The presence of Candida species in urine may be due to colonization of this species in the bladder, urinary catheter, and perineum. Candida albicans has been the most commonly isolated from urine samples in patients with candiduria. Several virulence factors include adhesion to host cells, secreted extracellular enzymes, phenotype switching, and biofilm formation are contributing to the pathogenicity of C. albicans. ABC genotyping is the method based on the determination of 25s rDNA and C. albicans is divided into four genotypes include A, B, C, and E. We aimed to identify Candida species from pediatrics and evaluate extracellular enzyme activities, phenotype switching, biofilm formation, and genotyping in isolates. Urine samples collected, cultured, and yielded yeasts were identified. Phenotype switching, biofilm formation, enzymatic patterns, and genotyping of 50 isolates of C. albicans were evaluated. The Genotyping pattern was compared with extracellular enzymes, biofilm formation, and phenotype switching pattern. 16.2% of urine cultures were positive for the different Candida species. The most common species was C. albicans, followed by C. glabrata. Out of 50 isolates of C. albicans, 72% and 28% isolates were recognized as genotypes A and C. All isolates were produced extracellular enzymes and biofilm formation. In conclusion, candiduria with high colony counts is still a challenge in Iranian pediatrics. Genotype A was the predominant genotype among C. albicans strains. There is a statistical difference between esterase and genotypes of C and A C. albicans.
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http://dx.doi.org/10.1016/j.micpath.2021.105173 | DOI Listing |
Vet Res
January 2025
Animal Health Unit, Department of Veterinary Science, School of Veterinary Medicine, Rakuno Gakuen University, Ebetsu, Hokkaido, Japan.
Mycoplasma pneumonia, caused by Mycoplasma bovis (Mycoplasmopsis bovis; M. bovis), is linked with severe inflammatory reactions in the lungs and can be challenging to treat with antibiotics. Biofilms play a significant role in bacterial persistence and contribute to the development of chronic lesions.
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January 2025
State Key Laboratory for Sheep Genetic Improvement and Healthy Production, Xinjiang Academy of Agricultural and Reclamation Science, Shihezi, 832000, Xinjiang, China.
Escherichia coli has become a common causative agent of infections in animals, inflicting serious economic losses on livestock production and posing a threat to public health. Escherichia coli infection is common and tends to be complex in Xinjiang, a major region of cattle and sheep breeding in China. This study aims to explore the current status and molecular characteristics of Escherichia coli infection in cattle and sheep in Xinjiang, as part of the disease prevention and control strategy.
View Article and Find Full Text PDFSci Rep
January 2025
School of Biotechnology, Amrita Vishwa Vidyapeetham, Amritapuri, Kerala, India.
Pyomelanogenic P. aeruginosa, frequently isolated from patients with urinary tract infections and cystic fibrosis, possesses the ability to withstand oxidative stress, contributing to virulence and resulting in persistent infections. Whole genome sequence analysis of U804, a pyomelanogenic, multidrug-resistant, clinical isolate, demonstrates the mechanism underlying pyomelanin overproduction.
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January 2025
Division of Microbiology, National Center for Toxicological Research, Food and Drug Administration (FDA), Jefferson, AR, U.S.A.
Infections associated with urinary catheters are often caused by biofilms composed of various bacterial species that form on the catheters' surfaces. In this study, we investigated the intricate interplay between Escherichia coli and Enterococcus faecalis during biofilm formation on urinary catheter segments using a dual-species culture model. We analyzed biofilm formation and global proteomic profiles to understand how these bacteria interact and adapt within a shared environment.
View Article and Find Full Text PDFPLoS Biol
January 2025
Institute for Biological Physics, University of Cologne, Cologne, Germany.
Type 4 pili (T4P) are multifunctional filaments involved in adhesion, surface motility, biofilm formation, and horizontal gene transfer. These extracellular polymers are surface-exposed and, therefore, act as antigens. The human pathogen Neisseria gonorrhoeae uses pilin antigenic variation to escape immune surveillance, yet it is unclear how antigenic variation impacts most other functions of T4P.
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