Department of Structural Cell Biology, Max Planck Institute of Biochemistry, Martinsried/Munich D-82152, Germany.
Nucleic Acids Res. 2024 Jun 10;52(10):6036-6048. doi: 10.1093/nar/gkae323.
Nonsense-mediated mRNA decay (NMD) is a conserved co-translational mRNA surveillance and turnover pathway across eukaryotes. NMD has a central role in degrading defective mRNAs and also regulates the stability of a significant portion of the transcriptome. The pathway is organized around UPF1, an RNA helicase that can interact with several NMD-specific factors. In human cells, degradation of the targeted mRNAs begins with a cleavage event that requires the recruitment of the SMG6 endonuclease to UPF1. Previous studies have identified functional links between SMG6 and UPF1, but the underlying molecular mechanisms have remained elusive. Here, we used mass spectrometry, structural biology and biochemical approaches to identify and characterize a conserved short linear motif in SMG6 that interacts with the cysteine/histidine-rich (CH) domain of UPF1. Unexpectedly, we found that the UPF1-SMG6 interaction is precluded when the UPF1 CH domain is engaged with another NMD factor, UPF2. Based on cryo-EM data, we propose that the formation of distinct SMG6-containing and UPF2-containing NMD complexes may be dictated by different conformational states connected to the RNA-binding status of UPF1. Our findings rationalize a key event in metazoan NMD and advance our understanding of mechanisms regulating activity and guiding substrate recognition by the SMG6 endonuclease.
无意义介导的 mRNA 降解 (NMD) 是一种在真核生物中保守的共翻译 mRNA 监测和降解途径。NMD 在降解有缺陷的 mRNA 方面起着核心作用,同时也调节转录组的很大一部分稳定性。该途径围绕 UPF1 组织,UPF1 是一种 RNA 解旋酶,可与几种 NMD 特异性因子相互作用。在人类细胞中,靶向 mRNA 的降解始于需要 SMG6 内切核酸酶募集到 UPF1 的切割事件。先前的研究已经确定了 SMG6 和 UPF1 之间的功能联系,但潜在的分子机制仍然难以捉摸。在这里,我们使用质谱、结构生物学和生化方法来鉴定和表征 SMG6 中的一个保守短线性基序,该基序与 UPF1 的半胱氨酸/组氨酸丰富 (CH) 结构域相互作用。出乎意料的是,我们发现当 UPF1 CH 结构域与另一种 NMD 因子 UPF2 结合时,UPF1-SMG6 相互作用被排除。基于冷冻电镜数据,我们提出了形成不同的 SMG6 包含和 UPF2 包含 NMD 复合物的可能由与 UPF1 的 RNA 结合状态相关的不同构象状态决定。我们的发现合理地解释了真核生物 NMD 中的一个关键事件,并提高了我们对调节 SMG6 内切核酸酶活性和指导底物识别的机制的理解。