Liu Xueqin, Xie Debao, Hua Yu, Zeng Pei, Ma Lujie, Zeng Fanli
College of Life Sciences, Hebei Agricultural University, Baoding, China.
State Key Laboratory of North China Crop Improvement and Regulation, Baoding, China.
FASEB J. 2020 Nov;34(11):15547-15558. doi: 10.1096/fj.202001523R. Epub 2020 Sep 28.
RNA polymerase II is one of the most vital macromolecular complexes in eukaryotes and the assembly of such complete enzyme requires many factors. Three members of GPN-loop GTPase family Npa3/Gpn1, Gpn2, and Gpn3 participate in the biogenesis of RNA polymerase II with nonredundant roles. We show here that rapid degradation of each GPN protein in yeast leads to cytoplasmic accumulation of Rpb1 and defects in the assembly of RNA polymerase II, suggesting conserved functions of GPN paralogs for RNA polymerase II biogenesis as in humans. Taking advantage of a multicopy genetic screening, we identified GPN3 and assembly factor RBA50 among others as strong suppressors of npa3 mutants. We further demonstrated that Npa3 interacts with Gpn3 and Rba50, similarly human Gpn1 physically interacts with Gpn3 and RPAP1 (human analog of Rba50). Moreover, a mutual dependency of protein levels of Npa3 and Gpn3 was also clearly presented in yeast using an auxin-inducible degron (AID) system. Interestingly, Rpb2, the second largest subunit of RNA polymerase II was determined to be the subunit that interacts with both Gpn1 and Rba50, indicating a close association of Npa3 and Rba50 in Rpb2 subcomplex assembly. Based on these results, we conclude that Npa3 interacts with Gpn3 and Rba50, for RNA polymerase II biogenesis. We therefore propose that multiple factors may coordinate through conserved regulatory mechanisms in the assembly of RNA polymerase complex.
RNA聚合酶II是真核生物中最重要的大分子复合物之一,而这种完整酶的组装需要许多因子。GPN环GTP酶家族的三个成员Npa3/Gpn1、Gpn2和Gpn3参与RNA聚合酶II的生物合成,发挥非冗余作用。我们在此表明,酵母中每种GPN蛋白的快速降解会导致Rpb1在细胞质中积累以及RNA聚合酶II组装缺陷,这表明GPN旁系同源物在RNA聚合酶II生物合成中具有与人类相似的保守功能。利用多拷贝遗传筛选,我们鉴定出GPN3和组装因子RBA50等是npa3突变体的强抑制因子。我们进一步证明Npa3与Gpn3和Rba50相互作用,同样地,人类Gpn1与Gpn3和RPAP1(Rba50的人类类似物)发生物理相互作用。此外,使用生长素诱导降解子(AID)系统在酵母中也清楚地呈现了Npa3和Gpn3蛋白水平的相互依赖性。有趣的是,RNA聚合酶II的第二大亚基Rpb2被确定为与Gpn1和Rba50都相互作用的亚基,这表明Npa3和Rba50在Rpb2亚复合物组装中密切相关。基于这些结果,我们得出结论,Npa3与Gpn3和Rba50相互作用,参与RNA聚合酶II的生物合成。因此,我们提出在RNA聚合酶复合物的组装过程中,多种因子可能通过保守的调控机制进行协调。