Yang Qing, Chen Di, Liu Xi, Li Wenjie, Zheng Huizhen, Cai Xiaoming, Li Ruibin
Center for Genetic Epidemiology and Genomics, School of Public Health, Suzhou Medical College, Soochow University, Suzhou, Jiangsu 215123, China.
Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions, Suzhou Medical College, Soochow University, Suzhou, Jiangsu 215123, China.
Proc Natl Acad Sci U S A. 2025 May 20;122(20):e2500552122. doi: 10.1073/pnas.2500552122. Epub 2025 May 12.
Breast milk is crucial for infant health, offering essential nutrients and immune protection. However, despite increasing exposure risks from nanoparticles (NPs), their potential infiltration into human breast milk remains poorly understood. This study provides a comprehensive chemical profile of NPs in human breast milk, analyzing their elemental composition, surface charge, hydrodynamic size, and crystallinity. NPs were detected in 42 out of 53 milk samples, with concentrations reaching up to 1.12 × 10 particles/mL. These particles comprised nine elements, with O, Si, Fe, Cu, and Al being the most frequently detected across all samples. We establish a mechanistic axis for NP infiltration, involving penetration of the intestine/air-blood barriers, circulation in blood vessels, crossing the blood-milk barrier via transcytosis or immune cell-mediated transfer, and eventual accumulation in milk. Structure-activity relationship analysis reveals that smaller, neutral-charged NPs exhibit stronger infiltration capacity, offering potential for regulating NP behavior at biological barriers through engineering design. This study provides the chemical profiles of NPs in human breast milk and uncovers their infiltration pathways.
母乳对婴儿健康至关重要,能提供必需的营养物质和免疫保护。然而,尽管纳米颗粒(NPs)的暴露风险不断增加,但其潜在渗入人母乳的情况仍知之甚少。本研究提供了人母乳中纳米颗粒的全面化学特征,分析了它们的元素组成、表面电荷、流体动力学尺寸和结晶度。在53份母乳样本中的42份中检测到了纳米颗粒,浓度高达1.12×10颗粒/毫升。这些颗粒包含9种元素,其中氧、硅、铁、铜和铝在所有样本中最常被检测到。我们建立了纳米颗粒渗入的机制轴,包括穿透肠/气血屏障、在血管中循环、通过转胞吞作用或免疫细胞介导的转移穿过血乳屏障,最终在乳汁中积累。构效关系分析表明,较小的、带中性电荷的纳米颗粒表现出更强的渗入能力,这为通过工程设计调节纳米颗粒在生物屏障处的行为提供了可能性。本研究提供了人母乳中纳米颗粒的化学特征,并揭示了它们的渗入途径。