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Sayers, I.

Publications and source records attributed to Sayers, I..

2 recordsLinked to original sources

Topology-Based Query Framework for Longitudinal Omics Trajectories

1 Abstract 1.1 Background Many longitudinal omics studies contain only a small number of repeated measurements collected before, during, or after an intervention. Existing approaches, including mixed-effects models and generalized additive models, estimate temporal effects but do not generally provide a discrete representation of trajectory topology that can be queried directly across experimental groups. 1.2 Methods We developed LongOmicsTraj, an open-source R package for topology-based representation and querying of short longitudinal omics trajectories. The framework encodes the direction of change between adjacent visits as up, down, or flat, with the ordered sequence defining an Ordinal Trajectory State (OTS). LongOmicsTraj operates downstream of trajectory estimation and can therefore be applied to empirical summaries or model-derived visit-level estimates, including those from linear mixed-effects models, generalized additive models, and polynomial regression, following a maSigPro-style time-course formulation [1]. OTS labels provide a common representation for topology-based querying, cross-group comparison, and evaluation of higherlevel representations such as trajectory clusters. We evaluated the framework using controlled simulations and bronchial biopsy transcriptomic data from the GLUCOLD corticosteroid intervention study (GEO accession GSE36221), measured at baseline, 6 months, and 30 months. The biological analysis compared continued inhaled corticosteroid (ICS) treatment, ICS withdrawal after 6 months, and placebo. 1.3 Results In simulations, LongOmicsTraj recovered predefined stable, monotonic, transient, rebound, and oscillatory trajectories with high accuracy when longitudinal signal was sufficiently clear, with performance declining under high-noise conditions and depending partly on the upstream estimator. In GLUCOLD, comparator-aware topology queries reduced 20,358 measured transcripts to 168 genes showing a corticosteroid response that was maintained during continued treatment, reversed following withdrawal, and was not reproduced under placebo. The selected genes included established corticosteroid-response genes and were enriched for immune-cell migration, chemotaxis, cell adhesion, and extracellular-matrix organisation. Topology-aware evaluation of FlexMix trajectory clusters additionally revealed substantial within-cluster temporal heterogeneity, with topology purities of approximately 46% to 60%. 1.4 Conclusions LongOmicsTraj provides a compact, directly queryable representation of temporal direction and order in short longitudinal omics studies. It complements existing longitudinal estimation and clustering methods by making trajectory structure explicit, enabling structured cross-group queries and quantification of temporal heterogeneity within trajectory clusters.

bioinformatics↗

Lung function candidate genes in Drosophila melanogaster

RationaleChronic obstructive pulmonary disease (COPD) represents a leading cause of global morbidity and mortality. Genome-wide association studies (GWAS) have implicated numerous genetic variants in lung function impairment, yet confidently identifying the underlying genes and pathways, and translating these findings into mechanistic insight, remains a significant challenge. ObjectivesTo leverage the genetic amenability and high-throughput screening capability of Drosophila melanogaster to determine the role of candidate causal genes in epithelial cell homeostasis. MethodsWe performed a loss-of-function analysis of 60 prioritised lung function candidate causal genes implicated from GWAS in two distinct epithelia: the dorsal thorax and trachea. ResultsWe identified 57/60 tested candidate genes that alter at least one aspect of epithelial morphology and behaviour upon knockdown. With a focus on junctional integrity, cell delamination and tissue growth, we identified 11 genes for further study: Sec6, RpS26, pAbp, Arf102f, Riok1, Sra-1, Inpp5e, CG31759, ssh, eIF6 and Rtf1. Further characterisation found a significant reduction in junctional E-Cadherin levels following Arf102F, Rtf1, RioK1 and Sra-1 knockdown. Following a secondary screen in the Drosophila tracheal system for priority candidates, Sec6 and RpS26 were associated with significant airway defects and a reduction in larval body size. 8/11 priority genes exhibited differential lung gene expression between controls and patients with COPD. ConclusionsThese data demonstrate the amenability of Drosophila melanogaster to perform in vivo functional analyses of candidate causal genes at scale. Initial findings implicate several genes in epithelial homeostasis and integrity, providing new mechanistic understanding and potential therapeutic targets for COPD. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=164 SRC="FIGDIR/small/731340v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@dbff6dorg.highwire.dtl.DTLVardef@15e84f0org.highwire.dtl.DTLVardef@69d97aorg.highwire.dtl.DTLVardef@144f47e_HPS_FORMAT_FIGEXP M_FIG C_FIG

Cell Biology↗