首页 | 本学科首页   官方微博 | 高级检索  
   检索      


The margination propensity of spherical particles for vascular targeting in the microcirculation
Authors:Francesco Gentile  Antonio Curcio  Ciro Indolfi  Mauro Ferrari  Paolo Decuzzi
Institution:(1) Center of Bio-/Nanotechnology and -/Engineering for Medicine University of Magna Graecia at Catanzaro, Viale Europa - Loc. Germaneto, 88100 Catanzaro, Italy;(2) Division of Cardiology, University of Magna Graecia at Catanzaro, Viale Europa - Loc. Germaneto, 88100 Catanzaro, Italy;(3) The University of Texas Health Science Center, Houston 1825 Pressler St, Houston Texas, 77030, USA;(4) M.D. Anderson Cancer Center and Rice University, 1825 Pressler St, Houston Texas, 77030, USA
Abstract:The propensity of circulating particles to drift laterally towards the vessel walls (margination) in the microcirculation has been experimentally studied using a parallel plate flow chamber. Fluorescent polystyrene particles, with a relative density to water of just 50 g/cm 3comparable with that of liposomal or polymeric nanoparticles used in drug delivery and bio-imaging, have been used with a diameter spanning over three order of magnitudes from 50 nm up to 10 μm. The number  align= of particles marginating per unit surface have been measured through confocal fluorescent microscopy for a horizontal chamber, and the corresponding total volume  align= of particles has been calculated. Scaling laws have been derived as a function of the particle diameter d. In horizontal capillaries, margination is mainly due to the gravitational force for particles with d > 200 nm and  align= increases with d 4; whereas for smaller particles  align= increases with d 3. In vertical capillaries, since the particles are heavier than the fluid they would tend to marginate towards the walls in downward flows and towards the center in upward flows, with  align= increasing with d 9/2. However, the margination in vertical capillaries is predicted to be much smaller than in horizontal capillaries. These results suggest that, for particles circulating in an external field of volume forces (gravitation or magnetic), the strategy of using larger particles designed to marginate and adhere firmly to the vascular walls under flow could be more effective than that of using particles sufficiently small (d < 200 nm) to hopefully cross a discontinuous endothelium.
Keywords:
本文献已被 SpringerLink 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号