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Biology subjects

Vill, A. C.

Publications and source records attributed to Vill, A. C..

2 recordsLinked to original sources

Run-on sequencing reveals nascent transcriptomics of the human microbiome

Precise regulation of transcription initiation and elongation enables bacteria to control cellular responses to environmental stimuli. RNAseq is the most common tool for measuring the transcriptional output of bacteria, comprising predominantly mature transcripts. To gain further insight into transcriptional dynamics, it is necessary to discriminate actively transcribed loci from those represented in the total RNA pool. One solution is to capture RNA polymerase (RNAP) in the act of transcription, but current methods are restricted to culturable and genetically tractable organisms. Here, we apply precision run-on sequencing (PRO-seq) to profile nascent transcription, a method amenable to diverse species. We find that PRO-seq is well-suited to profile small, structured, or post-transcriptionally modified RNAs, which are often excluded from RNAseq libraries. When PRO-seq is applied to the human microbiome, we identify taxon-specific RNAP pause motifs. We also uncover concurrent transcription and cleavage of guide RNAs and tRNA fragments at active CRISPR and tRNA loci. We demonstrate the specific utility of PRO-seq as a tool for exploring transcriptional dynamics in diverse microbial communities.

microbiology↗

Widespread transfer of mobile antibiotic resistance genes within individual gut microbiomes revealed through bacterial Hi-C

The gut microbiome harbors a silent reservoir of antibiotic resistance (AR) genes that is thought to contribute to the emergence of multidrug-resistant pathogens through the process of horizontal gene transfer (HGT). To counteract the spread of AR genes, it is paramount to know which organisms harbor mobile AR genes and with which organisms they engage in HGT. Despite methods to characterize the bulk presence1, abundance2 and function3 of AR genes in the gut, technological limitations of short-read sequencing have precluded linking bacterial taxa to specific mobile genetic elements (MGEs) and their concomitant AR genes. Here, we apply and evaluate a high-throughput, culture-independent method for surveilling the bacterial carriage of MGEs, based on bacterial Hi-C protocols. We compare two healthy individuals with a cohort of seven neutropenic patients undergoing hematopoietic stem cell transplantation, who receive multiple courses of antibiotics throughout their prolonged hospitalizations, and are thus acutely vulnerable to the threat of multidrug-resistant infections4. We find that the networks of HGT are surprisingly distinct between individuals, yet AR and mobile genes are more dispersed across taxa within the neutropenic patients than the healthy subjects. Our data further suggest that HGT is occurring throughout the course of treatment in the microbiomes of neutropenic patients and within the guts of healthy individuals over a similar timeframe. Whereas most efforts to understand the spread of AR genes have focused on pathogenic species, our findings shed light on the role of the human gut microbiome in this process.

systems biology↗