Smothers D B, Kozubowski L, Dixon C, Goebl M G, Mathias N
Department of Biochemistry and Molecular Biology, Louisiana State University Health Sciences Center, Shreveport, Louisiana 71130, USA.
Mol Cell Biol. 2000 Nov;20(21):7845-52. doi: 10.1128/MCB.20.21.7845-7852.2000.
Ubiquitin-mediated degradation plays a crucial role in many fundamental biological pathways, including the mediation of cellular responses to changes in environmental conditions. A family of ubiquitin ligase complexes, called SCF complexes, found throughout eukaryotes, is involved in a variety of biological pathways. In Saccharomyces cerevisiae, an SCF complex contains a common set of components, namely, Cdc53p, Skp1p, and Hrt1p. Substrate specificity is defined by a variable component called an F-box protein. The F- box is a approximately 40-amino-acid motif that allows the F-box protein to bind Skp1p. Each SCF complex recognizes different substrates according to which F-box protein is associated with the complex. In yeasts, three SCF complexes have been demonstrated to associate with the ubiquitin-conjugating enzyme Cdc34p and have ubiquitin ligase activity. F-box proteins are not abundant and are unstable. As part of the SCF(Met30p) complex, the F-box protein Met30p represses methionine biosynthetic gene expression when availability of L-methionine is high. Here we demonstrate that in vivo SCF(Met30p) complex activity can be regulated by the abundance of Met30p. Furthermore, we provide evidence that Met30p abundance is regulated by the availability of L-methionine. We propose that the cellular responses mediated by an SCF complex are directly regulated by environmental conditions through the control of F-box protein stability.
泛素介导的降解在许多基本生物学途径中起着关键作用,包括介导细胞对环境条件变化的反应。一类名为SCF复合物的泛素连接酶复合物存在于所有真核生物中,参与多种生物学途径。在酿酒酵母中,一个SCF复合物包含一组共同的组分,即Cdc53p、Skp1p和Hrt1p。底物特异性由一种名为F-box蛋白的可变组分决定。F-box是一个约40个氨基酸的基序,它使F-box蛋白能够结合Skp1p。每个SCF复合物根据与之相关的F-box蛋白识别不同的底物。在酵母中,已证明三种SCF复合物与泛素结合酶Cdc34p相关联并具有泛素连接酶活性。F-box蛋白数量不多且不稳定。作为SCF(Met30p)复合物的一部分,当L-甲硫氨酸的可用性较高时,F-box蛋白Met30p会抑制甲硫氨酸生物合成基因的表达。在这里,我们证明了体内SCF(Met30p)复合物的活性可以由Met30p的丰度调节。此外,我们提供证据表明Met30p的丰度受L-甲硫氨酸可用性的调节。我们提出,SCF复合物介导的细胞反应通过对F-box蛋白稳定性的控制直接受环境条件调节。