McGuire Andrew T, Keates Robert A B, Cook Stephanie, Mangroo Dev
Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON N1G2W1, Canada.
Biochem Cell Biol. 2009 Apr;87(2):431-43. doi: 10.1139/o08-145.
Utp8p is an essential 80 kDa intranuclear tRNA chaperone that transports tRNAs from the nucleolus to the nuclear tRNA export receptors in Saccharomyces cerevisiae. To help understand the mechanism of Utp8p function, predictive tools were used to derive a partial model of the tertiary structure of Utp8p. Secondary structure prediction, supported by circular dichroism measurements, indicated that Utp8p is divided into 2 domains: the N-terminal beta sheet and the C-terminal alpha helical domain. Tertiary structure prediction was more challenging, because the amino acid sequence of Utp8p is not directly homologous to any known protein structure. The tertiary structures predicted by threading and fold recognition had generally modest scores, but for the C-terminal domain, threading and fold recognition consistently pointed to an alpha-alpha superhelix. Because of the sequence diversity of this fold type, no single structural template was an ideal fit to the Utp8p sequence. Instead, a composite template was constructed from 3 different alpha-alpha superhelix structures that gave the best matches to different portions of the C-terminal domain sequence. In the resulting model, the most conserved sequences grouped in a tight cluster of positive charges on a protein that is otherwise predominantly negative, suggesting that the positive-charge cleft may be the tRNA-binding site. Mutations of conserved positive residues in the proposed binding site resulted in a reduction in the affinity of Utp8p for tRNA both in vivo and in vitro. Models were also derived for the 10 fungal homologues of Utp8p, and the localization of the positive charges on the conserved surface was found in all cases. Taken together, these data suggest that the positive-charge cleft of the C-terminal domain of Utp8p is involved in tRNA-binding.
Utp8p是一种必需的80 kDa核内tRNA伴侣蛋白,在酿酒酵母中负责将tRNA从核仁转运至核tRNA输出受体。为了帮助理解Utp8p的功能机制,我们使用预测工具推导了Utp8p三级结构的部分模型。圆二色性测量结果支持的二级结构预测表明,Utp8p分为2个结构域:N端β折叠片和C端α螺旋结构域。三级结构预测更具挑战性,因为Utp8p的氨基酸序列与任何已知蛋白质结构均无直接同源性。通过穿线法和折叠识别预测的三级结构得分通常不高,但对于C端结构域,穿线法和折叠识别始终指向一个α-α超螺旋。由于这种折叠类型的序列多样性,没有单一的结构模板能与Utp8p序列完美匹配。相反,我们从3种不同的α-α超螺旋结构构建了一个复合模板,该模板与C端结构域序列的不同部分匹配度最佳。在所得模型中,最保守的序列聚集在一个主要带负电荷的蛋白质上的紧密正电荷簇中,这表明正电荷裂隙可能是tRNA结合位点。所提议结合位点中保守正残基的突变导致Utp8p在体内和体外对tRNA的亲和力降低。我们还推导了Utp8p的10种真菌同源物的模型,并且在所有情况下都发现了保守表面上正电荷的定位。综上所述,这些数据表明Utp8p C端结构域的正电荷裂隙参与tRNA结合。