Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee, United States of America.
PLoS One. 2010 Aug 25;5(8):e12407. doi: 10.1371/journal.pone.0012407.
Telomere integrity (including telomere length and capping) is critical in overall genomic stability. Telomere repeat binding factors and their associated proteins play vital roles in telomere length regulation and end protection. In this study, we explore the protein network surrounding telomere repeat binding factors, TRF1, TRF2, and POT1 using dual-tag affinity purification in combination with multidimensional protein identification technology liquid chromatography--tandem mass spectrometry (MudPIT LC-MS/MS). After control subtraction and data filtering, we found that TRF2 and POT1 co-purified all six members of the telomere protein complex, while TRF1 identified five of six components at frequencies that lend evidence towards the currently accepted telomere architecture. Many of the known TRF1 or TRF2 interacting proteins were also identified. Moreover, putative associating partners identified for each of the three core components fell into functional categories such as DNA damage repair, ubiquitination, chromosome cohesion, chromatin modification/remodeling, DNA replication, cell cycle and transcription regulation, nucleotide metabolism, RNA processing, and nuclear transport. These putative protein-protein associations may participate in different biological processes at telomeres or, intriguingly, outside telomeres.
端粒完整性(包括端粒长度和盖帽)对于整体基因组稳定性至关重要。端粒重复结合因子及其相关蛋白在端粒长度调节和末端保护中起着至关重要的作用。在这项研究中,我们使用双标签亲和纯化结合多维蛋白质鉴定技术液相色谱-串联质谱(MudPIT LC-MS/MS)探索了端粒重复结合因子 TRF1、TRF2 和 POT1 周围的蛋白质网络。经过对照扣除和数据过滤,我们发现 TRF2 和 POT1 共纯化了端粒蛋白复合物的所有六个成员,而 TRF1 以目前公认的端粒结构为证据,鉴定了六个成分中的五个。还鉴定了许多已知的 TRF1 或 TRF2 相互作用蛋白。此外,为三个核心成分中的每一个鉴定的假定关联伙伴分为功能类别,如 DNA 损伤修复、泛素化、染色体凝聚、染色质修饰/重塑、DNA 复制、细胞周期和转录调节、核苷酸代谢、RNA 处理和核转运。这些假定的蛋白质-蛋白质相互作用可能参与端粒或有趣的是,在端粒外的不同生物学过程。