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遗传备用回路中的转录控制重编程

Transcription control reprogramming in genetic backup circuits.

作者信息

Kafri Ran, Bar-Even Arren, Pilpel Yitzhak

机构信息

Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Nat Genet. 2005 Mar;37(3):295-9. doi: 10.1038/ng1523. Epub 2005 Feb 20.

Abstract

A key question in molecular genetics is why severe mutations often do not result in a detectably abnormal phenotype. This robustness was partially ascribed to redundant paralogs that may provide backup for one another in case of mutation. Mining mutant viability and mRNA expression data in Saccharomyces cerevisiae, we found that backup was provided predominantly by paralogs that are expressed dissimilarly in most growth conditions. We considered that this apparent inconsistency might be resolved by a transcriptional reprogramming mechanism that allows the intact paralog to rescue the organism upon mutation of its counterpart. We found that in wild-type cells, partial coregulation across growth conditions predicted the ability of paralogs to alter their transcription patterns and to provide backup for one another. Notably, the sets of regulatory motifs that controlled the paralogs with the most efficient backup activity deliberately overlapped only partially; paralogs with highly similar or dissimilar sets of motifs had suboptimal backup activity. Such an arrangement of partially shared regulatory motifs reconciles the differential expression of paralogs with their ability to back each other up.

摘要

分子遗传学中的一个关键问题是,为什么严重突变往往不会导致可检测到的异常表型。这种稳健性部分归因于冗余旁系同源基因,它们可能在发生突变时为彼此提供备份。通过挖掘酿酒酵母中的突变体活力和mRNA表达数据,我们发现备份主要由在大多数生长条件下表达不同的旁系同源基因提供。我们认为,这种明显的不一致可能通过一种转录重编程机制来解决,该机制允许完整的旁系同源基因在其对应物发生突变时拯救生物体。我们发现,在野生型细胞中,跨生长条件的部分共调控预测了旁系同源基因改变其转录模式并为彼此提供备份的能力。值得注意的是,控制具有最有效备份活性的旁系同源基因的调控基序集故意仅部分重叠;具有高度相似或不同基序集的旁系同源基因具有次优的备份活性。这种部分共享调控基序的安排使旁系同源基因的差异表达与其相互备份的能力相协调。

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