Search bioRxiv⌕ Search

bioRxiv · 10.64898/2026.07.06.736858

Reverse genetics and comparative pathogenesis of Lone star virus.

Abstract

Lone star virus (LSV) is a bandavirus first isolated from Amblyomma americanum ticks in the United States (U.S.) and is phylogenetically related to severe fever with thrombocytopenia syndrome virus (SFTSV), Heartland virus (HRTV), and Bhanja virus, each of which has been associated with severe human disease. In contrast to these better-characterized bandaviruses, LSV remains poorly studied, and its pathogenic potential is not well defined. Recent detection of LSV RNA in cerebrospinal fluid from an immunocompromised patient in Idaho, U.S., with fatal meningoencephalitis further highlights the need for experimental systems to investigate LSV biology. Here, we rescued recombinant (r) LSV from cloned cDNA and used it to characterize LSV. rLSV replicated similarly to the parental isolate in mammalian cells and caused rapid, systemic, and lethal disease in IFNAR-/- mice, with widespread detection of viral (v) RNA across multiple tissues, hepatic and splenic pathology, and induction of inflammatory cytokines. In contrast, C57BL/6J mice controlled infection and exhibited no clinical disease. To place LSV within a broader comparative framework, we generated rSFTSV from cloned cDNA and compared rLSV, rSFTSV, and HRTV in cell culture and IFNAR-/- mice. Our studies revealed distinct disease kinetics among these related tick-borne bandaviruses and showed that HRTV-induced immunity protected against homologous HRTV rechallenge and heterologous rSFTSV challenge, but not rLSV challenge. Together, these findings establish reverse-genetics platforms and small-animal models for comparative bandavirus studies, define key features of LSV pathogenesis, and place this neglected virus within a framework of related bandaviruses that differ in virulence and immunological overlap. ImportanceTick-borne bandaviruses include several viruses associated with severe human disease, yet many related viruses remain poorly characterized. Lone star virus (LSV) was first isolated from Amblyomma americanum ticks decades ago, but experimental tools and animal models to study LSV infection have been lacking. Here, we generated a recombinant LSV and used it to define the outcome of infection in immunocompromised and immunocompetent mice. We show that LSV can cause rapid, systemic, and lethal disease when type I interferon signaling is absent, whereas immunocompetent mice restrict infection and remain clinically normal. By comparing LSV with Heartland virus and severe fever with thrombocytopenia syndrome virus, we also show that related tick-borne bandaviruses differ in disease kinetics and immune protection. These findings provide foundational tools for studying LSV and highlight the importance of experimentally characterizing neglected tick-borne viruses before their pathogenic potential is fully understood.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Omoga, D. C. A., Witt, C., Giesel, H., Bowen, J. M., Gunter, K., Pozuelos, S., Relich, R., Brennan, B., Tilston-Lunel, N. L.. 2026-07-07. Reverse genetics and comparative pathogenesis of Lone star virus.. https://doi.org/10.64898/2026.07.06.736858

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

A self-limiting dimeric TIR effector specialised for type III CRISPR-mediated immunity

Antiviral defence systems frequently utilise cyclic nucleotide second messengers. A prominent example is the type III CRISPR-Cas system, which generates cyclic oligoadenylates (cOA) on detecting viral RNA. cOA molecules can bind and activate a wide range of effectors to provide antiviral defence. In both prokaryotes and higher plants, activation of a catalytic Toll/Interleukin Receptor (TIR) domain by multimerization results in degradation of NAD+, limiting cell metabolism and thus viral replication. Here, we describe a CRISPR-associated TIR-containing effector that includes a SAVED (SMODS-associated and fused to various effector domains) domain for nucleotide sensing and a cOA-degrading ring nuclease Crn4 domain. We demonstrate that the TIR-SAVED-Ring nuclease (TSR1) effector binds cA3, resulting in activation of the TIR NADase activity. The Crn4 domain, which imposes an unusual dimeric quaternary structure on the effector, degrades cA3, providing a mechanism to auto-deactivate the effector. TSR1 is thus a highly unusual example of a dimeric and self-limiting TIR effector in antiviral immunity.

microbiology↗

DepoCat: Interactive database of experimentally verified phage depolymerases

Klebsiella phage depolymerases degrade polysaccharide capsules and exhibit narrow substrate specificity for particular capsular types. Despite a growing number of experimentally characterized enzymes, these data remain scattered throughout the scientific literature, while existing protein sequence repositories are dominated by entries with computationally assigned, unverified functional annotations. Here we present DepoCat, the first interactive database of phage depolymerases with experimentally verified function and specificity, available at http://depocat.uwr.edu.pl. The database currently contains 131 proteins meeting rigorous inclusion criteria, spanning 75 distinct capsular types. Each entry integrates experimental and computational resources. The web interface provides an integrated Classifier tool with two search modes: sequence-based search and structure-based search - enabling preliminary structural classification and inference of putative substrate specificity of newly identified depolymerases. We demonstrated the utility of both modes on a set of 17 experimentally verified non-Klebsiella phage depolymerases, for which structural analysis enabled unambiguous class assignment in almost all cases despite low or undetectable sequence similarity to the database reference dataset. DepoCat constitutes a publicly accessible resource supporting research into the structural diversity and sequence-structure-specificity relationships of phage depolymerases, while also facilitating the identification of candidates for therapeutic and diagnostic applications.

microbiology↗

A two-step model of FtsZ-ring disassembly in Bacillus subtilis

Bacillus subtilis grows and divides by binary fission, directed by medial localization of cell division protein FtsZ. Disruption of either the Min system or EzrA results in aberrant FtsZ positioning. Here we compare FtsZ dynamics in cells disrupted for either MinD or EzrA when grown in microfluidic channels. Here we show that cells lacking MinD or EzrA appear to be similarly defective in Z-ring disassembly after septation, but play different roles as simultaneous disruption results in a synergistic defect in division. Moreover, we account for a low frequency of minicell formation in the absence of EzrA, as MinD but not EzrA is necessary for removal of ZapA from polar Z-rings. Finally, overexpression of MinCD results inhibits division through pervasive Z-ring disassembly but appears to concentrate ZapA through localized sequestration. Combined, our results indicate a closer relationship between MinCD and ZapA than previously recognized and show that Z-ring disassembly can be genetically separated into discrete steps. We propose a two-step model for Z-ring disassembly that mirrors the assembly process, such that after and/or during septation, the Z-ring separately decondenses and protofilaments are disassembled to monomers for recycling.

microbiology↗