Quilis Inma, Igual J Carlos
Departament de Bioquímica i Biologia Molecular and ERI BiotecMed Universitat de València Burjassot Spain.
FEBS Open Bio. 2016 Dec 14;7(1):74-87. doi: 10.1002/2211-5463.12157. eCollection 2017 Jan.
The yeast cyclins Cln1 and Cln2 are very similar in both sequence and function, but some differences in their functionality and localization have been recently described. The control of Cln1 and Cln2 cellular levels is crucial for proper cell cycle initiation. In this work, we analyzed the degradation patterns of Cln1 and Cln2 in order to further investigate the possible differences between them. Both cyclins show the same half-life but, while Cln2 degradation depends on ubiquitin ligases SCF and SCF, Cln1 is affected only by SCF. Degradation analysis of chimeric cyclins, constructed by combining fragments from Cln1 and Cln2, identifies the N-terminal sequence of the proteins as responsible of the cyclin degradation pattern. In particular, the N-terminal region of Cln2 is required to mediate degradation by SCF. This region is involved in nuclear import of Cln1 and Cln2, which suggests that differences in degradation may be due to differences in localization. Moreover, a comparison of the cyclins that differ only in the presence of the Cln2 nuclear export signal indicates a greater instability of exported cyclins, thus reinforcing the idea that cyclin stability is influenced by their localization.
酵母细胞周期蛋白Cln1和Cln2在序列和功能上都非常相似,但最近已描述了它们在功能和定位上的一些差异。Cln1和Cln2细胞水平的控制对于正确启动细胞周期至关重要。在这项工作中,我们分析了Cln1和Cln2的降解模式,以进一步研究它们之间可能存在的差异。两种细胞周期蛋白显示出相同的半衰期,但是,虽然Cln2的降解依赖于泛素连接酶SCF和SCF,但Cln1仅受SCF影响。通过组合Cln1和Cln2的片段构建的嵌合细胞周期蛋白的降解分析确定了蛋白质的N端序列是细胞周期蛋白降解模式的原因。特别是,Cln2的N端区域是介导SCF降解所必需的。该区域参与Cln1和Cln2的核输入,这表明降解差异可能是由于定位差异所致。此外,仅在存在Cln2核输出信号的情况下不同的细胞周期蛋白的比较表明输出的细胞周期蛋白具有更大的不稳定性,从而强化了细胞周期蛋白稳定性受其定位影响的观点。