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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >Mechanistic Modeling of a Rewritable Recombinase Addressable Data Module
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Mechanistic Modeling of a Rewritable Recombinase Addressable Data Module

机译:可重写重组酶可寻址数据模块的机械建模

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Many of the most important applications predicted to arise from Synthetic Biology will require engineered cellular memory with the capability to store data in a rewritable and reversible manner upon induction by transient stimuli. DNA recombination provides an ideal platform for cellular data storage and has allowed the development of a rewritable recombinase addressable data (RAD) module, capable of efficient data storage within a chromosome. Here, we develop the first detailed mechanistic model of DNA recombination, and validate it against a new set of in vitro data on recombination efficiencies across a range of different concentrations of integrase and gp3. Investigation of in vivo recombination dynamics using our model reveals the importance of fully accounting for all mechanistic features of DNA recombination in order to accurately predict the effect of different switching strategies on RAD module performance, and highlights its usefulness as a design tool for building future synthetic circuitry.
机译:预计从合成生物学中产生的许多最重要的应用将需要经过工程改造的细胞内存,并具有在受到瞬态刺激诱导后以可重写和可逆方式存储数据的能力。 DNA重组为细胞数据存储提供了理想的平台,并允许开发可重写的重组酶可寻址数据(RAD)模块,该模块能够在染色体内进行有效的数据存储。在这里,我们开发了第一个详细的DNA重组机制模型,并针对一系列不同浓度的整合酶和gp3的重组效率进行了新的体外数据验证。使用我们的模型进行的体内重组动力学研究表明,充分考虑DNA重组的所有机械特征的重要性,以便准确预测不同转换策略对RAD模块性能的影响,并强调其作为构建未来合成物的设计工具的有用性电路。

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