From the Department of Biochemistry and Genetics, La Trobe Institute for Molecular Science, La Trobe University, Melbourne, Victoria 3086 and.
the School of Human Sciences and.
J Biol Chem. 2018 Apr 27;293(17):6593-6602. doi: 10.1074/jbc.RA117.001451. Epub 2018 Mar 12.
Members of the behavior human splicing (DBHS) protein family are nuclear proteins implicated in many layers of nuclear functions, including RNA biogenesis as well as DNA repair. Definitive of the DBHS protein family, the conserved DBHS domain provides a dimerization platform that is critical for the structural integrity and function of these proteins. The three human DBHS proteins, splicing factor proline- and glutamine-rich (SFPQ), paraspeckle component 1 (PSPC1), and non-POU domain-containing octamer-binding protein (NONO), form either homo- or heterodimers; however, the relative affinity and mechanistic details of preferential heterodimerization are yet to be deciphered. Here we report the crystal structure of a SFPQ/PSPC1 heterodimer to 2.3-Å resolution and analyzed the subtle structural differences between the SFPQ/PSPC1 heterodimer and the previously characterized SFPQ homodimer. Analytical ultracentrifugation to estimate the dimerization equilibrium of the SFPQ-containing dimers revealed that the SFPQ-containing dimers dissociate at low micromolar concentrations and that the heterodimers have higher affinities than the homodimer. Moreover, we observed that the apparent dissociation constant for the SFPQ/PSPC1 heterodimer was over 6-fold lower than that of the SFPQ/NONO heterodimer. We propose that these differences in dimerization affinity may represent a potential mechanism by which PSPC1 at a lower relative cellular abundance can outcompete NONO to heterodimerize with SFPQ.
行为人类剪接(DBHS)蛋白家族的成员是核蛋白,涉及许多核功能层,包括 RNA 生物发生以及 DNA 修复。DBHS 蛋白家族的特征是保守的 DBHS 结构域提供了二聚化平台,对于这些蛋白质的结构完整性和功能至关重要。三种人类 DBHS 蛋白,剪接因子脯氨酸-和谷氨酰胺丰富(SFPQ),核小体成分 1(PSPC1)和非 POUS 域结合八聚体结合蛋白(NONO),形成同型或异型二聚体;然而,偏好异源二聚化的相对亲和力和机制细节尚未被破解。在这里,我们报道了 SFPQ/PSPC1 异源二聚体的晶体结构,分辨率为 2.3-Å,并分析了 SFPQ/PSPC1 异源二聚体和之前表征的 SFPQ 同源二聚体之间的细微结构差异。分析超速离心法估计含有 SFPQ 的二聚体的二聚化平衡,结果表明含有 SFPQ 的二聚体在低微摩尔浓度下解离,并且异源二聚体比同源二聚体具有更高的亲和力。此外,我们观察到 SFPQ/PSPC1 异源二聚体的表观解离常数比 SFPQ/NONO 异源二聚体的低 6 倍以上。我们提出,这些二聚化亲和力的差异可能代表一种潜在的机制,即 PSPC1 在相对较低的细胞丰度下可以与 NONO 竞争,与 SFPQ 异源二聚化。