Gál Zita, Nieto Blanca, Boukoura Stavroula, Rasmussen Anna Vestergaard, Larsen Dorthe Helena
Nucleolar Stress and Disease Group, Danish Cancer Society Research Center, Copenhagen, Denmark.
Front Cell Dev Biol. 2022 May 12;10:892006. doi: 10.3389/fcell.2022.892006. eCollection 2022.
The importance of chromatin environment for DNA repair has gained increasing recognition in recent years. The nucleolus is the largest sub-compartment within the nucleus: it has distinct biophysical properties, selective protein retention, and houses the specialized ribosomal RNA genes (collectively referred to as rDNA) with a unique chromatin composition. These genes have high transcriptional activity and a repetitive nature, making them susceptible to DNA damage and resulting in the highest frequency of rearrangements across the genome. A distinct DNA damage response (DDR) secures the fidelity of this genomic region, the so-called nucleolar DDR (n-DDR). The composition of the n-DDR reflects the characteristics of nucleolar chromatin with the nucleolar protein Treacle (also referred to as TCOF1) as a central coordinator retaining several well-characterized DDR proteins in the nucleolus. In this review, we bring together data on the structure of Treacle, its known functions in ribosome biogenesis, and its involvement in multiple branches of the n-DDR to discuss their interconnection. Furthermore, we discuss how the functions of Treacle in ribosome biogenesis and in the n-DDR may contribute to Treacher Collins Syndrome, a disease caused by mutations in Treacle. Finally, we outline outstanding questions that need to be addressed for a more comprehensive understanding of Treacle, the n-DDR, and the coordination of ribosome biogenesis and DNA repair.
近年来,染色质环境对DNA修复的重要性日益受到认可。核仁是细胞核内最大的亚区室:它具有独特的生物物理特性、选择性蛋白质保留能力,并容纳具有独特染色质组成的特殊核糖体RNA基因(统称为rDNA)。这些基因具有高转录活性和重复性,使其易受DNA损伤,并导致全基因组重排频率最高。一种独特的DNA损伤反应(DDR)确保了该基因组区域的保真度,即所谓的核仁DDR(n-DDR)。n-DDR的组成反映了核仁染色质的特征,核仁蛋白Treacle(也称为TCOF1)作为中央协调器,在核仁中保留了几种特征明确的DDR蛋白。在这篇综述中,我们汇集了关于Treacle结构的数据、其在核糖体生物发生中的已知功能以及其在n-DDR多个分支中的参与情况,以讨论它们之间的相互联系。此外,我们讨论了Treacle在核糖体生物发生和n-DDR中的功能如何可能导致Treacher Collins综合征,这是一种由Treacle突变引起的疾病。最后,我们概述了一些悬而未决的问题,这些问题需要得到解决,以便更全面地了解Treacle、n-DDR以及核糖体生物发生和DNA修复的协调。