首页> 外文OA文献 >Function of a STIM1 Homologue in C. elegans: Evidence that Store-operated Ca2+ Entry Is Not Essential for Oscillatory Ca2+ Signaling and ER Ca2+ Homeostasis
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Function of a STIM1 Homologue in C. elegans: Evidence that Store-operated Ca2+ Entry Is Not Essential for Oscillatory Ca2+ Signaling and ER Ca2+ Homeostasis

机译:STIM1同源物在秀丽隐杆线虫中的功能:证据表明存储操作的Ca2 +进入对于振荡Ca2 +信号传导和ER Ca2 +体内平衡不是必不可少的。

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摘要

1,4,5-trisphosphate (IP3)-dependent Ca2+ signaling regulates gonad function, fertility, and rhythmic posterior body wall muscle contraction (pBoc) required for defecation in Caenorhabditis elegans. Store-operated Ca2+ entry (SOCE) is activated during endoplasmic reticulum (ER) Ca2+ store depletion and is believed to be an essential and ubiquitous component of Ca2+ signaling pathways. SOCE is thought to function to refill Ca2+ stores and modulate Ca2+ signals. Recently, stromal interaction molecule 1 (STIM1) was identified as a putative ER Ca2+ sensor that regulates SOCE. We cloned a full-length C. elegans stim-1 cDNA that encodes a 530–amino acid protein with ∼21% sequence identity to human STIM1. Green fluorescent protein (GFP)–tagged STIM-1 is expressed in the intestine, gonad sheath cells, and spermatheca. Knockdown of stim-1 expression by RNA interference (RNAi) causes sterility due to loss of sheath cell and spermatheca contractile activity required for ovulation. Transgenic worms expressing a STIM-1 EF-hand mutant that constitutively activates SOCE in Drosophila and mammalian cells are sterile and exhibit severe pBoc arrhythmia. stim-1 RNAi dramatically reduces STIM-1∷GFP expression, suppresses the EF-hand mutation–induced pBoc arrhythmia, and inhibits intestinal store-operated Ca2+ (SOC) channels. However, stim-1 RNAi surprisingly has no effect on pBoc rhythm, which is controlled by intestinal oscillatory Ca2+ signaling, in wild type and IP3 signaling mutant worms, and has no effect on intestinal Ca2+ oscillations and waves. Depletion of intestinal Ca2+ stores by RNAi knockdown of the ER Ca2+ pump triggers the ER unfolded protein response (UPR). In contrast, stim-1 RNAi fails to induce the UPR. Our studies provide the first detailed characterization of STIM-1 function in an intact animal and suggest that SOCE is not essential for certain oscillatory Ca2+ signaling processes and for maintenance of store Ca2+ levels in C. elegans. These findings raise interesting and important questions regarding the function of SOCE and SOC channels under normal and pathophysiological conditions.
机译:1,4,5-三磷酸(IP3)依赖性Ca2 +信号传导可调控秀丽隐杆线虫排便所需的性腺功能,生殖力和节律性后体壁肌肉收缩(pBoc)。存储操作的Ca2 +进入(SOCE)在内质网(ER)Ca2 +存储耗尽期间被激活,并且被认为是Ca2 +信号通路必不可少的组成部分。人们认为,SOCE可用于补充Ca2 +存储和调制Ca2 +信号。最近,基质相互作用分子1(STIM1)被确定为调节SOCE的假定的ER Ca2 +传感器。我们克隆了全长的秀丽隐杆线虫stim-1 cDNA,该cDNA编码一个530-氨基酸的蛋白质,与人STIM1的序列同一性约为21%。标记有绿色荧光蛋白(GFP)的STIM-1在肠,性腺鞘细胞和精子中表达。通过RNA干扰(RNAi)抑制stim-1表达会导致无菌,这是由于鞘细胞的损失和排卵所需的精子收缩活性所致。表达在果蝇中组成性激活SOCE的STIM-1 EF-hand突变体的转基因蠕虫是不育的,并表现出严重的pBoc心律失常。 stim-1 RNAi显着降低STIM-1∷GFP的表达,抑制EF手突变引起的pBoc心律失常,并抑制肠存储的Ca2 +(SOC)通道。但是,令人惊讶的是,在野生型和IP3信号突变蠕虫中,stim-1 RNAi令人惊讶地对pBoc节律没有影响,后者受肠道振荡Ca2 +信号传导控制,对肠道Ca2 +振荡和波浪没有影响。 ER Ca2 +泵的RNAi敲低导致肠道Ca2 +储存耗竭,从而触发ER展开蛋白反应(UPR)。相反,stim-1 RNAi无法诱导UPR。我们的研究提供了完整动物中STIM-1功能的第一个详细特征,并表明SOCE对于某些振荡性Ca2 +信号传导过程和维持秀丽隐杆线虫中的Ca2 +储存水平不是必需的。这些发现提出了关于正常和病理生理条件下SOCE和SOC通道功能的有趣且重要的问题。

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