Martínez-Lumbreras Santiago, Taverniti Valerio, Zorrilla Silvia, Séraphin Bertrand, Pérez-Cañadillas José Manuel
Department of Biological Physical Chemistry, Instituto de Química-Física 'Rocasolano', CSIC, Serrano-119, 28006 Madrid, Spain.
Equipe Labellisée La Ligue, Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGMBC), Centre National de Recherche Scientifique (CNRS) UMR 7104/Institut National de Santé et de Recherche Médicale (INSERM) U964/Université de Strasbourg, 67404 Illkirch, France.
Nucleic Acids Res. 2016 Jan 8;44(1):437-48. doi: 10.1093/nar/gkv1303. Epub 2015 Nov 23.
Metazoan SR and SR-like proteins are important regulatory factors in RNA splicing, export, translation and RNA decay. We determined the NMR structures and nucleic acid interaction modes of Gbp2 and Hrb1, two paralogous budding yeast proteins with similarities to mammalian SR proteins. Gbp2 RRM1 and RRM2 recognise preferentially RNAs containing the core motif GGUG. Sequence selectivity resides in a non-canonical interface in RRM2 that is highly related to the SRSF1 pseudoRRM. The atypical Gbp2/Hrb1 C-terminal RRM domains (RRM3) do not interact with RNA/DNA, likely because of their novel N-terminal extensions that block the canonical RNA binding interface. Instead, we discovered that RRM3 is crucial for interaction with the THO/TREX complex and identified key residues essential for this interaction. Moreover, Gbp2 interacts genetically with Tho2 as the double deletion shows a synthetic phenotype and preventing Gbp2 interaction with the THO/TREX complex partly supresses gene expression defect associated with inactivation of the latter complex. These findings provide structural and functional insights into the contribution of SR-like proteins in the post-transcriptional control of gene expression.
后生动物的SR蛋白和类SR蛋白是RNA剪接、输出、翻译及RNA降解过程中的重要调控因子。我们确定了Gbp2和Hrb1这两种与哺乳动物SR蛋白相似的芽殖酵母旁系同源蛋白的核磁共振结构及核酸相互作用模式。Gbp2的RRM1和RRM2优先识别含有核心基序GGUG的RNA。序列选择性存在于RRM2中一个与SRSF1假RRM高度相关的非典型界面。非典型的Gbp2/Hrb1 C端RRM结构域(RRM3)不与RNA/DNA相互作用,可能是因为其新的N端延伸阻断了典型的RNA结合界面。相反,我们发现RRM3对于与THO/TREX复合物的相互作用至关重要,并确定了这种相互作用所必需的关键残基。此外,Gbp2与Tho2存在遗传相互作用,因为双缺失显示出合成表型,并且阻止Gbp2与THO/TREX复合物的相互作用部分抑制了与后者复合物失活相关的基因表达缺陷。这些发现为类SR蛋白在基因表达的转录后调控中的作用提供了结构和功能方面的见解。