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The EF-Hand Ca2+-binding Protein p22 Plays a Role in Microtubule and Endoplasmic Reticulum Organization and Dynamics with Distinct Ca2+-binding Requirements

机译:EF-手Ca2 +结合蛋白p22在微管和内质网组织中发挥作用,并具有不同的Ca2 +结合要求。

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摘要

We have reported that p22, an N-myristoylated EF-hand Ca2+-binding protein, associates with microtubules and plays a role in membrane trafficking. Here, we show that p22 also associates with membranes of the early secretory pathway membranes, in particular endoplasmic reticulum (ER). On binding of Ca2+, p22's ability to associate with membranes increases in an N-myristoylation-dependent manner, which is suggestive of a nonclassical Ca2+-myristoyl switch mechanism. To address the intracellular functions of p22, a digitonin-based “bulk microinjection” assay was developed to load cells with anti-p22, wild-type, or mutant p22 proteins. Antibodies against a p22 peptide induce microtubule depolymerization and ER fragmentation; this antibody-mediated effect is overcome by preincubation with the respective p22 peptide. In contrast, N-myristoylated p22 induces the formation of microtubule bundles, the accumulation of ER structures along the bundles as well as an increase in ER network formation. An N-myristoylated Ca2+-binding p22 mutant, which is unable to undergo Ca2+-mediated conformational changes, induces microtubule bundling and accumulation of ER structures along the bundles but does not increase ER network formation. Together, these data strongly suggest that p22 modulates the organization and dynamics of microtubule cytoskeleton in a Ca2+-independent manner and affects ER network assembly in a Ca2+-dependent manner.
机译:我们已经报道过,p22是一种N-肉豆蔻酰化的EF手Ca2 +结合蛋白,与微管结合并在膜运输中起作用。在这里,我们显示p22还与早期分泌途径膜,特别是内质网(ER)的膜相关。在结合Ca2 +时,p22与膜结合的能力以N-肉豆蔻酰化依赖性方式增加,这暗示了非经典的Ca2 +-肉豆蔻酰转换机制。为了解决p22的细胞内功能,开发了一种基于洋地黄毒苷的“批量显微注射”测定法,以向细胞中加载抗p22,野生型或突变型p22蛋白。针对p22肽的抗体可诱导微管解聚和ER片段化;通过与相应的p22肽预孵育,可以克服这种抗体介导的作用。相反,N-肉豆蔻酰化的p22诱导微管束的形成,沿束的ER结构的积累以及ER网络形成的增加。 N-肉豆蔻酰化的Ca2 +结合p22突变体,不能进行Ca2 +介导的构象变化,诱导微管束和沿束的ER结构积累,但不增加ER网络的形成。在一起,这些数据强烈暗示p22以Ca2 +无关的方式调节微管细胞骨架的组织和动力学,并以Ca2 +依赖性的方式影响ER网络的组装。

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