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Alla Mikheenko

dblp:177/8373 · DBLP profile ↗
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6ranked-venue papers
5as first author
0since 2021 · last 2020
0000-0003-3400-9719ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Applied, interdisciplinary, general and emerging computing · 6 · 5 first-author

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Interdisciplinary, comprehensive, and emerging computing
5 papers
Bioinformatics and computational biology · 100%
Computer graphics and multimedia
1 paper
Visualization and visual analytics · 100%

Topics — the 9 heaviest of 9, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Bioinformatics and computational biology › sequence analysis › sequence assembly
genome assembly
1.552020
TandemTools: mapping long reads and assessing/improving assembly quality in extra-long tandem repeats · Bioinform. 2020
Assembly Graph Browser: interactive visualization of assembly graphs · Bioinform. 2019
Versatile genome assembly evaluation with QUAST-LG · Bioinform. 2018
Bioinformatics and computational biology › sequence analysis › sequence assembly › genome assembly
assembly quality assessment
0.832018
Versatile genome assembly evaluation with QUAST-LG · Bioinform. 2018
Icarus: visualizer for de novo assembly evaluation · Bioinform. 2016
MetaQUAST: evaluation of metagenome assemblies · Bioinform. 2016
Bioinformatics and computational biology › sequence analysis › sequence assembly
assembly visualization
0.212016
Icarus: visualizer for de novo assembly evaluation · Bioinform. 2016
Bioinformatics and computational biology
metagenomics
0.212016
MetaQUAST: evaluation of metagenome assemblies · Bioinform. 2016
Bioinformatics and computational biology › metagenomics
metagenomic assembly
0.212016
MetaQUAST: evaluation of metagenome assemblies · Bioinform. 2016
Bioinformatics and computational biology › sequence analysis
long-read sequencing
0.222020
TandemTools: mapping long reads and assessing/improving assembly quality in extra-long tandem repeats · Bioinform. 2020
Versatile genome assembly evaluation with QUAST-LG · Bioinform. 2018
Visualization and visual analytics › graph visualization
interactive graph visualization
0.112019
Assembly Graph Browser: interactive visualization of assembly graphs · Bioinform. 2019
Bioinformatics and computational biology
genomics
0.112016
Icarus: visualizer for de novo assembly evaluation · Bioinform. 2016
Bioinformatics and computational biology › genomics
next-generation sequencing data analysis
0.112016
Icarus: visualizer for de novo assembly evaluation · Bioinform. 2016

