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Gallardo Molina, P.

Publications and source records attributed to Gallardo Molina, P..

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An expanded urine culturing workflow to cultivate and characterize diverse urobiome isolates

Despite increased recognition of the diverse resident microbiome of the urinary tract (i.e., the urobiome) in postmenopausal women, the roles and functions of these microbes remain largely unknown. Further empirical research is needed to understand the physiology, interactions, and antibiotic resistance evolution of urobiome members with pathogenic potential. However, experimental work relies on viable, culturable isolates. Standard urine culturing practices are designed for identifying a narrow set of known urinary microbes, and are thus poorly suited for cultivating taxa from the resident urobiome. Here we expand the urine culturing toolkit to reliably recover diverse urobiome taxa for downstream empirical research. Urine samples collected from postmenopausal women with recurrent urinary tract infections were shipped at ambient temperature to a central point for culturing. Microbial viability was maintained using boric acid preservative tubes during multi-day transport of sample aliquots. Selective media incubated under specialized conditions were used to promote recovery of diverse urobiome members, including fastidious taxa. Under 5% CO2 -enriched atmospheric conditions and with longer incubation times, we leveraged a chromogenic agar (UTIC) to further differentiate isolates based on colony color and morphology. We evaluated the workflow for its ability to isolate and characterize urobiome taxa, as determined by morphological differentiation and taxonomic identification. Across 108 urine samples, 6.3 {+/-} 3.2 distinct isolates were recovered, with no detectable relationship between sample shipment duration and isolate richness. On chromogenic agar, colony growth and color intensity was improved with CO2 -enriched atmospheric conditions and extended incubation times. We identified diverse taxa that are typically underrepresented in standard diagnostic culture and provide novel morphological characterizations for members of the genera Actinotignum, Aerococcus, Facklamia, Lactobacillus, Latilactobacillus, Limosilactobacillus, and Streptococcus species, which have not been previously described on UTIC chromogenic agar. Using this novel workflow, we recovered a diverse collection of urobiome isolates from urine samples shipped over multiple days. We also demonstrated the utility of a chromogenic agar for the visual differentiation of key urobiome taxa. While sequencing approaches have enhanced our understanding of urobiome composition, culturing is needed to investigate microbial interactions, virulence mechanisms, and antimicrobial susceptibility. This protocol adds to the growing toolkit for the cultivation of diverse urobiome isolates needed to support downstream empirical studies and advance urinary tract infection research.

microbiology↗

SimUrine: A Novel, Fully Defined Artificial Urinary Media for Enhanced Microbiological Research of Urinary Bacteria

Urinary tract infections represent one of the most prevalent bacterial diseases, yet current diagnostic and research methodologies are hampered by inadequate culture media that fail to replicate the bladder biochemical environment. Conventional artificial urine formulations contain undefined components, lack essential nutrients, or inadequately support urinary microbiome (urobiome) growth. To address these limitations, we developed SimUrine, a fully defined synthetic urine medium that aims to replicate human bladder chemistry while supporting diverse microbial growth requirements. SimUrine was systematically developed through iterative optimization of multi-purpose artificial urine, incorporating defined concentrations of carbon sources, vitamins, trace elements, and amino acids within physiologically relevant ranges. The modular design enables component substitution without complete reformulation, facilitating customization for culturomics, antimicrobial susceptibility testing, and microbial ecology studies, while reducing batch-to-batch variability associated with authentic urine. Performance evaluation demonstrated SimUrines capability to support growth of fastidious urobiome members, including Lactobacillus species, Aerococcus urinae, and Corynebacterium riegelii, which fail to proliferate in conventional minimal media. Physicochemical characterization confirmed that SimUrine formulation exhibits properties within normal human urine ranges for density, conductivity, osmolarity, and viscosity, ensuring physiological relevance. Clinical applications revealed reduced antibiotic susceptibility compared to standard media, suggesting more accurate representation of in vivo conditions. Co-culture experiments using Escherichia coli and Enterococcus faecalis demonstrated previously unobserved microbial interactions, highlighting SimUrines utility for investigating urobiome dynamics. SimUrine represents a significant advancement in urobiome research methodology, providing a standardized, reproducible platform for investigating urobiome under physiologically relevant conditions, potentially improving fundamental understanding and clinical diagnostic approaches. IMPORTANCEUrinary tract infections affect millions globally, yet current research and diagnostic methods rely on inadequate culture media that fail to replicate the bladders unique biochemical environment. This fundamental limitation has hindered accurate UTI research and potentially compromised clinical treatment decisions. SimUrine addresses this critical gap as the first fully defined synthetic urine medium that mimics human bladder chemistry while supporting growth of diverse urinary microbes. The breakthrough enables cultivation of urobiome organisms in a minimal medium that resembles natural conditions, revealing novel microbial interactions that influence urinary health. Crucially, SimUrine demonstrates different antimicrobial susceptibility patterns compared to standard clinical media, suggesting current testing protocols may inaccurately predict treatment outcomes. This standardized, reproducible platform eliminates the variability of authentic urine samples while maintaining physiological relevance, potentially transforming urobiome research methodology and improving clinical diagnostic accuracy for urinary tract infections worldwide.

microbiology↗