Bacterial metagenome in plaque, saliva, and tumor samples from individuals with and without OSCC by next-generation sequencing
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Background
Oral dysbiosis has been associated with oral squamous cell carcinoma (OSCC); however, most microbiome studies rely on 16S ribosomal RNA (rRNA) gene sequencing, limiting species-level taxonomic resolution.
Methods
Dental plaque, saliva, and tumor tissue samples from 10 patients with OSCC and dental plaque and saliva samples from 10 healthy controls were analyzed in this exploratory cross-sectional study. DNA was extracted and subjected to shotgun metagenomic sequencing using the Illumina MiSeq platform. Sequence reads were quality filtered with fastp, taxonomically classified using Kraken2 v2.1.3, and species-level abundances were re-estimated with Bracken v2.9 following the removal of human reads and low abundance taxa. Relative abundances were compared using the Mann–Whitney U test with the Benjamini– Hochberg false discovery rate correction, while the Bray–Curtis principal coordinate analysis was used as an exploratory approach to visualize microbial community patterns.
Results
Shotgun metagenomic sequencing revealed distinct bacterial community profiles across the oral microenvironment. Dental plaque exhibited the highest taxonomic diversity and relative abundance. The control plaque was enriched in Streptococcus koreensis, Capnocytophaga sp . oral taxon 878, Treponema sp . Marseille Q4132, and Leptotrichia sp. oral taxon 498, whereas the plaque from patients with OSCC showed a higher relative abundance of Pyramidobacter piscolens , Parvimonas parva , and Gemella sanguinis . Salivary samples displayed lower diversity and a more homogeneous composition, predominantly comprising Capnocytophaga endodontalis , Prevotella jejuni , Aggregatibacter aphrophilus , and Gemella sanguinis . The tumor tissue showed relatively higher abundance of Sellimonas catena , Escherichia coli, Solobacterium moorei , and Lacrimispora sp . HJ-01.
Conclusions
This exploratory study provides species-level characterization of the oral microbiome across multiple oral microenvironments in OSCC and generates hypotheses for future integrative metagenomic and functional studies investigating the potential contribution of oral bacterial communities to OSCC pathogenesis.