Optimization of metagenomic detection method for human breast milk microbiome
Zhang, Q.; Zhang, Y.; Zhu, J.; Gao, Y.; Zeng, W.; Qi, H.
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This study aims to optimize the metagenomic detection methodology of the human breast milk microbiome and analyze its composition. Twenty-two milk samples were collected from the left and right sides of lactating women during re-examinations at the Haidian Maternal and Child Health Hospital, Beijing. Microbial cell wall disruption parameters were optimized, and a nucleic acid extraction method was developed to construct a microbial DNA/RNA library. Metagenomic next-generation sequencing (mNGS) sequencing was performed, and microbial composition was analyzed using the k- mer Lowest Common Ancestor (LCA) method with a self-generated database constructed via Kraken2 software. Data showed Q20 > 95% and Q30 > 90%, with an average total data volume of 5,567 {+/-} 376.6 Mb and non-human sequence data of 445.1 {+/-} 63.75 Mb, significantly enhancing sequencing efficiency. The microbiome included 21 phyla, 234 genera, and 487 species, with Firmicutes and Proteobacteria as dominant phyla. Predominant genera included Staphylococcus and Streptococcus, and major species were Staphylococcus aureus, Streptococcus bradystis, and Staphylococcus epidermidis. Species levels exhibited significant variations among different individuals. Microbial profiles of left- and right-sided milk samples were consistent at the phylum, genus, and species levels. In addition to common bacteria, diverse viral, eukaryotic, and archaeal sequences were detected. This study refined metagenomic detection methods for human breast milk microbiota. Specific flora colonization occurred in healthy breast milk, with the left and right sides exhibiting both correlations and distinct flora environments. ImportanceBreast milk is a vital source of nutrition and immunity for infants, with its microbial composition playing a critical role in shaping the neonatal gut microbiome and supporting early development. However, technical challenges in detecting microorganisms in milks complex, lipid-rich environment have limited understanding of the diversity and function of these microbial communities. This study developed an optimized metagenomic sequencing method to analyze the microbial communities in breast milk from healthy mothers, identifying a wide array of bacteria, viruses, eukaryotes, and archaea. Key bacterial genera such as Staphylococcus and Streptococcus were predominant, with specific flora exhibiting inter-individual variability. Additionally, the study revealed distinct yet correlated microbial environments in the milk from the left and right breasts. These findings advance the understanding of breast milk microbiota and provide a foundation for exploring its implications for maternal and infant health.
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