Department of Chemistry and Biochemistry, Center for Biomolecular Structure and Organization, University of Maryland, College Park, MD 20742, USA.
NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD 20899, USA.
Structure. 2020 Jan 7;28(1):29-43.e6. doi: 10.1016/j.str.2019.10.008. Epub 2019 Oct 31.
Post-translational substrate modification with ubiquitin is essential for eukaryotic cellular signaling. Polymeric ubiquitin chains are assembled with specific architectures, which convey distinct signaling outcomes depending on the linkages involved. Recently, branched K11/K48-linked polyubiquitins were shown to enhance proteasomal degradation during mitosis. To better understand the underlying structural mechanisms, we determined the crystal and NMR structures of branched K11/K48-linked tri-ubiquitin and discovered a previously unobserved interdomain interface between the distal ubiquitins. Small-angle neutron scattering and site-directed mutagenesis corroborated the presence of this interface, which we hypothesized to be influential in the physiological role of branched K11/K48-linked chains. Yet, experiments probing polyubiquitin interactions-deubiquitination assays, binding to proteasomal shuttle hHR23A-showed negligible differences between branched K11/K48-linked tri-ubiquitin and related di-ubiquitins. However, significantly stronger binding affinity for branched K11/K48-linked tri-ubiquitin was observed with proteasomal subunit Rpn1, thereby suggesting a functional impact of this interdomain interface and pinpointing the mechanistic site of enhanced degradation.
泛素化的翻译后底物修饰对于真核细胞信号转导至关重要。多聚泛素链具有特定的结构,根据涉及的连接方式,传递不同的信号转导结果。最近,研究表明分支的 K11/K48 连接多泛素可增强有丝分裂期间的蛋白酶体降解。为了更好地理解潜在的结构机制,我们确定了分支的 K11/K48 连接三泛素的晶体和 NMR 结构,并发现了先前未观察到的远端泛素之间的域间界面。小角度中子散射和定点突变实验证实了该界面的存在,我们假设该界面在分支的 K11/K48 连接链的生理作用中具有重要影响。然而,探测多泛素相互作用 - 去泛素化实验、与蛋白酶体穿梭蛋白 hHR23A 的结合实验表明,分支的 K11/K48 连接三泛素与相关的二泛素之间几乎没有差异。然而,与蛋白酶体亚基 Rpn1 观察到分支的 K11/K48 连接三泛素具有更强的结合亲和力,这表明该域间界面具有功能影响,并确定了增强降解的机制位点。