School of Engineering, University of Aberdeen, Aberdeen, UK.
Department of Mechanical Engineering, Imperial College London, London, UK.
J R Soc Interface. 2024 Oct;21(219):20240378. doi: 10.1098/rsif.2024.0378. Epub 2024 Oct 2.
Convection-enhanced delivery (CED) can effectively overcome the blood-brain barrier by infusing drugs directly into diseased sites in the brain using a catheter, but its clinical performance still needs to be improved. This is strongly related to the highly anisotropic characteristics of brain white matter, which results in difficulties in controlling drug transport and distribution in space. In this study, the potential to improve the delivery of six drugs by adjusting the placement of the infusion catheter is examined using a mathematical model and accurate numerical simulations that account simultaneously for the interstitial fluid (ISF) flow and drug transport processes in CED. The results demonstrate the ability of this direct infusion to enhance ISF flow and therefore facilitate drug transport. However, this enhancement is highly anisotropic, subject to the orientation of local axon bundles and is limited within a small region close to the infusion site. Drugs respond in different ways to infusion direction: the results of our simulations show that while some drugs are almost insensitive to infusion direction, this strongly affects other compounds in terms of isotropy of drug distribution from the catheter. These findings can serve as a reference for planning treatments using CED.
脑内药物传递增强(CED)通过导管将药物直接注入大脑病变部位,可以有效地克服血脑屏障,但它的临床效果仍需提高。这与脑白质的高度各向异性特征密切相关,导致药物在空间中的传输和分布难以控制。本研究使用数学模型和准确的数值模拟,同时考虑CED 中的细胞外液(ISF)流动和药物传输过程,考察了通过调整输注导管的位置来改善六种药物传递的潜力。结果表明,这种直接输注能够增强 ISF 流动,从而促进药物传输。然而,这种增强是高度各向异性的,受局部轴突束的方向影响,并局限于靠近输注部位的小区域内。药物对输注方向的反应不同:我们的模拟结果表明,虽然一些药物对输注方向几乎不敏感,但这对导管中药物分布各向同性的其他化合物有很大影响。这些发现可以为使用 CED 进行治疗规划提供参考。