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首页> 外文期刊>Genetic programming and evolvable machines >Using evolvable genetic cellular automata to model breast cancer
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Using evolvable genetic cellular automata to model breast cancer

机译:使用可进化的遗传细胞自动机模拟乳腺癌

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摘要

Cancer is an evolutionary process. Mutated cells undergo selection for abnormal growth and survival creating a tumor. We model this process with cellular automata that use a simplified genetic regulatory network simulation to control cell behavior and predict cancer etiology. Our genetic model gives us the ability to relate genetic mutation to cancerous outcomes. The simulation uses known histological morphology, cell types, and stochastic behavior to specifically model ductal carcinoma in situ (DCIS), a common form of non-invasive breast cancer. Using this model we examine the effects of hereditary predisposition on DCIS incidence and aggressiveness. Results show that we are able to reproduce in vivo pathological features to hereditary forms of breast cancer: earlier incidence and increased aggressiveness. We also show that a contributing factor to the different pathology of hereditary breast cancer results from the ability of progenitor cells to pass cancerous mutations on to offspring.
机译:癌症是一个进化过程。突变的细胞经过选择以异常生长和存活,从而形成肿瘤。我们使用自动机对这一过程进行建模,自动机使用简化的遗传调控网络模拟来控制细胞行为并预测癌症病因。我们的遗传模型使我们能够将基因突变与癌症结果联系起来。该模拟使用已知的组织学形态,细胞类型和随机行为来专门建模导管原位癌(DCIS),这是一种非侵入性乳腺癌的常见形式。使用此模型,我们检查了遗传倾向对DCIS发生率和侵略性的影响。结果表明,我们能够重现乳腺癌的遗传形式的体内病理特征:早期发病和侵略性增加。我们还表明,遗传性乳腺癌的不同病理的一个促成因素是祖细胞将癌性突变传递给后代的能力。

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