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Biology subjects

Leipold, A. M.

Publications and source records attributed to Leipold, A. M..

2 recordsLinked to original sources

Single-cell RNA-seq using UltraMarathonRT expands theknown transcriptome

The ability to map messenger RNA (mRNA) molecules from individual cells using next-generation sequencing technologies, known as single-cell RNA-seq (scRNA-seq), is transforming biology by redefining cellular identities with unmatched detail. However, all current protocols depend on copying RNA into complementary DNA with a single reverse transcriptase (RT) derived from murine leukemia virus, which is an RT enzyme known for low processivity and limited ability to unfold complex RNA structures. Here, for the first time, we introduce a group II intron reverse transcriptase, UltraMarathonRT (uMRT), to perform scRNA-seq. We demonstrate that this enzyme reveals an unexpected transcriptomics landscape by capturing additional genes and other genomic features that conventional RTs miss. We also combined uMRT with metabolic RNA labeling, nucleoside conversion and scRNA-seq to explore genome-wide transcriptome dynamics at the single-cell level. Overall, we establish uMRT as a transformative biotechnological tool for single-cell transcriptomics.

molecular biology↗

Prostate-specific membrane receptor PPAP facilitates E. coli invasion of luminal prostate cells via FimH binding

Bacterial prostatitis caused by uropathogenic Escherichia coli (UPEC) strains is a highly prevalent and recurrent infection responsible for significant morbidity in men. However, the molecular pathogenesis of prostatitis remains poorly understood, partly due to the lack of comprehensive in-vitro models. In this study, we introduce a murine prostate organoid model that replicates the cellular heterogeneity of the prostate epithelium with a cell composition and transcriptional signature comparable to the native prostate tissue. Using this model, we uncovered that UPEC preferentially attaches to, invades, and replicates within luminal prostate cells. This selective interaction is mediated by the binding of the bacterial adhesin FimH to the prostate- specific membrane protein PAPP, which is exclusively expressed on luminal prostate cells. Altogether, we identified a new mechanism by which UPEC infects the prostate epithelium, highlighting FimHs adaptability in engaging host receptors and its potential for targeted therapeutic strategies.

molecular biology↗