首页> 外文期刊>Nanoscale >Surface charge and particle size determine the metabolic fate of dendritic polyglycerols
【24h】

Surface charge and particle size determine the metabolic fate of dendritic polyglycerols

机译:表面电荷和粒子大小确定代谢树突聚甘油的命运

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Dendritic polyglycerols (dPG) are water soluble, polyether-based nanomaterials which hold great potential in diagnostic as well as therapeutic applications. In order to translate them for in vivo applications, a systematic assessment regarding their cell and tissue interactions as well as their metabolic fate in vivo is a crucial step. Herein, we explore the structure-activity relationship of three different sizes (ca. 3, 5, and 10 nm) of neutral dendritic polyglycerol (dPG) and their corresponding negatively charged sulfate analogs (dPGS) on their in vitro and in vivo characteristics. Cellular metabolic activity was studied in A431 and HEK293 cells. Biomolecular corona formation was determined using an electrophoretic mobility shift assay, which showed an increased protein binding of the dPGS even with serum concentrations as low as 20%. An in situ technique, microscale thermophoresis, was employed to address the binding affinities of these nanomaterials with serum proteins such as serum albumin, apo-transferrin, and fibrinogen. In addition, nanoparticle-cell interactions were studied in differentiated THP-1 cells which showed a charge dependent scavenger receptor-mediated uptake. In line with this data, detailed biodistribution and small animal PET imaging studies in Wistar rats using Ga-68-labeled dPG-/dPGS-NOTA conjugates showed that the neutral dPG-NOTA conjugates were quantitatively excreted via the kidneys with a subsequent hepatobiliary excretion with an increase in their size, whereas the polysulfated analogs (dPGS-NOTA) were sequestered preferentially in the liver and kidneys irrespective of their size. Taken together, this systematic study accentuates that the pharmacokinetics of dPGs is critically dependent on the overall size and charge and can be, fine-tuned for the intended requirements in nano-theranostics.
机译:树枝状聚甘油(dPG)是水溶性,polyether-based持有大的纳米材料潜在的诊断及治疗应用程序。体内应用程序,系统的评估关于他们的细胞和组织的互动以及他们的体内代谢的命运是至关重要的的一步。三个不同大小的关系(ca。3、5、中性树突聚甘油和10海里)(dPG)及其相应的带负电硫酸酯类似物在体外和(dpg)体内的特点。研究了在A431和HEK293细胞。生物分子形成电晕使用一个电泳迁移率改变分析,显示增加蛋白质绑定的吗dpg甚至与血清浓度低20%。热迁移,来解决绑定的这些纳米材料上的相似之处如血清白蛋白、血清蛋白质apo-transferrin和纤维蛋白原。nanoparticle-cell相互作用进行了研究分化THP-1细胞显示相关的清道夫受体介导吸收。根据这些数据,详细的biodistribution和小动物PET成像研究Wistar鼠使用ga - 68 - dPG标记/ dPGS-NOTA共轭表明,中性dPG-NOTA轭合物定量通过肾脏的排泄后来与一个肝胆的排泄增加他们的大小,而polysulfated类似物(dPGS-NOTA)隔离优先在肝脏和肾脏无论大小。系统的研究强调了,药物动力学的dpg非常依赖整体尺寸和电荷,可以,调整的要求nano-theranostics。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号