González-Gutiérrez José Antonio, Díaz-Jiménez Diana Fabiola, Vargas-Pérez Itzel, Guillén-Solís Gabriel, Stülke Jörg, Olmedo-Álvarez Gabriela
Departamento de Ingeniería Genética, Unidad Irapuato, Centro de Investigación y de Estudios Avanzados del Instituto Politécnico Nacional, Guanajuato, Mexico.
Departamento de Biología Molecular de Plantas, Instituto de Biotecnología, Universidad Nacional Autónoma de México, Cuernavaca, Mexico.
Front Microbiol. 2018 Sep 25;9:2261. doi: 10.3389/fmicb.2018.02261. eCollection 2018.
The presence of duplicated genes in organisms is well documented. There is increasing interest in understanding how these genes subfunctionalize and whether functional overlap can explain the fact that some of these genes are dispensable. possesses four DEAD-box RNA helicases (DBRH) genes, , and that make a good case to study to what extent they can complement each other despite their subfunctionalization. They possess the highly conserved N-terminal catalytic domain core common to RNA helicases, but different carboxy-terminal ends. All four genes have been shown to have independent functions although all participate in rRNA assembly. None of the DBRH is essential for growth at 37°C, and all single deletion mutants exhibit defective growth at 18°C except for Δ. Evaluation of double mutants did not reveal negative epistasis, suggesting that they do not have overlapping functions. The absence of any one gene distorts the expression pattern of the others, but not in a specific pattern suggestive of compensation. Overexpression of these paralogous genes in the different mutant backgrounds did not result in cross-complementation, further confirming their lack of buffering capability. Since no complementation could be observed among full sized proteins, we evaluated to what extent the superfamily 2 (SF2) helicase core of the smallest DBRH, YfmL, could be functional when hooked to each of the C-terminal end of CshA, CshB, and DeaD/YxiN. None of the different chimeras complemented the different mutants, and instead, all chimeras inhibited the growth of the Δ mutant, and other combinations were also deleterious. Our findings suggest that the long time divergence between DEAD-box RNA helicase genes has resulted in specialized activities in RNA metabolism and shows that these duplicated genes cannot buffer one another.
生物体中存在重复基因已有充分记载。人们越来越有兴趣了解这些基因是如何进行亚功能化的,以及功能重叠是否可以解释为何其中一些基因是可有可无的。拥有四个DEAD盒RNA解旋酶(DBRH)基因,即、和,这为研究它们在亚功能化的情况下能在多大程度上相互补充提供了一个很好的案例。它们拥有RNA解旋酶共有的高度保守的N端催化结构域核心,但C端不同。尽管所有四个基因都参与rRNA组装,但都已显示具有独立功能。在37°C下生长时,没有一个DBRH对生长是必需的,除了Δ之外,所有单缺失突变体在18°C下均表现出生长缺陷。对双突变体的评估未发现负上位性,这表明它们没有重叠功能。任何一个基因的缺失都会扭曲其他基因的表达模式,但不是以暗示补偿的特定模式。在不同的突变背景中过表达这些旁系同源基因并未导致交叉互补,进一步证实了它们缺乏缓冲能力。由于在全长蛋白之间未观察到互补,我们评估了最小的DBRH YfmL的超家族2(SF2)解旋酶核心与CshA、CshB和DeaD/YxiN的每个C端连接时在多大程度上具有功能。不同的嵌合体均未对不同的突变体进行互补,相反,所有嵌合体均抑制了Δ突变体的生长,其他组合也具有有害性。我们的研究结果表明,DEAD盒RNA解旋酶基因之间的长期分化导致了RNA代谢中的专门活动,并表明这些重复基因不能相互缓冲。