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首页> 外文期刊>EURASIP journal on bioinformatics and systems biology >Optimal Constrained Stationary Intervention in Gene Regulatory Networks
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Optimal Constrained Stationary Intervention in Gene Regulatory Networks

机译:基因调控网络中的最优约束平稳干预

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摘要

A key objective of gene network modeling is to develop intervention strategies to alter regulatory dynamics in such a way as to reduce the likelihood of undesirable phenotypes. Optimal stationary intervention policies have been developed for gene regulation in the framework of probabilistic Boolean networks in a number of settings. To mitigate the possibility of detrimental side effects, for instance, in the treatment of cancer, it may be desirable to limit the expected number of treatments beneath some bound. This paper formulates a general constraint approach for optimal therapeutic intervention by suitably adapting the reward function and then applies this formulation to bound the expected number of treatments. A mutated mammalian cell cycle is considered as a case study.
机译:基因网络建模的一个关键目标是开发干预策略,以减少减少不良表型的可能性的方式改变监管动态。在许多情况下,已经在概率布尔网络的框架内为基因调控开发了最佳的静态干预策略。为了减轻有害副作用的可能性,例如在癌症的治疗中,可能希望将预期的治疗次数限制在一定范围内。本文通过适当地调整奖励功能,制定了用于最佳治疗干预的一般约束方法,然后将该公式应用于约束预期的治疗次数。突变的哺乳动物细胞周期被认为是一个案例研究。

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