Department of Biochemistry and Biophysics, Texas A&M University, College Station, TX 77843-2128, USA.
National Maize Improvement Center of China, China Agricultural University, 100193 Beijing, China.
Nucleic Acids Res. 2021 Sep 20;49(16):9496-9507. doi: 10.1093/nar/gkab699.
The recent discovery of the bona-fide telomerase RNA (TR) from plants reveals conserved and unique secondary structure elements and the opportunity for new insight into the telomerase RNP. Here we examine how two highly conserved proteins previously implicated in Arabidopsis telomere maintenance, AtPOT1a and AtNAP57 (dyskerin), engage plant telomerase. We report that AtPOT1a associates with Arabidopsis telomerase via interaction with TERT. While loss of AtPOT1a does not impact AtTR stability, the templating domain is more accessible in pot1a mutants, supporting the conclusion that AtPOT1a stimulates telomerase activity but does not facilitate telomerase RNP assembly. We also show, that despite the absence of a canonical H/ACA binding motif within AtTR, dyskerin binds AtTR with high affinity and specificity in vitro via a plant specific three-way junction (TWJ). A core element of the TWJ is the P1a stem, which unites the 5' and 3' ends of AtTR. P1a is required for dyskerin-mediated stimulation of telomerase repeat addition processivity in vitro, and for AtTR accumulation and telomerase activity in vivo. The deployment of vertebrate-like accessory proteins and unique RNA structural elements by Arabidopsis telomerase provides a new platform for exploring telomerase biogenesis and evolution.
最近在植物中发现了真正的端粒酶 RNA (TR),揭示了保守和独特的二级结构元件,并为深入了解端粒酶 RNP 提供了新的机会。在这里,我们研究了以前在拟南芥端粒维持中涉及的两种高度保守的蛋白质,AtPOT1a 和 AtNAP57(dyskerin),如何与植物端粒酶结合。我们报告说,AtPOT1a 通过与 TERT 的相互作用与拟南芥端粒酶结合。虽然 AtPOT1a 的缺失不会影响 AtTR 的稳定性,但在 pot1a 突变体中模板结构域更容易接近,这支持了 AtPOT1a 刺激端粒酶活性但不促进端粒酶 RNP 组装的结论。我们还表明,尽管 AtTR 内没有典型的 H/ACA 结合基序,但 dyskerin 可以通过植物特异性三链结(TWJ)以高亲和力和特异性与 AtTR 结合。TWJ 的核心元素是 P1a 茎,它将 AtTR 的 5' 和 3' 端连接起来。P1a 是 dyskerin 在体外介导的端粒酶重复延伸过程性刺激所必需的,也是 AtTR 积累和体内端粒酶活性所必需的。拟南芥端粒酶采用类似脊椎动物的辅助蛋白和独特的 RNA 结构元件,为探索端粒酶发生和进化提供了新的平台。