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Wijesekera, S.

Publications and source records attributed to Wijesekera, S..

2 recordsLinked to original sources

Characterising tandem repeat complexities across long-read sequencing platforms with TREAT

Tandem repeats (TR) play important roles in genomic variation and disease risk in humans. Long-read sequencing allows for the accurate characterisation of TRs, however, the underlying bioinformatics perspectives remain challenging. We present otter and TREAT: otter is a fast targeted local assembler, cross-compatible across different sequencing platforms. It is integrated in TREAT, an end-to-end workflow for TR characterisation, visualisation and analysis across multiple genomes. In a comparison with existing tools based on long-read sequencing data from both Oxford Nanopore Technology (ONT, Simplex and Duplex) and PacBio (Sequel 2 and Revio), otter and TREAT achieved state-of-the-art genotyping and motif characterisation accuracy. Applied to clinically relevant TRs, TREAT/otter significantly identified individuals with pathogenic TR expansions. When applied to a case-control setting, we significantly replicated previously reported associations of TRs with Alzheimers Disease, including those near or within APOC1 (p=2.63x10-9), SPI1 (p=6.5x10-3) and ABCA7 (p=0.04) genes. We finally used TREAT/otter to systematically evaluate potential biases when genotyping TRs using diverse ONT and PacBio long-read sequencing datasets. We showed that, in rare cases (0.06%), long-read sequencing suffers from coverage drops in TRs, including the disease-associated TRs in ABCA7 and RFC1 genes. Such coverage drops can lead to TR mis-genotyping, hampering the accurate characterisation of TR alleles. Taken together, our tools can accurately genotype TR across different sequencing technologies and with minimal requirements, allowing end-to-end analysis and comparisons of TR in human genomes, with broad applications in research and clinical fields.

bioinformatics↗

MotifScope: a multi-sample motif discovery and visualization tool for tandem repeats

Tandem repeats (TRs) constitute a significant portion of the human genome, exhibiting high levels of polymorphism due to variations in size and motif composition. These variations have been associated with various neuropathological disorders, underscoring the clinical importance of TRs. Furthermore, the motif structure of these repeats can offer valuable insights into evolutionary dynamics and population structure. However, analysis of TRs has been hampered by the limitations of short-read sequencing technology, which lacks the ability to fully capture the complexity of these sequences. With long-read data becoming more accessible, there is now also a need for tools to explore and characterize these TRs. In this study, we introduce MotifScope, a novel algorithm for visualization of TRs in their population context based on a de novo k-mer approach for motif discovery. Comparative analysis against three established tools, uTR, TRF, and vamos, reveals that MotifScope can identify a greater number of motifs and more accurately represent the actual repeat sequence. Additionally, MotifScope enables comparison of sequencing reads within an individual and assemblies across different individuals, showing its applicability in diverse genomic contexts. We demonstrate potential applications of MotifScope in diverse fields, including population genetics, clinical settings, and forensic analyses.

genomics↗