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Systems Biology Modeling of Five Pathways for Regulation and Potent Inhibition of the Anaphase-Promoting Complex (APC/C): Pivotal Roles for MCC and BubR1

机译:五种调节和有效抑制后期促进复合物(APC / C)的途径的系统生物学建模:MCC和BubR1的关键作用

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摘要

Correct DNA segregation is a fundamental process that ensures the precise and reliable inheritance of genomic information for the propagation of cell life. Eukaryotic cells have evolved a conserved surveillance control mechanism for DNA segregation named the Spindle Assembly Checkpoint (SAC).The SAC ensures that the sister chromatids of the duplicated genome are not separated and distributed to the spindle poles before all chromosomes have been properly linked to the microtubules of the mitotic spindle. Biochemically, the SAC delays cell cycle progression by preventing activation of the anaphase-promoting complex (APC/C) or cyclosome whose activation by Cdc20 is required for sister-chromatid separation; this marks the transition into anaphase. In response to activation of the checkpoint, various species control the activity of both APC/C and Cdc20. However, the underlying regulatory pathways remain largely elusive. In this study, five possible model variants of APC/C regulation were constructed, namely BubR1, Mad2, MCC, MCF2, and an all-pathways model variant. These models were validated with experimental data from the literature. A wide range of parameter values has been tested to find the critical values of the APC/C binding rate. The results show that all variants are able to capture the wild-type behavior of the APC/C. However, only one model variant, which included both MCC as well as BubR1 as potent inhibitors of the APC/C, was able to reproduce both wild-type and mutant type behavior of APC/C regulation. In conclusion, the presented work informs the regulation of fundamental processes such as SAC and APC/C in cell biology and has successfully distinguished between five competing dynamical models using a systems biology approach. The results attest that systems-level approaches are vital for molecular and cell biology.
机译:正确的DNA分离是一个基本过程,可确保精确和可靠地继承基因组信息以延长细胞寿命。真核细胞已进化出一种保守的DNA分离监控机制,称为Spindle Assembly Checkpoint(SAC)。有丝分裂纺锤体的微管。从生化角度看,SAC通过阻止后期促进复合物(APC / C)或环体的活化来延迟细胞周期进程,后者的姐妹染色单体分离需要Cdc20的激活。这标志着过渡到后期。响应检查点的激活,各种物种同时控制APC / C和Cdc20的活性。但是,基本的监管途径仍然难以捉摸。在这项研究中,构建了五个可能的APC / C调节模型变体,即BubR1,Mad2,MCC,MCF2和全路径模型变体。这些模型已用来自文献的实验数据进行了验证。已经测试了各种各样的参数值,以找到APC / C结合速率的临界值。结果表明,所有变体均能够捕获APC / C的野生型行为。但是,只有一个模型变体(包括MCC和BubR1作为APC / C的有效抑制剂)能够重现APC / C调控的野生型和突变型行为。总之,目前的工作为细胞生物学中诸如SAC和APC / C等基本过程的调控提供了信息,并已使用系统生物学方法成功区分了五个竞争动力学模型。结果证明,系统级方法对于分子和细胞生物学至关重要。

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