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skDER and CiDDER: two scalable approaches for microbial genome dereplication
Rauf Salamzade1,2, Aamuktha Kottapalli1, Lindsay R Kalan1,3,4
1Department of Medical Microbiology and Immunology, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI, USA.
Microbial Genomics
|July 10, 2025
Summary
Genomic dereplication tools skDER and CiDDER streamline microbial genome analysis by selecting representative genomes, reducing computational load and improving evolutionary studies.
Area of Science:
- Genomics
- Bioinformatics
- Microbial Evolution
Background:
- Vast numbers of microbial genomes are available, posing computational challenges for comparative genomics.
- Over-representation of certain lineages in genomic datasets can bias evolutionary analyses.
- Efficient selection of representative genomes is crucial for accurate pangenome investigations.
Purpose of the Study:
- To develop and present skDER and CiDDER, novel tools for genomic dereplication.
- To enable efficient selection of representative microbial genomes for downstream analyses.
- To reduce computational burden and mitigate biases in comparative genomic studies.
Main Methods:
- skDER utilizes nucleotide sequence comparisons and average nucleotide identity (ANI) inference for dereplication.
- CiDDER employs saturation assessment of distinct protein-coding genes for genome selection.
- Tools incorporate features for parameter testing, automated genome downloading, and filtering of plasmids/phages.
Main Results:
- skDER demonstrates efficiency comparable to existing ANI-based tools, maintaining pangenome coverage and adhering to user-defined ANI and aligned fraction (AF) cutoffs.
- CiDDER offers a viable alternative to ANI-based methods, facilitating direct optimization for broad pangenome representation.
- Benchmarking confirms skDER's performance and usability for large-scale microbial genome analysis.
Conclusions:
- skDER and CiDDER effectively address the need for genomic dereplication in microbial research.
- These tools enhance the efficiency and accuracy of comparative genomic studies.
- The developed methods support broader evolutionary and pangenome investigations by providing curated genome subsets.
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