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Biomedical subjects

Erin K Molloy

Publications and source records attributed to Erin K Molloy.

4 recordsLinked to original sources

Long-read sequencing of single cell-derived melanoma subclones reveals divergent and parallel genomic and epigenomic evolutionary trajectories.

Tumor evolution is driven by various mutational processes, ranging from single-nucleotide variants (SNVs) to large structural variants (SVs) to dynamic shifts in DNA methylation. Current short-read sequencing methods struggle to accurately capture the full spectrum of these genomic and epigenomic alterations due to inherent technical limitations. To overcome that, here we introduce an approach for long-read sequencing of single-cell derived subclones, and use it to profile 23 subclones of a mouse melanoma cell line, characterized with distinct growth phenotypes and treatment responses. We develop a computational framework for harmonization and joint analysis of different variant types in the evolutionary context. Uniquely, our framework enables detection of recurrent amplifications of putative driver genes, generated by independent SVs across different lineages, suggesting parallel evolution. In addition, our approach revealed gradual and lineage-specific methylation changes associated with aggressive clonal phenotypes. We also show our set of phylogeny-constrained variant calls along with openly released sequencing data can be a valuable resource for the development of new computational methods.

Journal Article

Enhanced barrier precautions to prevent transmission of Staphylococcus aureus and Carbapenem-resistant organisms in nursing home chronic ventilator units.

OBJECTIVE: Assess the feasibility and effect of Enhanced Barrier Precautions (EBP) on the transmission of Staphylococcus aureus (SA) and carbapenem-resistant organisms (CRO) among residents in nursing home chronic ventilator units (NH-CVU). DESIGN: Pre-post interventional study. SETTING: Two community-based nursing homes with CVUs in Maryland. A total of 56 residents were enrolled in the baseline period and 64 residents were enrolled in the intervention period. METHODS: During a 3-month baseline and intervention period, residents were swabbed monthly to estimate SA and CRO acquisition. During a 2-month training period, EBP was implemented for residents with chronic wounds, medical devices, or history of multidrug-resistant organism (MDRO) colonization. During the subsequent 3-month intervention period, healthcare personnel (HCP) wore gowns and gloves for high-contact care activities when residents were on EBP. Whole genome sequencing assessed resident-to-resident transmission. RESULTS: At baseline, NH-CVU1 used gowns and gloves for all direct contact, while NH-CVU2 used EBP only for residents with a history of MDRO colonization. After training, the proportion of NH-CVU2 residents on EBP increased from 65% in the baseline period to 87% in the intervention period. Glove use was high (93-98%) in both NH-CVUs. Gown use increased from 39% to 77% in NH-CVU1 and from 26% to 72% in NH-CVU2. Resident-to-resident transmission of SA or CRO decreased by 25% in NH-CVU1 (p = 0.60) and by 67% in NH-CVU2 (p = 0.05). CRO transmission decreased by 33% in NH-CVU1 (p = 0.54) and by 83% in NH-CVU2 (p = 0.02). CONCLUSIONS: EBP is feasible and potentially decreases overall and CRO transmission in nursing home CVUs.

Humans

Severus detects somatic structural variation and complex rearrangements in cancer genomes using long-read sequencing.

For the detection of somatic structural variation (SV) in cancer genomes, long-read sequencing is advantageous over short-read sequencing with respect to mappability and variant phasing. However, most current long-read SV detection methods are not developed for the analysis of tumor genomes characterized by complex rearrangements and heterogeneity. Here, we present Severus, a breakpoint graph-based algorithm for somatic SV calling from long-read cancer sequencing. Severus works with matching normal samples, supports unbalanced cancer karyotypes, can characterize complex multibreak SV patterns and produces haplotype-specific calls. On a comprehensive multitechnology cell line panel, Severus consistently outperforms other long-read and short-read methods in terms of SV detection F1 score (harmonic mean of the precision and recall). We also illustrate that compared to long-read methods, short-read sequencing systematically misses certain classes of somatic SVs, such as insertions or clustered rearrangements. We apply Severus to several clinical cases of pediatric leukemia/lymphoma, revealing clinically relevant cryptic rearrangements missed by standard genomic panels.

Humans

Stochastic modeling of single-cell gene expression adaptation reveals non-genomic contribution to evolution of tumor subclones.

Cancer progression is an evolutionary process driven by the selection of cells adapted to gain growth advantage. We present a formal study on the adaptation of gene expression in subclonal evolution. We model evolutionary changes in gene expression as stochastic Ornstein-Uhlenbeck processes, jointly leveraging the evolutionary history of subclones and single-cell expression data. Applying our model to sublines derived from single cells of a mouse melanoma revealed that sublines with distinct phenotypes are underlined by different patterns of gene expression adaptation, indicating non-genetic mechanisms of cancer evolution. Sublines previously observed to be resistant to anti-CTLA4 treatment showed adaptive expression of genes related to invasion and non-canonical Wnt signaling, whereas sublines that responded to treatment showed adaptive expression of genes related to proliferation and canonical Wnt signaling. Our results suggest that clonal phenotypes emerge as the result of specific adaptivity patterns of gene expression. A record of this paper's transparent peer review process is included in the supplemental information.

Animals