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Biology subjects

Scholl, A.

Publications and source records attributed to Scholl, A..

4 recordsLinked to original sources

Metabolite profiles distinguish exposure to Dengue and Zika flaviviruses in human induced pluripotent stem cells (hiPSCs)

Flaviviruses such as Dengue virus (DENV), Zika virus (ZIKV) and West Nile Virus (WNV) pose growing public health threats, exacerbated by asymptomatic infections and non-vector transmission. Current diagnostics, including nucleic acid tests and serology, are limited by transient viremia and antibody cross-reactivity, underscoring the need for improved detection methods. We utilized untargeted metabolomics to differentiate DENV and ZIKV infections in human induced pluripotent stem cells (hiPSCs), a model relevant to study virus-host interactions, drug screening, and therapeutic safety. LC-MSbased profiling revealed virus-specific metabolic reprogramming during both acute and long-term infections. DENV3 induced early and sustained activation of metabolic features, while ZIKV-MR766 triggered transient suppression. Long term infection with DENV2, DENV3, or ZIKV-PRV resulted in distinct metabolic signatures in hiPSCs, with ZIKV-PRV showing the greatest divergence. Shared metabolite changes across conditions included amino acids (e.g., tryptophan, glutamate), lipids, and nucleosides. Functional studies demonstrated that tryptophan metabolism regulates infection dynamics: inhibiting serotonin biosynthesis reduced viral load, whereas blocking kynurenine synthesis enhanced viral replication. These findings position metabolomics as a viable approach for flavivirus detection and highlight metabolic pathways as potential therapeutic targets. ImportanceAccurate diagnosis of flavivirus infections remains challenging due to short periods of viremia, high rates of asymptomatic infection, and extensive serologic cross-reactivity among related viruses such as DENV and ZIKV. These limitations complicate clinical diagnosis, surveillance, and screening of human donor tissues. In this study, we demonstrate that untargeted metabolomics can distinguish ZIKV and DENV infections by identifying virus-specific host metabolic signatures during both acute and long-term infection. Using human induced pluripotent stem cells as a clinically relevant model, we show that metabolic reprogramming persists even in the absence of overt cytopathic effects and can reveal functional pathways that regulate viral replication. Our findings highlight host metabolite profiling as a complementary diagnostic strategy that may improve detection of flavivirus exposure, particularly in asymptomatic individuals or settings where conventional molecular and serologic tests are insufficient.

microbiology↗

A lncRNA drives developmentally-timed decay of all members of an essential microRNA family

The spatiotemporal expression patterns of microRNAs (miRNAs) are crucial to their function. Target-directed miRNA degradation (TDMD) is an emerging regulatory module that contributes to these expression patterns wherein a specialized RNA (TDMD trigger) drives miRNA decay through base pairing and resulting recruitment of E3 ubiquitin ligase ZSWIM8/EBAX-1. Extensive base pairing to the miRNA seed region and 3 end has been proposed as a key feature that distinguishes TDMD triggers from conventional mRNA targets of miRNAs, which primarily pair with the seed. Here we identify the long noncoding RNA, tts-2, as a TDMD trigger for mir-35-42, the most abundant miRNA family in C. elegans early embryos. We demonstrate that a single site in tts-2 drives decay through base pairing with the seed sequence shared by all eight family members. A second site in tts-2 supports decay of mir-38 with incomplete seed complementarity. Our findings demonstrate that extended base pairing is not a universal requirement for TDMD, and that TDMD drives developmentally-timed clearance of abundant miRNAs at the exit of C. elegans embryogenesis.

molecular biology↗

A Comprehensive Method on Black-legged Tick Larvae and Nymph Feeding on Mice to Study Lyme Disease Transmission and Acquisition

Tick-borne diseases are a growing public health concern in the United States, with cases rising steadily each year. Lyme borreliosis, or Lyme disease, remains the most prevalent, affecting approximately 476,000 individuals annually. Human-driven changes in climate and ecosystems have expanded the habitat of pathogen-carrying ticks, facilitating the spread of these infections. Additionally, increased instances of tick-borne diseases transmission through human tissues have been reported. Despite ongoing efforts to manage these infections, their incidence continues to rise. To develop effective control measures against these diseases and prevent the transmission of tick-borne infections through human and animal tissues, it is very important to develop detection assays and understand the transmission mechanisms of tick-borne infections. In this study, we provide detailed descriptions and visual references for larval and nymphal tick feeding on mice, focusing on the transmission and acquisition of Borrelia burgdorferi (sensu stricto). These methodologies can be applied to study other tick-borne diseases, tick vectorial capacity, and tick biology, aiding in the development of detection strategies to combat these infections.

molecular biology↗

Zika and Dengue Viruses Differentially Modulate Host mRNA Processing Factors Defining Its Virulence

Rising global temperatures coupled with increasing international travel, and trade are contributing to spread of vectors such as ticks and mosquitoes, resulting in a surge of vector-borne flavivirus infection in human population. Furthermore, this increase in flavivirus infection pose threat to the safety of biologics such as cell and gene therapy products as human-derived materials are commonly used during manufacturing of these drug products. In this study, we conducted time-course transcriptomic and protein analyses to uncover the host molecular factors driving the virulence of Zika virus (ZIKV) and Dengue virus (DENV) in the context of host defense mechanisms, as these two viruses have caused the most recent and significant flavivirus outbreaks. Compared to DENV, ZIKV exhibited stronger virulence and cytopathic effects. RNA sequencing analysis revealed differential expression of various cellular factors, including RNA processing factors. Further investigation identified cell-type and time-dependent upregulation nonsense-mediated RNA decay (NMD), RNA degradation factors and nuclear pore complex (NPC) transcripts. Protein analysis showed that ZIKV, unlike DENV, degrades NMD factors in host cells, which along with mis-regulation of RNA degradation factors resulted in accumulation in host intronic transcripts as revealed by RNA-seq data. We also found that active nuclear transport is required for ZIKV replication, suggesting that therapeutic targeting of the NPC could potentially be effective in controlling ZIKV infection. Furthermore, from our findings we hypothesize that, ZIKV, but not DENV, drives early host cell cytopathy through targeted protein degradation. Current studies are underway to develop novel strategies to detect ZIKV, DENV and other flaviviruses in biologics based on transcriptomics and proteomics. TeaserExploring the molecular basis of flavivirus virulence in host cells.

genomics↗