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Allele-specific suppression as a tool to study protein-protein interactions in bacteria.

机译:等位基因特异性抑制作为研究细菌中蛋白质相互作用的工具。

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Suppression analysis is well suited to study the interactions of gene products. It offers the advantage of simplicity for any organism for which a convenient genetic system has been developed, which holds for a wide spectrum of bacteria and an ever-increasing number of unicellular as well as complex eukaryotes. No other method provides as much information about the functional relationships of biological macromolecules. The intrinsic value of suppression analysis is enhanced by advances in genomics and in biophysical techniques for investigating the properties of nucleic acids and proteins, such as X-ray crystallography, liquid and solid-state nuclear magnetic resonance, electron spin labeling, and isothermal calorimetry. These approaches confirm and complement whatever is revealed by genetics. Despite these sterling qualities, suppression analysis has its dangers, less in execution than in conceptualization of experiments and interpretation of data. A consistent nomenclature is essential for a uniform and widespread understanding of the results. Familiarity with the genetic background and idiosyncracies of the organism studied is critical in avoiding extraneous phenomena that can affect the outcome. Finally, it is imperative not to underestimate potentially bizarre and improbable consequences that can transpire when rigorous genetic selection is maintained for an appreciable length of time. The article begins with a somewhat pedagogical discussion of genetic terminology. It then moves on to the necessary precautions to observe while planning and conducting suppression analysis. The remainder of the article considers different manifestations of suppression: bypass suppression; gradients of suppression; suppression by relaxed specificity; allele-specific "suppression at a distance"; and true conformational suppression. The treatment is not exhaustive, but representative examples have been gleaned from the recent bacterial literature. Copyright 2000 Academic Press.
机译:抑制分析非常适合研究基因产物的相互作用。它为开发了便利遗传系统的任何生物提供了简单的优势,该遗传系统拥有广泛的细菌,单细胞以及复杂的真核生物数量不断增加。没有其他方法可以提供有关生物大分子功能关系的信息。抑制分析的内在价值随着基因组学和研究核酸和蛋白质特性的生物物理技术(例如X射线晶体学,液相和固态核磁共振,电子自旋标记和等温量热法)的发展而增强。这些方法证实并补充了遗传学揭示的内容。尽管具有这些出色的品质,抑制分析还是有其危险,其执行的风险要小于实验的概念化和数据的解释。一致的术语对于对结果进行统一和广泛的理解至关重要。熟悉所研究生物的遗传背景和特质对于避免可能影响结果的外来现象至关重要。最后,当务之急是当严格的基因选择维持一段相当长的时间时,不要低估可能产生的奇怪和不可思议的后果。本文从遗传学术语的教学论探讨入手。然后继续进行必要的预防措施,以便在计划和进行抑制分析时进行观察。文章的其余部分考虑了抑制的不同表现形式:旁路抑制;抑制。抑制梯度;通过放松的特异性抑制;等位基因特异的“远距离抑制”;和真正的构象抑制。该处理方法不是穷举性的,但是从最近的细菌文献中已经收集了代表性的例子。版权所有2000学术出版社。

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