Slupsky C M, Desautels M, Huebert T, Zhao R, Hemmingsen S M, McIntosh L P
Department of Biochemistry and Molecular Biology, University of British Columbia, Vancouver, British Columbia V6T 1Z3, Canada.
J Biol Chem. 2001 Feb 23;276(8):5943-51. doi: 10.1074/jbc.M008716200. Epub 2000 Nov 21.
The Schizosaccharomyces pombe Cdc4 protein is required for the formation and function of the contractile ring, presumably acting as a myosin light chain. By using NMR spectroscopy, we demonstrate that purified Cdc4p is a monomeric protein with two structurally independent domains, each exhibiting a fold reminiscent of the EF-hand class of calcium-binding proteins. Although Cdc4p has one potentially functional calcium-binding site, it does not bind calcium in vitro. Three variants of Cdc4p containing single point mutations responsible for temperature-sensitive arrest of the cell cycle at cytokinesis (Gly-19 to Glu, Gly-82 to Asp, and Gly-107 to Ser) were also characterized by NMR and circular dichroism spectroscopy. In each case, the amino acid substitution only leads to small perturbations in the conformation of the protein. Furthermore, thermal unfolding studies indicate that, like wild-type Cdc4p, the three mutant forms are all extremely stable, remaining completely folded at temperatures significantly above those causing failure of cytokinesis in intact cells. Therefore, the altered phenotype must arise directly from a disruption of the function of Cdc4p rather than indirectly through a disruption of its overall structure. Several mutant alleles of Cdc4p also show interallelic complementation in diploid cells. This phenomenon can be explained if Cdcp4 has more than one essential function or, alternatively, if two mutant proteins assemble to form a functional complex. Based on the structure of Cdc4p, possible models for interallelic complementation including interactions with partner proteins and the formation of a myosin complex with Cdc4p fulfilling the role of both an essential and regulatory light chain are proposed.
粟酒裂殖酵母的Cdc4蛋白是收缩环形成和功能所必需的,推测其作为肌球蛋白轻链发挥作用。通过核磁共振光谱,我们证明纯化的Cdc4p是一种单体蛋白,具有两个结构独立的结构域,每个结构域都呈现出类似于EF手型钙结合蛋白的折叠结构。尽管Cdc4p有一个潜在的功能性钙结合位点,但它在体外不结合钙。还通过核磁共振和圆二色光谱对三种Cdc4p变体进行了表征,这些变体包含导致细胞周期在胞质分裂时温度敏感停滞的单点突变(Gly-19突变为Glu、Gly-82突变为Asp以及Gly-107突变为Ser)。在每种情况下,氨基酸取代仅导致蛋白质构象的微小扰动。此外,热变性研究表明,与野生型Cdc4p一样,这三种突变形式都极其稳定,在温度显著高于导致完整细胞胞质分裂失败的温度时仍保持完全折叠状态。因此,改变的表型必定直接源于Cdc4p功能的破坏,而非间接通过其整体结构的破坏。Cdc4p的几个突变等位基因在二倍体细胞中也表现出等位基因间互补。如果Cdcp4具有不止一种必需功能,或者如果两种突变蛋白组装形成功能性复合物,那么这种现象就可以得到解释。基于Cdc4p的结构,提出了等位基因间互补的可能模型,包括与伴侣蛋白的相互作用以及形成一个肌球蛋白复合物,其中Cdc4p同时发挥必需轻链和调节轻链的作用。