Department of Mechanical and Aerospace Engineering, North Carolina State University, 911 Oval Dr, Raleigh, NC, 27695-7910, USA.
Joint Department of Biomedical Engineering, North Carolina State University and University of North Carolina at Chapel Hill, 911 Oval Dr, Raleigh, NC, 27695-7910, USA.
Med Biol Eng Comput. 2018 Nov;56(11):1949-1958. doi: 10.1007/s11517-018-1818-z. Epub 2018 Apr 26.
The advent of multifunctional nanoparticle has enabled numerous innovative strategies in diagnostics, imaging, and cancer therapy. Despite the intense research efforts in developing new nanoparticles and surface bonding ligands, one major obstacle in achieving highly effective treatment, including minimizing detrimental side effects, is the inability to deliver drug-carrying nanoparticles from the injection point directly to the tumor site. The present study seeks to employ a direct nanodrug delivery methodology to feed multifunctional nanoparticles directly to tumor vasculatures, sparing healthy tissue. An important aspect to examine is how the interactions between such nanoparticles and relatively large red blood cells would affect the transport and delivery efficiency of nanodrugs. So, a novel computer simulation model has been developed to study nanoparticle transport in a representative human hepatic artery system, subject to shear-induced diffusion of nanoparticles due to hydrodynamic interactions with red blood cells. The particle-size effect was also evaluated by comparing the dynamics of nanoparticles with microspheres. Results from computer simulations under physiologically realistic conditions indicate that shear-induced diffusion has a significant effect on nanoparticle transport, even in large arteries. Nevertheless, as documented, direct nanodrug delivery to tumor-feeding hepatic artery branches is feasible. Graphical abstract Direct nanodrug delivery from injection point to tumor-feeding artery branch.
多功能纳米粒子的出现使得在诊断、成像和癌症治疗方面有了许多创新策略。尽管在开发新型纳米粒子和表面结合配体方面进行了大量研究,但在实现高效治疗方面,包括最大限度地减少有害的副作用,一个主要障碍是无法将载药纳米粒子从注射部位直接输送到肿瘤部位。本研究旨在采用直接纳米药物输送方法,将多功能纳米粒子直接输送到肿瘤血管,从而保护健康组织。需要研究的一个重要方面是,这些纳米粒子与相对较大的红细胞之间的相互作用如何影响纳米药物的输送和传递效率。因此,已经开发了一种新的计算机模拟模型,以研究在代表人体肝动脉系统中,由于与红细胞的流体动力学相互作用导致的剪切诱导扩散,纳米粒子的输运。还通过比较微球的动力学来评估粒径效应。在生理现实条件下进行计算机模拟的结果表明,即使在大动脉中,剪切诱导扩散对纳米粒子的输运也有显著影响。然而,正如记录的那样,向肿瘤供养肝动脉分支的直接纳米药物输送是可行的。
注:该翻译仅供参考,具体内容请以英文原文为准。