专门的转录工厂。

Jon Bartlett, Jelena Blagojevic, David Carter, Christopher Eskiw, Maud Fromaget, Christy Job, Monee Shamsher, Inês Faro Trindade, Meng Xu, Peter R Cook
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引用次数: 54

摘要

我们之前提出了一种基于细菌类核结构的真核生物基因组模型,其中活性RNA聚合酶聚集以环住中间的DNA。这种聚合酶聚集成簇的组织——我们称之为转录“工厂”——具有重要的影响。例如,在HeLa细胞的细胞核中,可溶性RNA聚合酶II的浓度约为1mm,但在工厂中的局部浓度要高1000倍。因为启动子可以在15秒内扩散约100 nm,所以靠近工厂的启动子很可能启动;此外,当终止释放时,它仍然位于工厂附近,运动和修饰(例如乙酰化)伴随延伸将使其处于“开放”构象。另一个长环中的启动子不太可能启动,因为启动子浓度随着距离工厂的距离的立方而下降。此外,长链将缓冲其转录诱导的运动,使其易于去乙酰化,沉积HP1(异染色质蛋白1),并并入异染色质。然后,启动子周围的环境将是自我维持的:活性启动子与工厂的生产性碰撞将吸引增加起始频率的因子,并且非活性启动子保持非活性的时间越长,它嵌入异染色质的时间就越多。我们在此回顾不同的工厂可能专门从事不同组基因的转录的证据。
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Specialized transcription factories.

We have previously suggested a model for the eukaryotic genome based on the structure of the bacterial nucleoid where active RNA polymerases cluster to loop the intervening DNA. This organization of polymerases into clusters--which we call transcription 'factories'--has important consequences. For example, in the nucleus of a HeLa cell the concentration of soluble RNA polymerase II is approximately 1 mM, but the local concentration in a factory is 1000-fold higher. Because a promoter can diffuse approximately 100 nm in 15 s, one lying near a factory is likely to initiate; moreover, when released at termination, it will still lie near a factory, and the movement and modifications (e.g. acetylation) accompanying elongation will leave it in an 'open' conformation. Another promoter out in a long loop is less likely to initiate, because the promoter concentration falls off with the cube of the distance from the factory. Moreover, a long tether will buffer it from transcription-induced movement, making it prone to deacetylation, deposition of HP1 (heterochromatin protein 1), and incorporation into heterochromatin. The context around a promoter will then be self-sustaining: productive collisions of an active promoter with the factory will attract factors increasing the frequency of initiation, and the longer an inactive promoter remains inactive, the more it becomes embedded in heterochromatin. We review here the evidence that different factories may specialize in the transcription of different groups of genes.

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