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The study analyzed discrepancies across microbial genome reference databases and found significant variations in fungal genomes, but strong consistency in viral reference resources. The research utilized the Cross-DB Genomic Comparator (CDGC) framework to systematically capture discrepancies in genome assemblies. The findings highlight the importance of addressing these inconsistencies to ensure reliable metagenomic analysis.

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Abstract

Metagenomic analysis of microbial communities relies significantly on the quality and completeness of reference genomes, which allow researchers to compare sequencing reads against reference genome collections to reveal essential community characteristics. However, the reliability of these analyses is often compromised by substantial discrepancies across existing reference resources, including differences in genome content, assembly fragmentation, taxonomic representation, and metadata completeness. While these inconsistencies are known to introduce bias, the extent of divergence between major databases remains largely unknown. Here, we present a comprehensive benchmark of discrepancies across multiple widely used microbial genome reference resources. We developed the Cross-DB Genomic Comparator (CDGC), which utilizes reference genome alignments to systematically capture discrepancies in genome assemblies across reference databases. Applying this framework, we found that 99% of viral genomes were identical across databases, indicating strong consistency in viral reference resources. In contrast, fungal genomes showed substantially greater variability: although 82% of assemblies exhibited at least 90% similarity, only 7% were identical across databases. More concerning, we identified a subset of 461 assemblies with less than 50% similarity, suggesting the presence of technical artifacts, incomplete assemblies, or damaged genome files that require closer examination. Collectively, these results demonstrate that systematic cross-database benchmarking provides a critical mechanism for refining the accuracy of individual reference databases and advancing efforts towards more unified and reliable universal reference genomes.

Key findings

  • 99% of viral genomes were identical across databases
  • Fungal genomes showed substantially greater variability, with 82% of assemblies exhibiting differences
  • Discrepancies in genome content, assembly fragmentation, taxonomic representation, and metadata completeness were observed across reference databases

Keywords

Reference genomeGenomeBenchmark (surveying)Computational biologyGenomicsConsistency (knowledge bases)

Identifiers

Journal
bioRxiv (Cold Spring Harbor Laboratory)
Year
2026