Odenbach Stefan
Biomed Tech (Berl). 2015 Oct;60(5):477-83. doi: 10.1515/bmt-2015-0145.
Experiments and numerical simulations using a flow phantom for magnetic drug targeting have been undertaken. The flow phantom is a half y-branched tube configuration where the main tube represents an artery from which a tumour-supplying artery, which is simulated by the side branch of the flow phantom, branches off. In the experiments a quantification of the amount of magnetic particles targeted towards the branch by a magnetic field applied via a permanent magnet is achieved by impedance measurement using sensor coils. Measuring the targeting efficiency, i.e. the relative amount of particles targeted to the side branch, for different field configurations one obtains targeting maps which combine the targeting efficiency with the magnetic force densities in characteristic points in the flow phantom. It could be shown that targeting efficiency depends strongly on the magnetic field configuration. A corresponding numerical model has been set up, which allows the simulation of targeting efficiency for variable field configuration. With this simulation good agreement of targeting efficiency with experimental data has been found. Thus, the basis has been laid for future calculations of optimal field configurations in clinical applications of magnetic drug targeting. Moreover, the numerical model allows the variation of additional parameters of the drug targeting process and thus an estimation of the influence, e.g. of the fluid properties on the targeting efficiency. Corresponding calculations have shown that the non-Newtonian behaviour of the fluid will significantly influence the targeting process, an aspect which has to be taken into account, especially recalling the fact that the viscosity of magnetic suspensions depends strongly on the magnetic field strength and the mechanical load.
已开展了使用流动模型进行磁性药物靶向的实验和数值模拟。该流动模型为半Y形分支管结构,其中主管代表一条动脉,由流动模型的侧支模拟的肿瘤供血动脉从该动脉分支出来。在实验中,通过使用传感器线圈进行阻抗测量,实现了对通过永磁体施加的磁场靶向至分支的磁性颗粒数量的量化。测量不同场配置下的靶向效率,即靶向至侧支的颗粒相对数量,可得到将靶向效率与流动模型中特征点处的磁力密度相结合的靶向图谱。结果表明,靶向效率强烈依赖于磁场配置。已建立了相应的数值模型,该模型可模拟可变场配置下的靶向效率。通过该模拟发现靶向效率与实验数据吻合良好。因此,已为磁性药物靶向临床应用中未来计算最佳场配置奠定了基础。此外,该数值模型允许改变药物靶向过程的其他参数,从而估计例如流体性质对靶向效率的影响。相应计算表明,流体的非牛顿行为将显著影响靶向过程,这是一个必须考虑的方面,尤其要考虑到磁性悬浮液的粘度强烈依赖于磁场强度和机械负载这一事实。