Department of Molecular and Cell Biology, University of California, Berkeley, California 94720-3200, USA.
J Biol Chem. 2012 Apr 13;287(16):12805-14. doi: 10.1074/jbc.M112.339853. Epub 2012 Feb 24.
Telomerase extends chromosome ends by the addition of single-stranded telomeric repeats. To support processive repeat synthesis, it has been proposed that coordination occurs between DNA interactions with the telomerase RNA template, the active site in the telomerase reverse transcriptase (TERT) core, a TERT N-terminal (TEN) domain, and additional subunits of the telomerase holoenzyme required for telomere elongation in vivo. The roles of TEN domain surface residues in primer binding and product elongation have been studied largely using assays of minimal recombinant telomerase enzymes, which lack holoenzyme subunits that properly fold and conformationally stabilize the ribonucleoprotein and/or control its association with telomere substrates in vivo. Here, we use Tetrahymena telomerase holoenzyme reconstitution in vitro to assess TEN domain sequence requirements in the physiological enzyme context. We find that TEN domain sequence substitutions in the Tetrahymena telomerase holoenzyme influence synthesis initiation and elongation rate but not processivity. Functional and direct physical interaction assays pinpoint a conserved TEN domain surface required for holoenzyme subunit association and for high repeat addition processivity. Our results add to the understanding of telomerase holoenzyme architecture and TERT domain functions with direct implications for the unique mechanism of single-stranded repeat synthesis.
端粒酶通过添加单链端粒重复序列来延长染色体末端。为了支持连续重复合成,有人提出,端粒酶 RNA 模板、端粒酶逆转录酶 (TERT) 核心的活性部位、TERT N 端 (TEN) 结构域以及体内延长端粒所需的端粒酶全酶的其他亚基之间的 DNA 相互作用会发生协调。TEN 结构域表面残基在引物结合和产物延伸中的作用主要通过最小化重组端粒酶酶的测定来研究,这些酶缺乏适当折叠和构象稳定核糖核蛋白的全酶亚基,和/或控制其在体内与端粒底物的结合。在这里,我们使用 Tetrahymena 端粒酶全酶体外重建来评估生理酶环境中 TEN 结构域序列要求。我们发现 Tetrahymena 端粒酶全酶中的 TEN 结构域序列取代会影响合成起始和延伸速率,但不影响进程性。功能和直接物理相互作用测定确定了 TEN 结构域表面的保守区域,该区域对于全酶亚基的结合以及高重复添加进程性是必需的。我们的结果增加了对端粒酶全酶结构和 TERT 结构域功能的理解,这对单链重复合成的独特机制具有直接影响。