Institut Galien Paris-Sud, CNRS, Univ. Paris-Sud, Châtenay-Malabry, France.
Institut Galien Paris-Sud, CNRS, Univ. Paris-Sud, Châtenay-Malabry, France; Centro de Ciências Biológicas e Sociais Aplicadas, Universidade Estadual da Paraíba, João Pessoa, PB 58070450, Brazil.
Int J Pharm. 2017 Nov 5;532(2):769-778. doi: 10.1016/j.ijpharm.2017.04.048. Epub 2017 Apr 24.
The understanding of complement activation by nanomaterials is a key to a rational design of safe and efficient nanomedicines. This work proposed a systematic study investigating how molecular design of nanoparticle coronas made of dextran impacts on mechanisms that trigger complement activation. The nanoparticles used for this work consisted of dextran-coated poly(isobutylcyanoacrylate) (PIBCA) nanoparticles have already been thoroughly characterized. Their different capacity to trigger complement activation established on the cleavage of the protein C3 was also already described making these nanoparticles good models to investigate the relation between the molecular feature of their corona and the mechanism by which they triggered complement activation. Results of this new study show that complement activation pathways can be selected by distinct architectures formed by dextran chains composing the nanoparticle corona. Assumptions that explain the relation between complement activation mechanisms triggered by the nanoparticles and the nanoparticle corona molecular feature were proposed. These results are of interest to better understand how the design of dextran-coated nanomaterials will impact interactions with the complement system. It can open perspectives with regard to the selection of a preferential complement activation pathway or prevent the nanoparticles to activate the complement system, based on a rational choice of the corona configuration.
纳米材料补体激活机制的理解是合理设计安全有效的纳米药物的关键。本工作提出了一项系统研究,旨在探讨由葡聚糖组成的纳米颗粒冠层的分子设计如何影响触发补体激活的机制。本工作中使用的纳米颗粒由葡聚糖包覆的聚异丁基氰基丙烯酸酯(PIBCA)纳米颗粒组成,已经进行了全面的表征。它们在触发补体激活的蛋白 C3 裂解方面的不同激活能力也已经被描述,这使得这些纳米颗粒成为研究其冠层的分子特征与触发补体激活的机制之间关系的良好模型。这项新研究的结果表明,补体激活途径可以通过葡聚糖链组成的纳米颗粒冠层形成的不同结构来选择。提出了一些假设来解释由纳米颗粒触发的补体激活机制与纳米颗粒冠层分子特征之间的关系。这些结果对于更好地理解如何设计葡聚糖包覆的纳米材料将影响与补体系统的相互作用具有重要意义。它可以根据冠层结构的合理选择,为选择优先的补体激活途径或防止纳米颗粒激活补体系统提供新的思路。