Buchanan Kathryn T, Ames James B, Asfaw Sofya H, Wingard Jennifer N, Olson Cheryl L, Campana Patricia T, Araújo Ana Paula U, Engman David M
Department of Pathology and Microbiology-Immunology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois 60611, USA.
J Biol Chem. 2005 Dec 2;280(48):40104-11. doi: 10.1074/jbc.M505777200. Epub 2005 Sep 7.
The flagellar calcium-binding protein (FCaBP) of the flagellated protozoan Trypanosoma cruzi associates with the flagellar membrane via its N-terminal myristate and palmitate moieties in a calcium-modulated, conformation-dependent manner. This mechanism of localization is similar to that described for neuronal calcium sensors, which undergo calcium-dependent changes in conformation, which modulate the availability of the acyl groups for membrane interaction and partner association. To test whether FCaBP undergoes a calcium-dependent conformational change and to explore the role of such a change in flagellar targeting, we first introduced point mutations into each of the two EF-hand calcium-binding sites of FCaBP to define their affinities. Analysis of recombinant EF-3 mutant (E151Q), EF-4 mutant (E188Q), and double mutant proteins showed EF-3 to be the high affinity site (Kd approximately 9 microM) and EF-4 the low affinity site (Kd approximately 120 microM). These assignments also correlated with partial (E188Q), nearly complete (E151Q), and complete (E151Q,E188Q) disruption of calcium-induced conformational changes determined by NMR spectrometry. We next expressed the FCaBP E151Q mutant and the double mutant in T. cruzi epimastigotes. These transproteins localized to the flagellum, suggesting the existence of a calcium-dependent interaction of FCaBP that is independent of its intrinsic calcium binding capacity. Several proteins were identified by FCaBP affinity chromatography that interact with FCaBP in a calcium-dependent manner, but with differential dependence on calcium-binding by FCaBP. These findings may have broader implications for the calcium acyl switch mechanism of protein regulation.
鞭毛原生动物克氏锥虫的鞭毛钙结合蛋白(FCaBP)通过其N端肉豆蔻酸和棕榈酸部分以钙调节的、构象依赖的方式与鞭毛膜结合。这种定位机制类似于神经元钙传感器所描述的机制,神经元钙传感器会经历钙依赖的构象变化,这种变化会调节酰基用于膜相互作用和伙伴结合的可用性。为了测试FCaBP是否经历钙依赖的构象变化,并探索这种变化在鞭毛靶向中的作用,我们首先在FCaBP的两个EF手型钙结合位点分别引入点突变以确定它们的亲和力。对重组EF-3突变体(E151Q)、EF-4突变体(E188Q)和双突变体蛋白的分析表明,EF-3是高亲和力位点(解离常数约为9微摩尔),EF-4是低亲和力位点(解离常数约为120微摩尔)。这些结果也与通过核磁共振光谱法确定的钙诱导构象变化的部分(E188Q)、几乎完全(E151Q)和完全(E151Q,E188Q)破坏相关。接下来,我们在克氏锥虫前鞭毛体中表达了FCaBP E151Q突变体和双突变体。这些转蛋白定位于鞭毛,表明存在一种与FCaBP的钙依赖相互作用,该相互作用与其内在的钙结合能力无关。通过FCaBP亲和层析鉴定了几种蛋白,它们以钙依赖的方式与FCaBP相互作用,但对FCaBP钙结合的依赖性不同。这些发现可能对蛋白质调节的钙酰基开关机制具有更广泛的意义。