Discovery Division, InsideOutBio, Charlestown, Massachusetts, USA.
J Biol Chem. 2023 Sep;299(9):105140. doi: 10.1016/j.jbc.2023.105140. Epub 2023 Aug 5.
The role of alternate DNA conformations such as Z-DNA in the regulation of transcription is currently underappreciated. These structures are encoded by sequences called flipons, many of which are enriched in promoter and enhancer regions. Through a change in their conformation, flipons provide a tunable mechanism to mechanically reset promoters for the next round of transcription. They act as actuators that capture and release energy to ensure that the turnover of the proteins at promoters is optimized to cell state. Likewise, the single-stranded DNA formed as flipons cycle facilitates the docking of RNAs that are able to microcode promoter conformations and canalize the pervasive transcription commonly observed in metazoan genomes. The strand-specific nature of the interaction between RNA and DNA likely accounts for the known asymmetry of epigenetic marks present on the histone tetramers that pair to form nucleosomes. The role of these supercoil-dependent processes in promoter choice and transcriptional interference is reviewed. The evolutionary implications are examined: the resilience and canalization of flipon-dependent gene regulation is contrasted with the rapid adaptation enabled by the spread of flipon repeats throughout the genome. Overall, the current findings underscore the important role of flipons in modulating the readout of genetic information and how little we know about their biology.
目前,人们对替代 DNA 构象(如 Z-DNA)在转录调控中的作用认识不足。这些结构由称为翻转子的序列编码,其中许多序列富含启动子和增强子区域。通过改变其构象,翻转子提供了一种可调谐的机制,可机械重置启动子以进行下一轮转录。它们充当执行器,捕获和释放能量,以确保启动子处的蛋白质周转优化到细胞状态。同样,翻转子循环形成的单链 DNA 有利于能够微编码启动子构象的 RNA 的对接,并使真核生物基因组中常见的普遍转录定向。RNA 和 DNA 之间相互作用的链特异性可能解释了组蛋白四聚体上存在的表观遗传标记的已知不对称性,这些组蛋白四聚体与核小体形成配对。本文综述了这些超螺旋依赖性过程在启动子选择和转录干扰中的作用。还探讨了其进化意义:与通过翻转子重复在整个基因组中的扩散所实现的快速适应相比,翻转子依赖性基因调控的弹性和定向性如何。总的来说,目前的研究结果强调了翻转子在调节遗传信息读取方面的重要作用,以及我们对它们的生物学知之甚少。