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Divergent Fates of Kidney-Resident Polyomaviruses: Stable Shedding Versus Near-Silent Persistence
Anik Mojumder1, Kimin W Nguyen1, Christopher S Sullivan1
1Department of Molecular Biosciences, LaMontagne Center for Infectious Disease, The University of Texas at Austin, Austin, TX 78712, USA.
Abstract:
Polyomaviruses establish long-term infection in the kidney and are intermittently shed in urine. However, the relationship between kidney-resident viral genomes and urinary shedding during persistent infection remains poorly defined. Using a genetically barcoded murine polyomavirus library, we tracked thousands of viral lineages in vivo by pairing longitudinal urine sampling with endpoint barcode sequencing of kidney tissue in four mice. Across all animals, kidney infection consistently resolved into two stable viral populations, with near-silent persistence as the dominant fate. Most kidney-resident barcodes were never detected in late urine at late stages of infection, even though many reached substantial abundance within the kidney, demonstrating that kidney viral genome levels alone do not predict urinary shedding. In contrast, only a small minority of kidney barcodes contributed disproportionately to urine virus output at late timepoints, and these barcodes exhibited stable longitudinal behavior, with repeated detection in urine over time and markedly higher peak urine abundance than late non-shed or random barcode controls. Shedding behavior was not explained by input virus stock abundance, barcode sequence features, predicted miRNA targeting, or ongoing reseeding from blood or other tissues. Instead, barcodes that ultimately dominated late urine already showed elevated urine detection early after infection, indicating that shedding fate is established early and maintained throughout persistent infection. Together, these findings reveal that persistent kidney infection is a structured reservoir composed of a large population of deeply restricted viral genomes and a smaller, stable subset that repeatedly produces urine-detectable viruses, with concurrent smoldering infections and latency-like restriction representing one possible model to explain the sharply different probabilities of shedding among kidney-resident genomes.
Insights
Persistent polyomavirus kidney infections involve a large, silent viral population and a small, consistently shedding group. Shedding is established early and maintained, not predicted by kidney viral load alone.
Area of Science:
- Virology
- Immunology
- Infectious Diseases
Background:
- Polyomaviruses cause persistent kidney infections and intermittent urinary shedding.
- The link between kidney viral genomes and urine shedding during chronic infection is unclear.
Purpose of the Study:
- To investigate the relationship between kidney-resident polyomavirus genomes and urinary shedding during persistent infection.
- To identify factors determining viral shedding patterns from the kidney reservoir.
Main Methods:
- Utilized a genetically barcoded murine polyomavirus library for in vivo lineage tracking.
- Paired longitudinal urine sampling with endpoint barcode sequencing of kidney tissue in four mice.
Main Results:
- Kidney infection resolved into two stable populations: a dominant near-silent persistent group and a minority of consistently shedding barcodes.
- Most kidney-resident viral genomes were undetectable in late urine, irrespective of kidney abundance.
- Early urine detection of viral barcodes predicted later shedding dominance, indicating an established shedding fate.
- Shedding was independent of initial viral stock, barcode sequence, miRNA targeting, or reseeding from other tissues.
Conclusions:
- Persistent polyomavirus kidney infection forms a structured reservoir with distinct viral populations.
- A small subset of kidney-resident viral genomes consistently sheds, while most remain transcriptionally restricted.
- Urinary shedding probability is determined early in infection and maintained, suggesting distinct viral states within the kidney.
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