Enhancing localized chemotherapy with anti-angiogenesis and nanomedicine synergy for improved tumor penetration in well-vascularized tumors.

IF 3.5 2区 生物学 Q1 MATHEMATICAL & COMPUTATIONAL BIOLOGY NPJ Systems Biology and Applications Pub Date : 2024-11-20 DOI:10.1038/s41540-024-00467-w
Mohammad Souri, Sohail Elahi, Farshad Moradi Kashkooli, Mohammad Kohandel, M Soltani
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Abstract

Intratumoral delivery and localized chemotherapy have demonstrated promise in tumor treatment; however, the rapid drainage of therapeutic agents from well-vascularized tumors limits their ability to achieve maximum therapeutic efficacy. Therefore, innovative approaches are needed to enhance treatment efficacy in such tumors. This study utilizes a mathematical modeling platform to assess the efficacy of combination therapy using anti-angiogenic drugs and drug-loaded nanoparticles. Anti-angiogenic drugs are included to reduce blood microvascular density and facilitate drug retention in the extracellular space. In addition, incorporating negatively charged nanoparticles aims to enhance diffusion and distribution of therapeutic agents within well-vascularized tumors. The findings indicate that, in the case of direct injection of free drugs, using compounds with lower drainage rates and higher diffusion coefficients is beneficial for achieving broader diffusion. Otherwise, drugs tend to accumulate primarily around the injection site. For instance, the drug doxorubicin, known for its rapid drainage, requires the prior direct injection of an anti-angiogenic drug with a high diffusion rate to reduce microvascular density and facilitate broader distribution, enhancing penetration depth by 200%. Moreover, the results demonstrate that negatively charged nanoparticles effectively disperse throughout the tissue due to their high diffusion coefficient. In addition, a faster drug release rate from nanoparticles further enhance treatment efficacy, achieving the necessary concentration for complete eradication of tumor compared to slower drug release rates. This study demonstrates the potential of utilizing negatively charged nanoparticles loaded with chemotherapy drugs exhibiting high release rates for localized chemotherapy through intratumoral injection in well-vascularized tumors.

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利用抗血管生成和纳米药物的协同作用加强局部化疗,改善血管发达肿瘤的穿透性。
瘤内给药和局部化疗已在肿瘤治疗中大显身手;然而,治疗药物从血管发达的肿瘤中快速排出,限制了其实现最大疗效的能力。因此,需要创新的方法来提高此类肿瘤的治疗效果。本研究利用数学建模平台来评估使用抗血管生成药物和载药纳米粒子进行联合治疗的疗效。加入抗血管生成药物可降低血液微血管密度,促进药物在细胞外空间的滞留。此外,加入带负电荷的纳米粒子旨在加强治疗药物在血管发达的肿瘤内的扩散和分布。研究结果表明,在直接注射游离药物的情况下,使用排水率较低、扩散系数较高的化合物有利于实现更广泛的扩散。否则,药物往往主要积聚在注射部位周围。例如,药物多柔比星以排水速度快而著称,需要事先直接注射扩散率高的抗血管生成药物,以降低微血管密度,促进更广泛的分布,从而将渗透深度提高 200%。此外,研究结果表明,带负电荷的纳米粒子由于扩散系数高,能有效分散到整个组织中。此外,与较慢的药物释放速度相比,纳米颗粒的药物释放速度更快,能达到彻底根除肿瘤所需的浓度,从而进一步提高疗效。这项研究证明了利用带负电荷的纳米颗粒装载具有高释放率的化疗药物,通过瘤内注射对血管发达的肿瘤进行局部化疗的潜力。
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来源期刊
NPJ Systems Biology and Applications
NPJ Systems Biology and Applications Mathematics-Applied Mathematics
CiteScore
5.80
自引率
0.00%
发文量
46
审稿时长
8 weeks
期刊介绍: npj Systems Biology and Applications is an online Open Access journal dedicated to publishing the premier research that takes a systems-oriented approach. The journal aims to provide a forum for the presentation of articles that help define this nascent field, as well as those that apply the advances to wider fields. We encourage studies that integrate, or aid the integration of, data, analyses and insight from molecules to organisms and broader systems. Important areas of interest include not only fundamental biological systems and drug discovery, but also applications to health, medical practice and implementation, big data, biotechnology, food science, human behaviour, broader biological systems and industrial applications of systems biology. We encourage all approaches, including network biology, application of control theory to biological systems, computational modelling and analysis, comprehensive and/or high-content measurements, theoretical, analytical and computational studies of system-level properties of biological systems and computational/software/data platforms enabling such studies.
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Enhancing localized chemotherapy with anti-angiogenesis and nanomedicine synergy for improved tumor penetration in well-vascularized tumors. General relationship of local topologies, global dynamics, and bifurcation in cellular networks. Systems-level reconstruction of kinase phosphosignaling networks regulating endothelial barrier integrity using temporal data. Plasmodium vivax antigen candidate prediction improves with the addition of Plasmodium falciparum data. Experimentally-driven mathematical model to understand the effects of matrix deprivation in breast cancer metastasis.
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