Institute of Biochemistry and Molecular Biology, National Taiwan University, Taipei City 10617, Taiwan.
Department of Chemistry, National Taiwan University, Taipei City 10617, Taiwan.
J Am Chem Soc. 2021 Apr 21;143(15):5815-5825. doi: 10.1021/jacs.1c00820. Epub 2021 Apr 8.
Telomeres are essential for chromosome maintenance. Cdc13 is a single-stranded telomeric DNA binding protein that caps telomeres and regulates telomerase function in yeast. Although specific binding of Cdc13 to telomeric DNA is critical for telomere protection, the detail mechanism how Cdc13-DNA complex protects telomere is unclear. Using two single-molecule methods, tethered particle motion and atomic force microscopy, we demonstrate that specific binding of Cdc13 on single-stranded telomeric DNA shortens duplex DNA into distinct states differed by ∼70-80 base pairs. DNA shortening by Cdc13 is dynamic and independent of duplex DNA sequences or length. Significantly, we found that Pif1 helicase is incapable of removing Cdc13 from the shortened DNA-Cdc13 complex, suggesting that Cdc13 forms structurally stable complex by shortening of the bound DNA. Together our data identified shortening of DNA by Cdc13 and provided an indication for efficient protection of telomere ends by the shortened DNA-Cdc13 complex.
端粒对于染色体的维持至关重要。Cdc13 是一种单链端粒 DNA 结合蛋白,它可以在酵母中帽状端粒并调节端粒酶的功能。虽然 Cdc13 与端粒 DNA 的特异性结合对于端粒的保护至关重要,但 Cdc13-DNA 复合物如何保护端粒的细节机制尚不清楚。我们使用两种单分子方法,系链粒子运动和原子力显微镜,证明 Cdc13 特异性结合单链端粒 DNA 会将双链 DNA 缩短成不同的状态,差异约为 70-80 个碱基对。Cdc13 引起的 DNA 缩短是动态的,与双链 DNA 序列或长度无关。重要的是,我们发现 Pif1 解旋酶无法将 Cdc13 从缩短的 DNA-Cdc13 复合物中去除,这表明 Cdc13 通过结合 DNA 的缩短形成结构稳定的复合物。我们的数据共同确定了 Cdc13 引起的 DNA 缩短,并为缩短的 DNA-Cdc13 复合物有效保护端粒末端提供了线索。