ArticleGigaScience2022
AlcoR: alignment-free simulation, mapping, and visualization of low-complexity regions in biological data.
Article in GigaScience, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed.
- Haplotype-resolved regulation of secondary metabolism in cannabis.Horticulture research · 2026Article
- AniAnn's: alignment-free annotation of tandem repeat arrays using fast average nucleotide identity estimates.Bioinformatics (Oxford, England) · 2026Article
- CB-Search: a method for searching for similar protein motifs with biased compositions.BMC bioinformatics · 2026Article
- Haplotype-resolved genome assemblies of BJ and IMR-90 human fibroblast cell lines reveal extensive structural variation and enable reanalysis of historical sequencing data.Nucleic acids research · 2026Article
- A benchmarking framework for comparative evaluation of low-complexity region detection tools in the human proteome.Scientific reports · 2026Article
- Finding low-complexity DNA sequences with longdust.Bioinformatics (Oxford, England) · 2026Article
- An evaluation of computational methods for reconstruction of human viral DNA genomes.GigaScience · 2026Article
- Article
- Overview and Prospects of DNA Sequence Visualization.International journal of molecular sciences · 2025Review
- Intra-host genomic diversity and integration landscape of human tissue-resident DNA virome.Nucleic acids research · 2024Article
- Article
- AlcoR: alignment-free simulation, mapping, and visualization of low-complexity regions in biological data.GigaScience · 2022Article
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4 authors.
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Abstract
backgroundLow-complexity data analysis is the area that addresses the search and quantification of regions in sequences of elements that contain low-complexity or repetitive elements. For example, these can be tandem repeats, inverted repeats, homopolymer tails, GC-biased regions, similar genes, and hairpins, among many others. Identifying these regions is crucial because of their association with regulatory and structural characteristics. Moreover, their identification provides positional and quantity information where standard assembly methodologies face significant difficulties because of substantial higher depth coverage (mountains), ambiguous read mapping, or where sequencing or reconstruction defects may occur. However, the capability to distinguish low-complexity regions (LCRs) in genomic and proteomic sequences is a challenge that depends on the model's ability to find them automatically. Low-complexity patterns can be implicit through specific or combined sources, such as algorithmic or probabilistic, and recurring to different spatial distances-namely, local, medium, or distant associations.
findingsThis article addresses the challenge of automatically modeling and distinguishing LCRs, providing a new method and tool (AlcoR) for efficient and accurate segmentation and visualization of these regions in genomic and proteomic sequences. The method enables the use of models with different memories, providing the ability to distinguish local from distant low-complexity patterns. The method is reference and alignment free, providing additional methodologies for testing, including a highly flexible simulation method for generating biological sequences (DNA or protein) with different complexity levels, sequence masking, and a visualization tool for automatic computation of the LCR maps into an ideogram style. We provide illustrative demonstrations using synthetic, nearly synthetic, and natural sequences showing the high efficiency and accuracy of AlcoR. As large-scale results, we use AlcoR to unprecedentedly provide a whole-chromosome low-complexity map of a recent complete human genome and the haplotype-resolved chromosome pairs of a heterozygous diploid African cassava cultivar.
conclusionsThe AlcoR method provides the ability of fast sequence characterization through data complexity analysis, ideally for scenarios entangling the presence of new or unknown sequences. AlcoR is implemented in C language using multithreading to increase the computational speed, is flexible for multiple applications, and does not contain external dependencies. The tool accepts any sequence in FASTA format. The source code is freely provided at https://github.com/cobilab/alcor.
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