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Design principles for elementary gene circuits: Elements, methods, and examples

机译:基本基因电路设计原理:元素,方法和例子

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摘要

The control of gene expression involves complex circuits that exhibit enormous variation in design. For years the most convenient explanation for these variations was historical accident. According to this view, evolution is a haphazard process in which many different designs are generated by chance; there are many ways to accomplish the same thing, and so no further meaning can be attached to such different but equivalent designs. In recent years a more satisfying explanation based on design principles has been found for at least certain aspects of gene circuitry. By design principle we mean a rule that characterizes some biological feature exhibited by a class of systems such that discovery of the rule allows one not only to understand known instances but also to predict new instances within the class. The central importance of gene regulation in modern molecular biology provides strong motivation to search for more of these underlying design principles. The search is in its infancy and there are undoubtedly many design principles that remain to be discovered. The focus of this three-part review will be the class of elementary gene circuits in bacteria. The first part reviews several elements of design that enter into the characterization of elementary gene circuits in prokaryotic organisms. Each of these elements exhibits a variety of realizations whose meaning is generally unclear. The second part reviews mathematical methods used to represent, analyze, and compare alternative designs. Emphasis is placed on particular methods that have been used successfully to identify design principles for elementary gene circuits. The third part reviews four design principles that make specific predictions regarding (1) two alternative modes of gene control, (2) three patterns of coupling gene expression in elementary circuits, (3) two types of switches in inducible gene circuits, and (4) the realizability of alternative gene circuits and their response to phased environmental cues. In each case, the predictions are supported by experimental evidence. These results are important for understanding the function, design, and evolution of elementary gene circuits. © 2001 American Institute of Physics.
机译:基因表达的控制涉及具有巨大变化的复杂电路。多年来,这些变异的最方便的解释是历史事故。根据这种观点,进化是一种随意的过程,其中许多不同的设计是偶然的;有很多方法可以实现同样的事情,因此没有进一步的意义可以附加到这种不同但同等的设计。近年来,已经发现了基于基因电路的至少某些方面的基于设计原理的更令人满意的解释。通过设计原则,我们的意思是一种规则,其特征是一类由一类系统展出的一些生物学特征,使得该规则的发现允许人们不仅可以理解已知的实例,而且还可以预测类内的新实例。基因调节在现代分子生物学中的重要性提供了强烈的动机,以寻找更多这些潜在的设计原则。搜索处于初期,毫无疑问,仍有许多设计原则仍有待发现。这三部分审查的重点将是细菌中基因电路的类别。第一部分回顾了几个设计元素,该设计进入原核生物中基因电路的表征。这些元素中的每一个都表现出各种含义通常不清楚的实现。第二部分介绍用于表示,分析和比较替代设计的数学方法。重点放置在成功用于识别基本基因电路的设计原理的特定方法上。第三部分评论四种设计原则,了解关于(1)基因对照的两种替代模式的特定预测,(2)三种偶联基因表达的三种模式,(3)诱导基因电路中的两种开关,(4 )替代基因电路的可实现性及其对分阶段环境提示的反应。在每种情况下,实验证据支持预测。这些结果对于了解基本基因电路的功能,设计和演化非常重要。 ©2001美国物理研究所。

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    Michael A. Savageau;

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