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Biology subjects

Wehrhahn, M.

Publications and source records attributed to Wehrhahn, M..

2 recordsLinked to original sources

A Machine Learning Approach Reveals CRISPR-Cas I-F as a Genomic Marker of Antibiotic Susceptibility in Uropathogenic E. coli

BackgroundAntimicrobial resistance (AMR) in Escherichia coli is a critical global health challenge, particularly in urinary tract infections, where first-line treatments are increasingly compromised. While horizontal gene transfer (HGT) via mobile genetic elements is a major driver of AMR, the genomic factors that may constrain resistance gene acquisition remain underexplored. CRISPR-Cas systems, which provide adaptive immunity against foreign DNA, could influence AMR dynamics, but their role in E. coli remains incompletely understood. MethodsWe conducted a comprehensive whole-genome analysis of uropathogenic E. coli isolates, including a newly sequenced collection from Australian clinical samples and an independent, globally sourced validation cohort. Antimicrobial susceptibility profiles were integrated with CRISPR-Cas subtype classification, resistance gene burden, and mobile element content. Elastic net regression, adaptive lasso, and tree-based machine learning models were used to identify genomic predictors of resistance, with performance validated across both datasets. ResultsCRISPR-Cas subtype I-F was consistently associated with susceptibility to antibiotics commonly acquired through HGT, including trimethoprim and ampicillin, and linked to lower ARG and MGE burden. In contrast, Type I-E arrays, especially when co-occurring with orphan I-F arrays, were associated with increased resistance. These associations remained robust after adjusting for phylogroup, plasmid content, and genomic background, and were validated across datasets. ConclusionsSubtype-specific CRISPR-Cas systems shape antibiotic resistance profiles in E. coli, with Type I-F functioning as a potential genomic barrier to ARG acquisition. These findings highlight CRISPR array typing as a novel biomarker for AMR risk prediction and surveillance, and suggest new opportunities for leveraging CRISPR-based mechanisms to limit resistance propagation in clinical contexts.

genomics↗

Replication of SARS-CoV-2 Omicron lineages is defined by TMPRSS2 use in environments where ACE2 is complexed with solute carriers SLC6A19 and SLC6A20.

The Omicron variant of SARS-CoV-2 emerged in late 2021 and since then Omicron subvariants have continued to evolve and dominate globally. The viral S protein evolved towards highly efficient antibody evasion and replicative capacity in the upper respiratory tract resulting in high transmissibility. At the same time, the mutations acquired in the S protein diminish infection of the lung epithelium and pathogenic potential. The changing entry requirements for Omicron sub-lineages that lead to this shift in tropism remain poorly understood. We resolve the changing replication requirements of SARS-CoV-2 to be related to two distinct pools of ACE2. The first pool relates to ACE2s role in the renin angiotensin system (RAS) and this pool can complex with TMPRSS2 (RAS-ACE2). The second pool relates to ACE2s role as a protein solute carrier chaperone than cannot complex with TMPRSS2 (Chaperone ACE2). Here, we demonstrate that pre-Omicron lineages replicate in a TMPRSS2 dependent manner across both ACE2 pools, whilst Omicron lineages can only spread and replicate using chaperone ACE2. This provides a mechanistic basis for the evolving infectivity requirements of SARS-CoV-2 and furthermore provides approaches to track and monitor ACE2 utilizing coronaviruses. Graphical AbstractMechanistic basis for shift in SARS-CoV-2 tropism with the arrival of Omicron. A. Chaperone ACE2 is defined structurally as a heterodimer of dimers with a solute carrier protein-SLC6A19 or SLC6A20. Here this ACE2 structure can exist uncomplexed from TMPRSS2 and enables TMPRSS2 use by both pre-Omicron and Omicron lineages. B. Renin Angiotensin ACE2 is defined by ACE2 with an exposed collectrin-like domain (CLD), which enables binding of TMPRSS2 or ADAM-17. Here ACE2 can form a complex with TMPRSS2 in a manner that allows pre-Omicron but not Omicron lineages to utilize TMPRSS2 to facilitate infection. Here Omicron lineages are heavily attenuated as they cannot use TMPRSS2 to spread. C. to E. Based on single cell profiles, ACE2 can exist as a chaperone with SLC6A20 in C. the Nasal Cavity or D. primarily as RAS-ACE2 in the lung to respond to acute lung injury. E. The largest pool of ACE2 in our body resides within the small intestine on enterocytes and this further facilitates replication in this tissue by pre-Omicron and Omicron lineages. O_FIG O_LINKSMALLFIG WIDTH=198 HEIGHT=200 SRC="FIGDIR/small/663433v1_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@172aa47org.highwire.dtl.DTLVardef@109285eorg.highwire.dtl.DTLVardef@394f8corg.highwire.dtl.DTLVardef@958e31_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