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Wu-Woods, N. J.

Publications and source records attributed to Wu-Woods, N. J..

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Fungal microbial enrichment method enables fungal metagenomics directly from human clinical samples

Fungi play important roles in health and disease, but current methods such as culture, PCR, and amplicon sequencing cannot provide genome-level characterization directly from clinical samples. Although metagenomic sequencing could overcome these limitations, it remains impractical in clinical samples where fungal DNA is present at low abundance relative to human DNA. Here, we extend a recently described microbial enrichment method (MEM)(1) to fungi (fungal Microbial Enrichment Method; fMEM) and test the method in bronchoalveolar lavage (BAL) samples to demonstrate direct-from-sample fungal metagenomic analysis and metagenome-assembled genome (MAG) recovery. In BAL samples, fMEM depleted human DNA by more than 1000-fold while preserving fungal DNA within 10-fold, enabling shotgun sequencing from samples with fungal biomass as low as 10 pg fungal DNA per 200 {micro}L BAL. fMEM enabled de novo recovery of fungal MAGs from three of four sequenced BAL samples, including two near-complete MAGs (>90% BUSCO completeness) and one 82.1% complete MAG, with low BUSCO-estimated contamination ([≤]1.5%). Fungal MAGs recovered by fMEM also resolved potentially clinically-relevant genes, not fully predictable from taxonomy alone and revealed genomic content absent from currently-available same-species reference genomes. fMEM is compatible with a whole-genome amplification (including long-read sequencing workflows). Long reads from fMEM-processed samples provided high coverage (>10X) over fungal assemblies. fMEMs compatibility with long-read sequencing enables recovery of genes that would be difficult to assemble with short reads alone. fMEM may enable new insights into the role of human-associated fungi, impacting public health, clinical management, and research into complex diseases with suspected fungal roles. ImportanceFungi influence human health, infectious disease, and the microbiome, but direct genome analysis from clinical samples has remained impractical because fungal DNA is often overwhelmed by human DNA. We developed a fungal microbial enrichment method (fMEM) that enables direct-from-sample fungal metagenomic sequencing and genome recovery from bronchoalveolar lavage samples without requiring culture for genome assembly. fMEM recovers genome-level features not predicted by taxonomy or current same-species reference genomes and is compatible with long-read sequencing workflows that can recover loci missed by short-read sequencing. fMEM opens new opportunities for culture-independent fungal genomics, clinical microbiology, comparative genomics, and mechanistic studies of human-associated fungi.

bioengineering↗

Ultra-low biomass sequencing workflow (LBV-Seq) enables de novo metagenomic reconstruction of DNA and RNA viral genomes

Genome-resolved virome analysis remains inaccessible for many samples, including those with clinical relevance, because viral nucleic acid recovered after enrichment is often too scarce to support de novo genome assembly. As a result, many analyses are limited to sparse read-level detection, which cannot recover divergent viruses, resolve strains, or interpret gene-level variation. Here, we developed Low Biomass Viral Sequencing (LBV-Seq), a workflow that couples low-input viral sample handling with modified primary template-directed amplification and short- or long-read sequencing to enable de novo reconstruction of DNA and RNA viral genomes from sub-femtogram to nanogram inputs. LBV-Seq reproducibly captures the same relative community composition, amplifies diverse viruses, and achieved broad genome coverage across nearly all targets regardless of viral genome structure, Baltimore class, abundance, or input mass. Short-read assemblies recovered near-complete genomes from femtogram-scale inputs. Long-read sequencing provided orthogonal support for genome structure, with PacBio HiFi reads spanning large portions of viral genomes and, in some cases, complete small viral genomes. Applied to virus-enriched human duodenal biopsy eluates, LBV-Seq provided proof-of-feasibility for recovering both bacteriophage and eukaryotic viral genomes from low-input biopsy-derived material. In the eluates tested, LBV-Seq recovered co-occurring Alphatorquevirus and Betatorquevirus genomes estimated to be present at roughly 10 copies/{micro}L and at viral masses below 0.1 fg/{micro}L. LBV-Seq enables genome-resolved virome analysis in samples previously limited to detection-based viromics, supporting viral discovery and strain-resolved analyses in settings where viral mass is low, including viruses enriched from human tissue biopsies.

genomics↗