...
首页> 外文期刊>Biotechnology Progress >Metabolic engineering from a cybernetic perspective. 2. Qualitativeinvestigation of nodal architectures and their response to geneticperturbation
【24h】

Metabolic engineering from a cybernetic perspective. 2. Qualitativeinvestigation of nodal architectures and their response to geneticperturbation

机译:从控制论的角度看代谢工程。 2.对节点结构及其对遗传扰动的响应的定性研究

获取原文
获取原文并翻译 | 示例

摘要

A cybernetic representation of the branch point development of Stephanopoulos and Vallino is formulated. The model systems are employed to translate the qualitative properties of the nodal control architectures characterized by Stephanopoulos and Vallino into a mathematical context. It is shown that a cybernetic model in which the objective is the independent maximization of the levels of branch point products is consistent with the characterization of a flexible node. In contrast, the rigid control architecture is shown to be equivalent to the maximization of the mathematical product of the branch point products. It has been demonstrated subsequently that cybernetic metabolic network models are capable of predicting the system response to enzymatic amplification. However, given the complicated nature of the subsequent models, a clear illustration of the basic mechanism by which such predictions are manifested is not forthwith. Thus, a second objective of the present work is the examination of the response of the flexible and rigid control architectures to genetic perturbation, specifically enzymatic overexpression, with the expressed aim of elucidating the mechanism by which a cybernetic model predicts metabolic network responsiveness. It is shown that the ramifications of genetic perturbation are transmitted through the cybernetic representation of a metabolic network via the resource allocation structure which acts as the conduit by which regulatory signals are transmitted to seemingly unconnected portions of the network. It is postulated that enzymatic overexpression under an artificial promoter represents, from the perspective of the microorganism, an uncontrollable resource drain that forces the metabolic network control architecture to reevaluate the standing resource allocation policy as implemented via the cybernetic control variables. In biological terms, the reevaluation of allocation policy implies a shift in the level and activity of network enzymes yielding, in some cases, qualitatively different network function. It is our position that, conceptually, this is equivalent to the conventional wisdom that genetic manipulation of a metabolic network is the impetus for shifts in the network functionality, i.e., enzyme levels as well as activity. Thus, this development provides a necessary intellectual precursor for the formulation and analysis of the model systems that follow.
机译:制定了Stephanopoulos和Vallino分支点发展的控制论表示。使用模型系统将以Stephanopoulos和Vallino为特征的节点控制架构的定性特性转换为数学上下文。结果表明,控制论模型的目标是使分支点乘积的水平独立最大化,这与柔性节点的特性是一致的。相反,刚性控制架构显示为等效于分支点积的数学积的最大化。随后已证明控制论代谢网络模型能够预测系统对酶促扩增的反应。但是,由于后续模型的复杂性,因此无法立即清晰地显示出这种预测所依据的基本机制。因此,本工作的第二个目的是检查柔性和刚性控制结构对遗传扰动的响应,特别是酶的过表达,其明确目的是阐明控制论模型预测代谢网络响应性的机制。结果表明,遗传扰动的后果是通过资源分配结构通过代谢网络的控制论表示来传递的,该资源分配结构充当了将调节信号传递到网络上似乎未连接的部分的渠道。从微生物的角度出发,假定在人工启动子下的酶过度表达代表不可控制的资源消耗,这迫使代谢网络控制体系结构重新评估通过控制论控制变量实施的常规资源分配策略。从生物学的角度来看,分配政策的重新评估意味着网络酶的水平和活性发生了变化,从而在某些情况下产生了本质上不同的网络功能。我们的立场是,从概念上讲,这等同于传统观点,即代谢网络的遗传操作是网络功能(即酶水平和活性)变化的推动力。因此,这一发展为随后的模型系统的形成和分析提供了必要的知识先驱。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号