Duan Bingbing, Qiu Chenxi, Lockless Steve W, Sze Sing-Hoi, Kaplan Craig D
Department of Biological Sciences, University of Pittsburgh, Pittsburgh, PA 15260.
Department of Genetics, Harvard Medical School, Boston, MA 02215.
bioRxiv. 2024 Sep 25:2024.01.20.576280. doi: 10.1101/2024.01.20.576280.
RNA polymerase II (Pol II) has a highly conserved domain, the trigger loop (TL), that controls transcription fidelity and speed. We previously probed pairwise genetic interactions between residues within and surrounding the TL for the purpose of understand functional interactions between residues and to understand how individual mutants might alter TL function. We identified widespread incompatibility between TLs of different species when placed in the Pol II context, indicating species-specific interactions between otherwise highly conserved TLs and its surroundings. These interactions represent epistasis between TL residues and the rest of Pol II. We sought to understand why certain TL sequences are incompatible with Pol II and to dissect the nature of genetic interactions within multiply substituted TLs as a window on higher order epistasis in this system. We identified both positive and negative higher-order residue interactions within example TL haplotypes. Intricate higher-order epistasis formed by TL residues was sometimes only apparent from analysis of intermediate genotypes, emphasizing complexity of epistatic interactions. Furthermore, we distinguished TL substitutions with distinct classes of epistatic patterns, suggesting specific TL residues that potentially influence TL evolution. Our examples of complex residue interactions suggest possible pathways for epistasis to facilitate Pol II evolution.
RNA聚合酶II(Pol II)有一个高度保守的结构域,即触发环(TL),它控制转录保真度和速度。我们之前探究了触发环内部及周围残基之间的成对遗传相互作用,目的是了解残基之间的功能相互作用,以及单个突变体如何改变触发环的功能。我们发现,当置于Pol II环境中时,不同物种的触发环之间存在广泛的不相容性,这表明在其他方面高度保守的触发环与其周围环境之间存在物种特异性相互作用。这些相互作用代表了触发环残基与Pol II其余部分之间的上位性。我们试图理解为什么某些触发环序列与Pol II不相容,并剖析多重取代触发环内遗传相互作用的本质,以此作为了解该系统中高阶上位性的一个窗口。我们在示例触发环单倍型中确定了正向和负向的高阶残基相互作用。触发环残基形成的复杂高阶上位性有时仅从中间基因型的分析中才明显,这凸显了上位性相互作用的复杂性。此外,我们区分了具有不同上位性模式类别的触发环替换,这表明了可能影响触发环进化的特定触发环残基。我们复杂残基相互作用的例子表明了上位性促进Pol II进化的可能途径。