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Integrated intravital microscopy and mathematical modeling to optimize nanotherapeutics delivery to tumors

机译:集成的活体显微镜和数学模型可优化纳米治疗药物向肿瘤的递送

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摘要

Inefficient vascularization hinders the optimal transport of cell nutrients, oxygen, and drugs to cancer cells in solid tumors. Gradients of these substances maintain a heterogeneous cell-scale microenvironment through which drugs and their carriers must travel, significantly limiting optimal drug exposure. In this study, we integrate intravital microscopy with a mathematical model of cancer to evaluate the behavior of nanoparticle-based drug delivery systems designed to circumvent biophysical barriers. We simulate the effect of doxorubicin delivered via porous 1000 x 400 nm plateloid silicon particles to a solid tumor characterized by a realistic vasculature, and vary the parameters to determine how much drug per particle and how many particles need to be released within the vasculature in order to achieve remission of the tumor. We envision that this work will contribute to the development of quantitative measures of nanoparticle design and drug loading in order to optimize cancer treatment via nanotherapeutics.
机译:无效的血管形成阻碍了细胞营养,氧气和药物向实体瘤中癌细胞的最佳运输。这些物质的梯度保持了药物及其载体必须通过的异质细胞规模微环境,从而极大地限制了最佳药物暴露。在这项研究中,我们将活体显微镜与癌症的数学模型相结合,以评估旨在绕过生物物理障碍的基于纳米颗粒的药物递送系统的行为。我们模拟了通过多孔1000 x 400 nm的小片硅颗粒将阿霉素递送至以实际脉管系统为特征的实体瘤的效果,并更改了参数以确定每个颗粒多少药物以及需要在脉管系统中释放多少颗粒实现肿瘤的缓解。我们预想这项工作将有助于开发纳米​​颗粒设计和药物装载的定量方法,以优化通过纳米疗法治疗癌症的方法。

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