Modelling oncolytic virus diffusion in collagen-dense tumours

Pantea Pooladvand, Peter S. Kim
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Abstract

Solid tumours develop much like a fortress, acquiring characteristics that protect them against invasion. A common trait observed in solid tumours is the synthesis of excess collagen which traps therapeutic agents, resulting in a lack of dispersion of treatment within the tumour mass. In most tumours, this results in only a localised treatment. Often the tumour quickly recovers and continues to invade surrounding regions. Anti-tumour viral therapy is no exception to this rule. Experimental results show collagen density affects virus diffusion and inhibits cell infection; therefore, accurately modelling virus dispersion is an important aspect of modelling virotherapy. To understand the underlying dynamics of viral diffusion in collagen, we derive a novel non-Fickian diffusion term from first principles. We demonstrate that this diffusion term captures experimentally observed virus dispersion in cancer-associated collagen, unlike the standard diffusion term, commonly used in virotherapy models. Then, using a system of partial differential equations, we explore virotherapy in relation to collagen density. We show that our model can predict therapy outcome in relation to collagen density. The results also suggest that modifications in virus performance, such as increased virus infectivity, is not effective in dense collagen; therefore, reducing collagen, might be the best approach when dealing with collagen-rich tumours. We also investigate virotherapy in relation to collagen structures and find that size of collagen deposits are as important to outcome as collagen density. Together, these results demonstrate that understanding virus diffusion in oncolytic virotherapy is a crucial step in capturing tumour response to treatment.
溶瘤病毒在胶原密集肿瘤中的扩散模型
实体肿瘤的发展很像一个堡垒,获得保护它们免受入侵的特征。在实体瘤中观察到的一个共同特征是过量胶原蛋白的合成,它会捕获治疗药物,导致肿瘤块内治疗缺乏分散。在大多数肿瘤中,这只能导致局部治疗。通常情况下,肿瘤会迅速恢复并继续侵袭周围区域。抗肿瘤病毒治疗也不例外。实验结果表明,胶原蛋白密度影响病毒扩散,抑制细胞感染;因此,准确地模拟病毒扩散是模拟病毒治疗的一个重要方面。为了理解胶原蛋白中病毒扩散的潜在动力学,我们从第一性原理推导出一个新的非菲克扩散项。我们证明该扩散项捕获了实验观察到的病毒在癌症相关胶原蛋白中的扩散,不像通常用于病毒治疗模型的标准扩散项。然后,使用一个偏微分方程系统,我们探讨了与胶原蛋白密度有关的病毒治疗。我们表明,我们的模型可以预测与胶原蛋白密度有关的治疗结果。结果还表明,病毒性能的改变,如增加病毒传染性,在致密胶原蛋白中无效;因此,减少胶原蛋白可能是治疗富含胶原蛋白肿瘤的最佳方法。我们还研究了病毒治疗与胶原结构的关系,发现胶原沉积的大小与胶原密度对结果同样重要。总之,这些结果表明,了解溶瘤病毒治疗中的病毒扩散是捕获肿瘤对治疗反应的关键一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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