacteria soon attain resistance. Therefore, identifying natural compounds of medicinal importance for control of cholera would be the best alternative. Garlic (Allium sativum) was recognised for many centuries in early Chinese, Egyptian and Indian civilisations as an herbal or traditional medicine. In present study, garlic was selected for screening of antimicrobial efficacy against V. cholerae. A total of 55 V. cholerae strains isolated from various outbreaks/epidemics were subjected to antimicrobial testing as per CLSI, USA 2010 guidelines. Antimicrobial screening of garlic extract was performed against all the multidrug resistant strains of V. cholerae. The garlic extracts showed antibacterial activity against all the V. cholerae strains tested, irrespective of their origin, multidrug resistance and virulence. Antibacterial efficacy of garlic on V. cholerae was also evident from in vivo study on sealed adult mice model. Thus, the Garlic extract harnesses the potential to control infection of multidrug resistant V. cholerae, especially in outbreak like situations in remote and under developed areas where drug supply itself is a challenge


1992 ◽  
Vol 12 (6) ◽  
pp. 451-458 ◽  
Author(s):  
Munshi Moyenuddin ◽  
Kaye Wachsmuth ◽  
Stephen H. Richardson ◽  
Warren L. Cook

2014 ◽  
Vol 304 (3-4) ◽  
pp. 422-430 ◽  
Author(s):  
Abhishek Jaiswal ◽  
Hemanta Koley ◽  
Soma Mitra ◽  
Dhira Rani Saha ◽  
Banwarilal Sarkar

2007 ◽  
Vol 75 (10) ◽  
pp. 5035-5042 ◽  
Author(s):  
Verena Olivier ◽  
G. Kenneth Haines ◽  
Yanping Tan ◽  
Karla J. Fullner Satchell

ABSTRACT The seventh cholera pandemic that started in 1961 was caused by Vibrio cholerae O1 strains of the El Tor biotype. These strains produce the pore-forming toxin hemolysin, a characteristic used clinically to distinguish classical and El Tor biotypes. Even though extensive in vitro data on the cytolytic activities of hemolysin exist, the connection of hemolysin to virulence in vivo is not well characterized. To study the contribution of hemolysin and other accessory toxins to pathogenesis, we utilized the model of intestinal infection in adult mice sensitive to the actions of accessory toxins. In this study, we showed that 4- to 6-week-old streptomycin-fed C57BL/6 mice were susceptible to intestinal infection with El Tor strains, which caused rapid death at high doses. Hemolysin had the predominant role in lethality, with a secondary contribution by the multifunctional autoprocessing RTX (MARTX) toxin. Cholera toxin and hemagglutinin/protease did not contribute to lethality in this model. Rapid death was not caused by increased dissemination due to a damaged epithelium since the numbers of CFU recovered from spleens and livers 6 h after infection did not differ between mice inoculated with hemolysin-expressing strains and those infected with non-hemolysin-expressing strains. Although accessory toxins were linked to virulence, a strain defective in the production of accessory toxins was still immunogenic since mice immunized with a multitoxin-deficient strain were protected from a subsequent lethal challenge with the wild type. These data suggest that hemolysin and MARTX toxin contribute to vaccine reactogenicity but that the genes for these toxins can be deleted from vaccine strains without affecting vaccine efficacy.


2021 ◽  
Vol 17 (7) ◽  
pp. e1009763
Author(s):  
Yao Ma ◽  
Xiaoman Yang ◽  
Hongou Wang ◽  
Zixin Qin ◽  
Chunrong Yi ◽  
...  

Sensing and resisting oxidative stress is critical for Vibrio cholerae to survive in either the aquatic environment or the gastrointestinal tract. Previous studies mainly focused on the mechanisms of oxidative stress response regulation that rely on enzymatic antioxidant systems, while functions of non-enzymatic antioxidants are rarely discussed in V. cholerae. For the first time, we investigated the role of hydrogen sulfide (H2S), the simplest thiol compound, in protecting V. cholerae against oxidative stress. We found that degradation of L-cysteine by putative cystathionine β-synthase (CBS) is the major source of endogenous H2S in V. cholerae. Our results indicate that intracellular H2S level has a positive correlation with cbs expression, while the enhanced H2S production can render V. cholerae cells less susceptible to H2O2 in vitro. Using proteome analysis and real-time qPCR assay, we found that cbs expression could stimulate the expression of several enzymatic antioxidants, including reactive oxygen species (ROS) detoxifying enzymes SodB, KatG and AhpC, the DNA protective protein DPS and the protein redox regulator Trx1. Assays of ROS detoxification capacities revealed that CBS-derived H2S could promote catalase activity at the post-translational level, especially for KatB, which serves as an important way that endogenous H2S participates in H2O2 detoxification. The enhancement of catalase activity by H2S is achieved through facilitating the uptake of iron. Adult mice experiments showed that cbs mutant has colonization defect, while either complementation of cbs or exogenous supplement of N-Acetyl-L-Cysteine restores its fitness in the host environment. Herein, we proposed that V. cholerae regulates CBS-dependent H2S production for better survival and proliferation under ROS stress.


1985 ◽  
Vol 31 (8) ◽  
pp. 711-720 ◽  
Author(s):  
Barbara A. McCardell ◽  
Joseph M. Madden ◽  
Dhirendra B. Shah

A thermolabile toxin (molecular weight, 52 711; isoelectric point, 8.65) produced by a clinical isolate of Vibrio cholerae serogroup non-O1 was cytotoxic for Y-1 mouse adrenal cells and Chinese hamster ovary cells. The toxin lysed rabbit red blood cells and produced a hemorrhagic zone in rabbit skin. When injected intravenously into adult mice, the cytolysin was rapidly lethal and caused fluid accumulation in both 5- and 18-h rabbit ileal loops. Strains of V. cholerae that produced cytolysin but no cholerae enterotoxin were able to cause fluid accumulation in rabbit intestinal loops.


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