Search bioRxiv⌕ Search

bioRxiv · 10.1101/2024.11.14.623554

Pangenome References Improve Biomarker Estimation from Tumor Sequencing Data

Abstract

It has recently been shown that patients from non-European ancestries are at a higher risk of inappropriate clinical intervention because of inaccurate biomarker estimation, arising from the reference bias inherent in standard methods for determining the tumor genome from sequencing data. Here we demonstrate that these inaccuracies can be reduced by using a pangenome reference appropriate for the patients population. We constructed a novel secondary analysis workflow where the pangenome reference serves as a scaffold for mapping the sequencing reads, and is also included in the relevant panel of normals needed to discriminate between germline and somatic mutations in tumor-only sequencing. This approach detects known somatic mutations in tumor-only sequencing more accurately than the standard GATK somatic calling workflow, prevalent in diagnostic settings for analysis of sequencing data from tumor-only assays, on a standard benchmark tumor sample, HCC1395 (33% relative increase in F1 score). We also assessed the expected clinical impact of our approach by comparing the Tumor Mutational Burden (TMB) calculated from missense somatic mutations called in tumor/normal samples from 6 patients self-reported as belonging to African, 1 to Asian and 3 to European populations respectively. We find that the TMB values calculated from the tumor-only sequencing data analyzed by our workflow more closely approximate the TMB values calculated from the tumor-normal analysis of the same sample, being 35% higher on average, whereas GATK tumor-only analysis generates TMB values 56% higher on average than the tumor-normal analysis of the same sample. Tumor-normal TMB values calculated by the two methods do not vary as drastically, GATK generated values being 13% higher on average, indicating that GATK tumor-only analysis leads to significant overestimation of TMB values, which can be largely corrected by using our workflow when tumor-normal sequencing is not available. These results indicate that pangenome based analysis has the potential to become the new standard for unbiased processing of somatic sequencing samples, following on from its increased adoption for germline sequencing analysis.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Arslan, E., Turgut, D., Kalay, O., Demirkaya-Budak, S., Budak, G., Jain, A.. 2024-11-15. Pangenome References Improve Biomarker Estimation from Tumor Sequencing Data. https://doi.org/10.1101/2024.11.14.623554

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

spatialMET: an open and scalable framework for spatial metabolomics analysis

Mass spectrometry imaging (MSI) enables spatially resolved metabolomics in intact tissue sections, but analysis remains challenging at scale. Existing MSI workflows often require users to combine multiple software tools, while others rely on proprietary vendor software that limits interoperability and reproducibility. To address these challenges, we developed spatialMET, an open-source framework that provides an end-to-end workflow for MSI analysis. spatialMET provides a unified platform for preprocessing, spatial domain detection, and visualization. Downstream analyses include differential abundance testing, spatial autocorrelation and gradient analysis, dimensionality reduction, and correlation network analysis. Spatial domain detection uses hcdist, a C-based hierarchical clustering implementation that substantially reduces runtime and memory use relative to existing R-based approaches. spatialMET can be run through an interactive R Shiny application or as a standalone command-line workflow for larger datasets or high-performance computing environments. Applied to mouse small cell lung cancer MALDI-MSI data containing 284,673 pixels, spatialMET identified tumor-associated, stromal, and adjacent lung spatial domains that aligned with matched histology. Differential abundance analysis identified 117 m/z features that differed between tumor and stromal regions, while spatial autocorrelation analyses revealed spatially structured abundance patterns. Applying spatialMET to mouse lung adenocarcinoma data from an entire lung lobe containing 338,477 pixels further demonstrated scalability and captured spatial heterogeneity across tumor and surrounding lung tissue. In summary, spatialMET provides a scalable, open-source framework for end-to-end spatial metabolomics analysis, and it is distributed as a Docker container for reproducible deployment. Source code and installation instructions are available at https://github.com/biodatalab/spatialMET.

bioinformatics↗

Probing the transcriptome response to shivering in skeletal muscle using a multilayered bioinformatics approach

Cold acclimation holds therapeutic potential for improving metabolic health. We previously demonstrated that repeated cold-induced shivering enhances insulin sensitivity in humans. However, the molecular pathways that underlie the skeletal muscle shivering response, and how these relate to beneficial physiological effects, remain poorly understood. In this study, we combined complementary bioinformatics approaches to allow in-depth analysis of the transcriptomic response of human skeletal muscle to repeated shivering. We identified a robust transcriptional signature and show a sex-specific component in the shivering skeletal muscle response, which seemed to diminish following cold adaptation. Our findings provide mechanistic insights into cold-induced muscle adaptations, shed light on potential interesting molecular targets for further investigation, and emphasize the importance of including both sexes in future cold acclimation studies.

bioinformatics↗

An Information Geometry approach to model topological trajectories and Gene Expression Radius from UMAP geometry.

Understanding the relationship between gene expression dynamics and cellular identity remains a central challenge in single cell biology. Here, we introduce a novel computational and mathematical framework that integrates information geometry, fuzzy topology, and UMAP analysis to model gene expression landscapes derived from single cell RNA sequencing data. We formalize gene expression data as a fuzzy topological space, where interactions between expression points are governed by probabilistic distributions inspired by manifold learning approaches such as UMAP. Within this framework, we define an information geometric structure through a Fisher metric induced by these distributions, enabling the computation of geodesic trajectories that capture cellular differentiation processes. A key contribution of this work is the derivation of analytical conditions, expressed as expression radius formulas, that characterize local neighborhoods in gene expression space. These conditions allow for the identification of genes associated with stem cell states and predictions in transitional cell types in future work. Application of the proposed framework to single cell datasets reveals biologically meaningful gene sets enriched in key regulatory pathways and transcription factors, demonstrating the capacity of our approach to uncover latent structure in complex gene expression data. Our results suggest that integrating differential geometry with statistical learning theory offers a powerful paradigm for modeling genotype and phenotype relationships and cellular state transitions, with potential implications for precision medicine and systems biology.

bioinformatics↗