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Detecting In-Situ oligomerization of engineered STIM1 proteins by diffraction-limited optical imaging

机译:通过衍射极限光学成像检测工程改造的STIM1蛋白的原位寡聚

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摘要

Several signaling proteins require self-association of individual monomer units to be activated for triggering downstream signaling cascades in cells. Methods that allow visualizing their underlying molecular mechanisms will immensely benefit cell biology. Using enhanced Green Fluorescent Protein (eGFP) complementation, here I present a functional imaging approach for visualizing the protein-protein interaction in cells. Activation mechanism of an ER (endoplasmic reticulum) resident Ca2+ sensor, STIM1 (Stromal Interaction Molecule 1) that regulates store-operated Ca2+ entry in cells is considered as a model system. Co-expression of engineered full-length human STIM1 (ehSTIM1) with N-terminal complementary split eGFP pairs in mammalian cells fluoresces to form ‘puncta’ upon a drop in ER lumen Ca2+ concentration. Quantization of discrete fluorescent intensities of ehSTIM1 molecules at a diffraction-limited resolution revealed a diverse set of intensity levels not exceeding six-fold. Detailed screening of the ehSTIM1 molecular entities characterized by one to six fluorescent emitters across various in-plane sections shows a greater probability of occurrence for entities with six emitters in the vicinity of the plasma membrane (PM) than at the interior sections. However, the number density of entities with six emitters was lesser than that of others localized close to the PM. This finding led to hypothesize that activated ehSTIM1 dimers perhaps oligomerize in bundles ranging from 1–6 with an increased propensity for the occurrence of hexamers of ehSTIM1 dimer units close to PM even when its partner protein, ORAI1 (PM resident Ca2+ channel) is not sufficiently over-expressed in cells. The experimental data presented here provide direct evidence for luminal domain association of ehSTIM1 monomer units to trigger activation and allow enumerating various oligomers of ehSTIM1 in cells.
机译:几种信号蛋白需要单个单体单元的自缔合才能被激活,以触发细胞中的下游信号级联。允许可视化其潜在分子机制的方法将极大地有益于细胞生物学。使用增强的绿色荧光蛋白(eGFP)互补,我在这里提出了一种功能成像方法,用于可视化细胞中的蛋白-蛋白相互作用。内质网常驻Ca 2 + 传感器STIM1(Stromal Interaction Molecule 1)的激活机制被认为是调节细胞中Ca 2 + 进入的激活机制模型系统。 ER细胞内腔Ca 2 + 浓度降低后,工程全长人类STIM1(ehSTIM1)与N端互补分裂eGFP对在乳腺细胞中共表达荧光,形成“点状”。 ehSTIM1分子的离散荧光强度在衍射极限分辨率下的定量分析显示出一组不超过六倍的强度水平。详细筛选ehSTIM1分子实体,其特征是在各个平面部分中具有1到6个荧光发射体,这表明质膜(PM)附近具有6个发射体的实体发生的概率比内部部分大。但是,具有六个发射器的实体的数量密度小于位于PM附近的其他实体的数量密度。这一发现导致了一个假设,即激活的ehSTIM1二聚体可能在1–6的范围内低聚,即使ehSTIM1二聚体的六聚体接近PM,其伴侣蛋白ORAI1(PM驻留Ca 2+ 通道)在细胞中的表达不足。此处提供的实验数据提供了ehSTIM1单体单元的内腔结构域缔合以触发激活并允许枚举ehSTIM1的各种寡聚体的直接证据。

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    Prasanna Srinivasan;

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  • 年(卷),期 -1(14),3
  • 年度 -1
  • 页码 e0213655
  • 总页数 21
  • 原文格式 PDF
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