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首页> 外文期刊>Biophysical Journal >Multifunctionality and robustness trade-offs in model genetic circuits.
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Multifunctionality and robustness trade-offs in model genetic circuits.

机译:模型遗传电路中的多功能性和鲁棒性折衷。

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Most cellular systems, from macromolecules to genetic networks, have more than one function. Examples involving networks include the transcriptional regulation circuits formed by Hox genes and the Drosophila segmentation genes, which function in both early and later developmental events. Does the need to carry out more than one function severely constrain network architecture? Does it imply robustness trade-offs among functions? That is, if one function is highly robust to mutations, are other functions highly sensitive, and vice versa? Little available evidence speaks to these questions. We address them with a general model of transcriptional regulation networks. We show that requiring a regulatory network to carry out additional functions constrains the number of permissible network architectures exponentially. However, robustness of one function to regulatory mutations is uncorrelated or weakly positively correlated to robustness of other functions. This means that robustness trade-offs generally donot arise in the systems we study. As long as there are many alternative network structures, each of which can fulfill all required functions, multiple functions may acquire high robustness through gradual Darwinian evolution.
机译:从大分子到遗传网络,大多数细胞系统都具有多种功能。涉及网络的例子包括由Hox基因和果蝇分割基因形成的转录调控回路,它们在早期和晚期发育事件中均起作用。是否需要执行多个功能会严重限制网络体系结构?它是否意味着功能之间的健壮性折衷?也就是说,如果一个功能对突变具有很高的鲁棒性,那么其他功能是否对敏感性高,反之亦然?很少有证据可以说明这些问题。我们用转录调控网络的一般模型来解决它们。我们表明,要求监管网络执行其他功能会以指数形式限制可允许的网络体系结构的数量。但是,一种功能对调节突变的稳健性与其他功能的稳健性不相关或弱正相关。这意味着在我们研究的系统中通常不会出现鲁棒性折衷。只要有许多可供选择的网络结构,每个结构都可以满足所有必需的功能,那么多个功能就可以通过逐步的达尔文进化获得高度的鲁棒性。

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