Department of Bioengineering, University of Illinois Chicago, Chicago, IL 60607, USA.
IEEE Trans Biomed Eng. 2011 Mar;58(3):626-32. doi: 10.1109/TBME.2010.2089455.
Convection-enhanced delivery (CED) is a promising technique to deliver large molecular weight drugs to the human brain for treatment of Parkinson's, Alzheimer's, or brain tumors. Researchers have used agarose gels to study mechanisms of agent transport in soft tissues like brain due to its similar mechanical and transport properties. However, inexpensive quantitative techniques to precisely measure achieved agent distribution in agarose gel phantoms during CED are missing. Such precise measurements of concentration distribution are needed to optimize drug delivery. An optical experimental method to accurately quantify agent concentration in agarose is presented. A novel geometry correction algorithm is used to determine real concentrations from observable light intensities captured by a digital camera. We demonstrate the technique in dye infusion experiments that provide cylindrical and spherical distributions when infusing with porous membrane and conventional single-port catheters, respectively. This optical method incorporates important parameters, such as optimum camera exposure, captured camera intensity calibration, and use of collimated light source for maximum precision. We compare experimental results with numerical solutions to the convection diffusion equation. The solutions of convection-diffusion equations in the cylindrical and spherical domains were found to match the experimental data obtained by geometry correction algorithm.
对流增强递送(CED)是一种很有前途的技术,可以将大分子量药物递送到人类大脑中,用于治疗帕金森病、阿尔茨海默病或脑肿瘤。研究人员已经使用琼脂糖凝胶来研究类似脑组织的软组织中药物输送的机制,因为它具有相似的机械和传输特性。然而,CED 过程中在琼脂糖凝胶模型中准确测量实现的药物分布的廉价定量技术尚不存在。需要对浓度分布进行精确测量以优化药物输送。本文提出了一种精确测量琼脂糖中药物浓度的光学实验方法。一种新的几何校正算法用于从数字相机捕获的可观察光强度确定实际浓度。我们在染料灌注实验中展示了该技术,当使用多孔膜和传统的单端口导管进行灌注时,分别提供圆柱和球形分布。该光学方法结合了重要参数,例如最佳相机曝光、捕获相机强度校准以及使用准直光源以实现最大精度。我们将实验结果与对流扩散方程的数值解进行了比较。在圆柱和球域中对流扩散方程的解与通过几何校正算法获得的实验数据吻合良好。