Yang Wei, Wilkins Anna L, Ye Yiming, Liu Zhi-ren, Li Shun-yi, Urbauer Jeffrey L, Hellinga Homme W, Kearney Alice, van der Merwe P Anton, Yang Jenny J
Department of Chemistry, Center for Drug Design and Biotechnology, Georgia State University, Atlanta, Georgia 30303, USA.
J Am Chem Soc. 2005 Feb 23;127(7):2085-93. doi: 10.1021/ja0431307.
Ca2+, "a signal of life and death", controls numerous cellular processes through interactions with proteins. An effective approach to understanding the role of Ca2+ is the design of a Ca2+-binding protein with predicted structural and functional properties. To design de novo Ca2+-binding sites in proteins is challenging due to the high coordination numbers and the incorporation of charged ligand residues, in addition to Ca2+-induced conformational change. Here, we demonstrate the successful design of a Ca2+-binding site in the non-Ca2+-binding cell adhesion protein CD2. This designed protein, Ca.CD2, exhibits selectivity for Ca2+ versus other di- and monovalent cations. In addition, La3+ (Kd 5.0 microM) and Tb3+ (Kd 6.6 microM) bind to the designed protein somewhat more tightly than does Ca2+ (Kd 1.4 mM). More interestingly, Ca.CD2 retains the native ability to associate with the natural target molecule. The solution structure reveals that Ca.CD2 binds Ca2+ at the intended site with the designed arrangement, which validates our general strategy for designing de novo Ca2+-binding proteins. The structural information also provides a close view of structural determinants that are necessary for a functional protein to accommodate the metal-binding site. This first success in designing Ca2+-binding proteins with desired structural and functional properties opens a new avenue in unveiling key determinants to Ca2+ binding, the mechanism of Ca2+ signaling, and Ca2+-dependent cell adhesion, while avoiding the complexities of the global conformational changes and cooperativity in natural Ca2+-binding proteins. It also represents a major achievement toward designing functional proteins controlled by Ca2+ binding.
钙离子,“生死信号”,通过与蛋白质相互作用控制众多细胞过程。理解钙离子作用的一种有效方法是设计具有预测结构和功能特性的钙离子结合蛋白。由于钙离子的高配位数、带电配体残基的掺入以及钙离子诱导的构象变化,从头设计蛋白质中的钙离子结合位点具有挑战性。在此,我们展示了在非钙离子结合细胞粘附蛋白CD2中成功设计出一个钙离子结合位点。这种设计的蛋白质Ca.CD2对钙离子相对于其他二价和单价阳离子具有选择性。此外,镧离子(解离常数5.0微摩尔)和铽离子(解离常数6.6微摩尔)与设计的蛋白质结合比钙离子(解离常数1.4毫摩尔)稍紧密。更有趣的是,Ca.CD2保留了与天然靶分子结合的天然能力。溶液结构表明Ca.CD2在预期位点以设计的排列方式结合钙离子,这验证了我们从头设计钙离子结合蛋白的总体策略。该结构信息还提供了功能蛋白容纳金属结合位点所需的结构决定因素的详细视图。在设计具有所需结构和功能特性的钙离子结合蛋白方面的首次成功,为揭示钙离子结合的关键决定因素、钙离子信号传导机制以及钙离子依赖性细胞粘附开辟了一条新途径,同时避免了天然钙离子结合蛋白中全局构象变化和协同作用的复杂性。这也代表了在设计受钙离子结合控制的功能蛋白方面的一项重大成就。