鞘氨醇衍生物通过静电中和质膜上的多磷酸肌苷抑制细胞信号传导。

Norah L Smith, Stephanie Hammond, Deepti Gadi, Alice Wagenknecht-Wiesner, Barbara Baird, David Holowka
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引用次数: 0

摘要

通过IgE受体刺激肥大细胞可激活多个过程,包括Ca(2+)动员、颗粒胞外分泌和再循环核内体向外运输到质膜。我们使用荧光素偶联霍乱毒素B (FITC-CTxB)在循环末端体中标记GM(1),并在荧光仪和基于成像的检测中监测抗原刺激的质膜运输。我们发现,sphingosin衍生物d -sphingosin和N,N'-二甲基sphingosin有效地抑制了这种向外运输反应,而季铵盐衍生物N,N',N″-三甲基sphingosin则没有抑制作用。这种抑制模式也适用于Ca(2+)动员和分泌性溶酶体胞吐,表明对Ca(2+)依赖的信号传导过程有普遍影响。这种抑制作用与鞘氨醇衍生物翻转到质膜内叶的能力有关,表现为质膜相关的FITC-CTxB荧光和细胞质ph的变化。使用荧光标记的MARCKS效应域监测质膜相关的多磷酸肌苷,我们发现这些鞘氨醇衍生物在抑制Ca(2+)依赖性信号的同时,也取代了marks效应域与质膜的静电结合。我们的研究结果支持质膜多磷酸肌苷在Ca(2+)信号传导和刺激胞吐中的作用,并阐明了d -鞘氨醇调节哺乳动物细胞信号反应的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sphingosine derivatives inhibit cell signaling by electrostatically neutralizing polyphosphoinositides at the plasma membrane.

Sphingosine derivatives inhibit cell signaling by electrostatically neutralizing polyphosphoinositides at the plasma membrane.

Sphingosine derivatives inhibit cell signaling by electrostatically neutralizing polyphosphoinositides at the plasma membrane.

Sphingosine derivatives inhibit cell signaling by electrostatically neutralizing polyphosphoinositides at the plasma membrane.

Mast cell stimulation via IgE receptors causes activation of multiple processes, including Ca(2+) mobilization, granule exocytosis, and outward trafficking of recycling endosomes to the plasma membrane. We used fluorescein-conjugated cholera toxin B (FITC-CTxB) to label GM(1) in recycling endsomes and to monitor antigen-stimulated trafficking to the plasma membrane in both fluorimeter and imaging-based assays. We find that the sphingosine derivatives D-sphingosine and N,N'-dimethylsphingosine effectively inhibit this outward trafficking response, whereas a quarternary ammonium derivative, N,N',N″-trimethylsphingosine, does not inhibit. This pattern of inhibition is also found for Ca(2+) mobilization and secretory lysosomal exocytosis, indicating a general effect on Ca(2+)-dependent signaling processes. This inhibition correlates with the capacity of sphingosine derivatives to flip to the inner leaflet of the plasma membrane that is manifested as changes in plasma membrane-associated FITC-CTxB fluorescence and cytoplasmic pH. Using a fluorescently labeled MARCKS effector domain to monitor plasma membrane-associated polyphosphoinositides, we find that these sphingosine derivatives displace the electrostatic binding of this MARCKS effector domain to the plasma membrane in parallel with their capacity to inhibit Ca(2+)-dependent signaling. Our results support roles for plasma membrane polyphosphoinositides in Ca(2+) signaling and stimulated exocytosis, and they illuminate a mechanism by which D-sphingosine regulates signaling responses in mammalian cells.

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