优化纳米颗粒介导的药物输送:通过CompSafeNano云平台从区室建模的见解

Periklis Tsiros, Nikolaos Chimarios, Dimitrios Zouraris, Andreas Tsoumanis, Haralambos Sarimveis, Georgia Melagraki, Iseult Lynch and Antreas Afantitis
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引用次数: 0

摘要

纳米颗粒(NPs)用于体内靶向药物递送具有巨大的潜力,可以提高治疗效果,同时最大限度地减少全身副作用。然而,生物环境的复杂性,包括需要跨越有效系统递送的生物障碍,对优化NP递送提出了重大挑战。本研究展示了一个简单的室室模型如何促进np介导的药物传递的模拟和分析,支持靶向给药优化。该模型涉及与药物递送(给药部位、脱靶部位、靶细胞附近、靶细胞内部和排泄物)相关的五个区室之间的可逆运输,这些区室决定了NP动力学,包括生物分布、降解和排泄过程。这种方法可以通过敏感性分析来估计输送效率和识别影响NP输送的关键因素。一项涉及peg涂层金NPs静脉注射到肺部的案例研究表明,该模型能够描述观察到的生物分布模式,并突出了影响输送结果的关键参数。该模型作为web应用程序公开,提供了一个用户友好的图形界面,使研究人员能够进行以优化交付策略为目标的硅实验,从而加速精密纳米医学的发展。该模型既可以作为web应用程序,通过Enalos云平台,也可以作为RESTful应用程序编程接口(API),分别提供用户友好的图形界面和编程访问,使研究人员能够将模型集成到他们自己的计算工作流程中。本研究说明了如何使用简单的区隔模型来指导靶向药物输送系统的开发,有助于更有效和个性化的医疗保健干预。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Optimizing nanoparticle-mediated drug delivery: insights from compartmental modeling via the CompSafeNano cloud platform

Optimizing nanoparticle-mediated drug delivery: insights from compartmental modeling via the CompSafeNano cloud platform

The deployment of nanoparticles (NPs) for targeted drug delivery in vivo holds immense potential for enhancing therapeutic efficacy while minimizing systemic side effects. However, the complexity of biological environments, including the biological barriers that need to be crossed for effective systemic delivery, presents significant challenges in optimizing NP delivery. This study demonstrates how a simple compartmental model facilitates the simulation and analysis of NP-mediated drug delivery, supporting targeted delivery optimization. The model involves reversible transport between five compartments related to drug delivery (administration site, off-target sites, target cell vicinity, target cell interior and excreta) that determine NP dynamics, including biodistribution, degradation, and excretion processes. This approach enables the estimation of delivery efficiency and the identification of critical factors affecting NP delivery through sensitivity analysis. A case study involving PEG-coated gold NPs delivered intravenously to the lungs demonstrates the model's capacity to describe observed biodistribution patterns and highlights key parameters influencing delivery outcomes. The model is exposed as a web application that provides a user-friendly graphical interface, enabling researchers to conduct in silico experiments with the goal of optimizing delivery strategies, thereby accelerating the development of precision nanomedicine. The model is made available both as a web application, via the Enalos Cloud Platform, and as a RESTful aaplication programming interface (API), providing a user-friendly graphical interface and programmatic access, respectively, enabling researchers to integrate the model into their own computational workflows. This study illustrates how simple compartmental modelling can be employed to guide the development of targeted drug delivery systems, contributing to more effective and personalized healthcare interventions.

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