Methods — techniques the papers use, named apart from their topics

interactive visualization · 0.8graph contraction · 0.8read mapping · 0.4assembly polishing · 0.4upper bound assembly computation · 0.3reference-based assembly comparison · 0.3reference-based assembly assessment · 0.2chimeric contig detection · 0.2alignment-based contig evaluation · 0.2
YearPublicationVenuePosition
2020 TandemTools: mapping long reads and assessing/improving assembly quality in extra-long tandem repeats
abstract
MOTIVATION: Extra-long tandem repeats (ETRs) are widespread in eukaryotic genomes and play an important role in fundamental cellular processes, such as chromosome segregation. Although emerging long-read technologies have enabled ETR assemblies, the accuracy of such assemblies is difficult to evaluate since there are no tools for their quality assessment. Moreover, since the mapping of error-prone reads to ETRs remains an open problem, it is not clear how to polish draft ETR assemblies. RESULTS: To address these problems, we developed the TandemTools software that includes the TandemMapper tool for mapping reads to ETRs and the TandemQUAST tool for polishing ETR assemblies and their quality assessment. We demonstrate that TandemTools not only reveals errors in ETR assemblies but also improves the recently generated assemblies of human centromeres. AVAILABILITY AND IMPLEMENTATION: https://github.com/ablab/TandemTools. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
Alla Mikheenko, Andrey V. Bzikadze, Alexey A. Gurevich, Karen H. Miga, Pavel A. Pevzner
Bioinform.1
2020 Extending rnaSPAdes functionality for hybrid transcriptome assembly
abstract
BACKGROUND: De novo RNA-Seq assembly is a powerful method for analysing transcriptomes when the reference genome is not available or poorly annotated. However, due to the short length of Illumina reads it is usually impossible to reconstruct complete sequences of complex genes and alternative isoforms. Recently emerged possibility to generate long RNA reads, such as PacBio and Oxford Nanopores, may dramatically improve the assembly quality, and thus the consecutive analysis. While reference-based tools for analysing long RNA reads were recently developed, there is no established pipeline for de novo assembly of such data. RESULTS: In this work we present a novel method that allows to perform high-quality de novo transcriptome assemblies by combining accuracy and reliability of short reads with exon structure information carried out from long error-prone reads. The algorithm is designed by incorporating existing hybridSPAdes approach into rnaSPAdes pipeline and adapting it for transcriptomic data. CONCLUSION: To evaluate the benefit of using long RNA reads we selected several datasets containing both Illumina and Iso-seq or Oxford Nanopore Technologies (ONT) reads. Using an existing quality assessment software, we show that hybrid assemblies performed with rnaSPAdes contain more full-length genes and alternative isoforms comparing to the case when only short-read data is used.
Andrey D. Prjibelski, Giuseppe D. Puglia, Dmitry Antipov, Elena Bushmanova, Daniela Giordano, Alla Mikheenko, Domenico Vitale, Alla L. Lapidus
BMC Bioinform.6
2019 Assembly Graph Browser: interactive visualization of assembly graphs
abstract
SUMMARY: Currently, most genome assembly projects focus on contigs and scaffolds rather than assembly graphs that provide a more comprehensive representation of an assembly. Since interactive visualization of large assembly graphs remains an open problem, we developed an Assembly Graph Browser (AGB) tool that visualizes large assembly graphs, extending the functionality of previously developed visualization approaches. Assembly Graph Browser includes a number of novel functions including repeat analysis, construction of the contracted assembly graphs (i.e. the graphs obtained by collapsing a selected set of edges) and a new approach to visualizing large assembly graphs. AVAILABILITY AND IMPLEMENTATION: http://www.github.com/almiheenko/AGB. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
Alla Mikheenko, Mikhail Kolmogorov
Bioinform.1
2018 Versatile genome assembly evaluation with QUAST-LG
abstract
Motivation: The emergence of high-throughput sequencing technologies revolutionized genomics in early 2000s. The next revolution came with the era of long-read sequencing. These technological advances along with novel computational approaches became the next step towards the automatic pipelines capable to assemble nearly complete mammalian-size genomes. Results: In this manuscript, we demonstrate performance of the state-of-the-art genome assembly software on six eukaryotic datasets sequenced using different technologies. To evaluate the results, we developed QUAST-LG-a tool that compares large genomic de novo assemblies against reference sequences and computes relevant quality metrics. Since genomes generally cannot be reconstructed completely due to complex repeat patterns and low coverage regions, we introduce a concept of upper bound assembly for a given genome and set of reads, and compute theoretical limits on assembly correctness and completeness. Using QUAST-LG, we show how close the assemblies are to the theoretical optimum, and how far this optimum is from the finished reference. Availability and implementation: http://cab.spbu.ru/software/quast-lg. Supplementary information: Supplementary data are available at Bioinformatics online.
Alla Mikheenko, Andrey D. Prjibelski, Vladislav Saveliev, Dmitry Antipov, Alexey A. Gurevich
Bioinform.1
2016 MetaQUAST: evaluation of metagenome assemblies
abstract
UNLABELLED: During the past years we have witnessed the rapid development of new metagenome assembly methods. Although there are many benchmark utilities designed for single-genome assemblies, there is no well-recognized evaluation and comparison tool for metagenomic-specific analogues. In this article, we present MetaQUAST, a modification of QUAST, the state-of-the-art tool for genome assembly evaluation based on alignment of contigs to a reference. MetaQUAST addresses such metagenome datasets features as (i) unknown species content by detecting and downloading reference sequences, (ii) huge diversity by giving comprehensive reports for multiple genomes and (iii) presence of highly relative species by detecting chimeric contigs. We demonstrate MetaQUAST performance by comparing several leading assemblers on one simulated and two real datasets. AVAILABILITY AND IMPLEMENTATION: http://bioinf.spbau.ru/metaquast CONTACT: [email protected] SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
Alla Mikheenko, Vladislav Saveliev, Alexey A. Gurevich
Bioinform.1
2016 Icarus: visualizer for de novo assembly evaluation
abstract
: Data visualization plays an increasingly important role in NGS data analysis. With advances in both sequencing and computational technologies, it has become a new bottleneck in genomics studies. Indeed, evaluation of de novo genome assemblies is one of the areas that can benefit from the visualization. However, even though multiple quality assessment methods are now available, existing visualization tools are hardly suitable for this purpose. Here, we present Icarus-a novel genome visualizer for accurate assessment and analysis of genomic draft assemblies, which is based on the tool QUAST. Icarus can be used in studies where a related reference genome is available, as well as for non-model organisms. The tool is available online and as a standalone application. AVAILABILITY AND IMPLEMENTATION: http://cab.spbu.ru/software/icarus CONTACT: [email protected] information: Supplementary data are available at Bioinformatics online.
Alla Mikheenko, Gleb Valin, Andrey D. Prjibelski, Vladislav Saveliev, Alexey A. Gurevich
Bioinform.1