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Clonal selection and therapy resistance in acute leukaemias: mathematical modelling explains different proliferation patterns at diagnosis and relapse

机译:急性白血病的克隆选择和治疗耐药性:数学模型解释了诊断和复发时的不同增殖方式

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摘要

Recent experimental evidence suggests that acute myeloid leukaemias may originate from multiple clones of malignant cells. Nevertheless, it is not known how the observed clones may differ with respect to cell properties, such as proliferation and self-renewal. There are scarcely any data on how these cell properties change due to chemotherapy and relapse. We propose a new mathematical model to investigate the impact of cell properties on the multi-clonal composition of leukaemias. Model results imply that enhanced self-renewal may be a key mechanism in the clonal selection process. Simulations suggest that fast proliferating and highly self-renewing cells dominate at primary diagnosis, while relapse following therapy-induced remission is triggered mostly by highly self-renewing but slowly proliferating cells. Comparison of simulation results to patient data demonstrates that the proposed model is consistent with clinically observed dynamics based on a clonal selection process.
机译:最近的实验证据表明,急性髓细胞白血病可能起源于恶性细胞的多个克隆。尽管如此,尚不清楚观察到的克隆在细胞特性(例如增殖和自我更新)方面可能如何不同。几乎没有关于这些细胞特性如何因化疗和复发而改变的数据。我们提出了一个新的数学模型来研究细胞特性对白血病的多克隆组成的影响。模型结果表明增强的自我更新可能是克隆选择过程中的关键机制。模拟表明,快速增殖和高度自我更新的细胞在初步诊断中占主导地位,而治疗诱导的缓解后的复发主要由高度自我更新但缓慢增殖的细胞触发。模拟结果与患者数据的比较表明,所提出的模型与基于克隆选择过程的临床观察到的动力学一致。

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