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首页> 外文期刊>Toxicology in vitro: an international journal published in association with BIBRA >A 3D human placenta-on-a-chip model to probe nanoparticle exposure at the placental barrier
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A 3D human placenta-on-a-chip model to probe nanoparticle exposure at the placental barrier

机译:胎盘屏障探测纳米粒子暴露的3D人胎盘型号模型

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摘要

With the commercialization of nanomaterials, environmental exposure to nanoparticles (NPs) has raised great concerns due to the long-term effects to human body, particularly to pregnant women. Previous studies found that NPs had an adverse impact on placenta in mice, but care must be taken when extrapolating the results to human pregnancy in consideration of the great difference between species. Here, we proposed a micro engineered 3D placental barrier-on-a-chip microdevice and further explored complicated placental responses to NPs exposure in vitro. The microdevice recreated near-physiological 3D microenvironment and dynamic conditions in fetal maternal circulation combined with the extracellular matrix and flow. With the exposure to titanium dioxide nanoparticles (TiO2-NPs), a common nanomaterial, a series of placental responses were investigated, including oxidative stress, cell apoptosis, barrier permeability, and maternal immune cell behavior. By contrast to oxidative stress and cell apoptosis, placental barrier integrity and maternal immune cells were greatly influenced even with low concentrated NPs, suggesting the potential damages triggered by NPs in our daily life. Collectively, this in vitro experimental model of human placenta provides a simple platform to study environmental exposure to NPs, and might be potential for a wide range of applications in biological study, disease treatment and drug assessment.
机译:随着纳米材料的商业化,由于对人体的长期影响,纳米颗粒(NPS)对纳米颗粒(NPS)的环境暴露提出了极大的担忧,尤其是孕妇。以前的研究发现,NPS对小鼠的胎盘产生不利影响,但考虑到物种之间的巨大差异,将结果推断出对人体妊娠的结果。在这里,我们提出了一种微型工程化3D胎盘屏障的芯片微曲线,并进一步探索了在体外对NPS暴露的复杂胎盘反应。微型微生物在胎儿母体循环中重现近生理3D微环境和动态条件,结合细胞外基质和流量。通过暴露于二氧化钛纳米颗粒(TiO 2-NPS),研究了常见的纳米材料,研究了一系列胎盘反应,包括氧化应激,细胞凋亡,阻隔渗透性和母体免疫细胞行为。相反,与氧化应激和细胞凋亡相比,即使具有低浓缩的NPS,胎盘阻隔完整性和母体免疫细胞也会受到大量影响,暗示我们日常生活中NPS引发的潜在损害。统称,这种体外实验模型人类胎盘提供了一个简单的平台,用于研究NPS的环境暴露,并且可能是在生物学研究,疾病治疗和药物评估中进行广泛应用的潜力。

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