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Artificial Life in the Fight against Cancer Extended Abstract of Invited Keynote Lecture

机译:人为生活在争夺癌症的扩展摘要邀请的主题演讲

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Blood vessel growth is a fascinating and important example of an adaptive, morphologically plastic network formation process driven by complex interactions between individual cells in the vessel and between the cells and their dynamic extracellular environment. Under normal conditions this can generate a well-adapted hierarchical branching structure. However, in tumors, blood vessels become maladapted, leaky and bulbous, resulting in increased hypoxia and tumour cell metastasis. A method to switch tumor blood vessels back to a normal network could reduce metastasis and thus represents a significant goal in cancer therapy. However, studying human disease and the abnormalities that lead to pathological phenotypes is a monumentally difficult task. Probing the inner workings of in vivo systems present numerous technical challenges, though boundaries continue to be broken. Further, the normal fundamental mechanisms controlling development are of course not fully understood, let alone their perturbation by environmental changes in disease. Artificial Life (ALife) aims to instantiate and study biological principles of organisation in new media in order to exploit different methods to test the system uniquely available in that medium. Thus ALife can perfectly complement cutting edge in vivo research giving vital temporal, spatial and organisational understanding of the process, if we work together with biologists, to build data driven models, and test emergent properties. Using this integrated ALife/in vivo experimental approach, we have made advances in the understanding of blood vessel growth. The emergent properties of the embodied, agent-based model we developed, when put into a disease environment, have led to the discovery of a novel switch in cell communication which is changing the way we think about tumour malformations.
机译:血管生长是通过在容器中的单个细胞之间以及细胞和它们的动态细胞外环境之间的复杂相互作用驱动的自适应,形态塑料网形成工艺的一个有趣和重要的例子。在正常条件下这可以产生适应良好的分层分支结构。然而,在肿瘤,血管变得不适应,漏和球根,导致增加的缺氧和肿瘤细胞转移。到开关肿瘤血管的方法,回到正常的网络可减少转移和由此表示在癌症治疗中一个显著目标。然而,研究人类疾病和导致病理学表型异常是一个纪念碑式的艰巨的任务。探测的体内系统提出了许多技术挑战的内部运作,虽然边界不断被打破。此外,控制正常发展的基本机制是当然不能完全理解,更不用说他们的扰动在疾病的环境变化。人工生命(ALIFE)旨在在新媒体机构的实例化和学习生物学原理,以利用不同的方法来测试在中唯一可用的系统。因此ALIFE可以完美配合尖端的体内研究给予重要的时间,进程的空间和组织的理解,如果我们生物学家一起工作,来驱动模型构建数据和测试紧急性能。使用这种集成ALIFE /体内实验的方法,我们在血管生长的理解所取得的进展。我们开发了体现,基于代理的模型的紧急性,投入到疾病的环境时,导致了细胞通信的新型开关的发现这是改变我们对肿瘤畸形的方式。

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