globalchange  > 气候变化事实与影响
DOI: 10.1289/ehp.1409271
论文题名:
Bidirectional Transfer Study of Polystyrene Nanoparticles across the Placental Barrier in an ex Vivo Human Placental Perfusion Model
作者: Stefanie Grafmueller; 1; 2; 3 Pius Manser; 1 Liliane Diener; 1 Pierre-; ré Diener; 4 Xenia Maeder-Althaus; 1 Lionel Maurizi; 5 Wolfram Jochum; 4 Harald F. Krug; 6 Tina Buerki-Thurnherr; 1 Ursula von M; ach; 2; Peter Wick1
刊名: Environmental Health Perspectives
ISSN: 0091-7337
出版年: 2015
卷: Volume 123, 期:Issue 12
起始页码: 1280
语种: 英语
英文摘要: Background: Nanoparticle exposure in utero might not be a major concern yet, but it could become more important with the increasing application of nanomaterials in consumer and medical products. Several epidemiologic and in vitro studies have shown that nanoparticles can have potential toxic effects. However, nanoparticles also offer the opportunity to develop new therapeutic strategies to treat specifically either the pregnant mother or the fetus. Previous studies mainly addressed whether nanoparticles are able to cross the placental barrier. However, the transport mechanisms underlying nanoparticle translocation across the placenta are still unknown.

Objectives: In this study we examined which transport mechanisms underlie the placental transfer of nanoparticles.

Methods: We used the ex vivo human placental perfusion model to analyze the bidirectional transfer of plain and carboxylate modified polystyrene particles in a size range between 50 and 300 nm.

Results: We observed that the transport of polystyrene particles in the fetal to maternal direction was significantly higher than for the maternal to fetal direction. Regardless of their ability to cross the placental barrier and the direction of perfusion, all polystyrene particles accumulated in the syncytiotrophoblast of the placental tissue.

Conclusions: Our results indicate that the syncytiotrophoblast is the key player in regulating nanoparticle transport across the human placenta. The main mechanism underlying this translocation is not based on passive diffusion, but is likely to involve an active, energy-dependent transport pathway. These findings will be important for reproductive toxicology as well as for pharmaceutical engineering of new drug carriers.
URL: https://ehp.niehs.nih.gov/1409271
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/12666
Appears in Collections:气候变化事实与影响
气候变化与战略

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作者单位: 1Laboratory for Particles-Biology Interactions, Empa, St. Gallen, Switzerland; 2Perinatal Pharmacology, Department of Obstetrics, University Hospital Zurich, Zurich, Switzerland; 3Graduate School for Cellular and Biomedical Sciences, University of Berne, Berne, Switzerland; 4Institute of Pathology, Cantonal Hospital St. Gallen, St. Gallen, Switzerland; 5Powder Technology Laboratory, Ecole Polytechnique Federale de Lausanne, Lausanne, Switzerland; 6International Research Cooperations, Empa, St. Gallen, Switzerland

Recommended Citation:
Stefanie Grafmueller,1,2,et al. Bidirectional Transfer Study of Polystyrene Nanoparticles across the Placental Barrier in an ex Vivo Human Placental Perfusion Model[J]. Environmental Health Perspectives,2015-01-01,Volume 123(Issue 12):1280
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