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首页> 外文期刊>The Biochemical Journal >Metabolism of the novel Ca2+-mobilizing messenger nicotinic acid-adenine dinucleotide phosphate via a 2'-specific Ca2+-dependent phosphatase.
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Metabolism of the novel Ca2+-mobilizing messenger nicotinic acid-adenine dinucleotide phosphate via a 2'-specific Ca2+-dependent phosphatase.

机译:通过2'-特异性Ca2 +依赖性磷酸酶代谢新型Ca2 +动员的信使烟酸-腺嘌呤二核苷酸磷酸。

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摘要

Nicotinic acid-adenine dinucleotide phosphate (NAADP) is a newly described Ca2+-mobilizing nucleotide that appears to target intracellular Ca2+-release channels distinct from those sensitive to inositol trisphosphate or ryanodine/cyclic ADP-ribose. Little, however, is known concerning the regulation of cellular NAADP levels. In the present study, we have characterized the metabolism of NAADP by brain membranes. From HPLC and MS analyses we show that loss of NAADP was associated with the appearance of a major product that is likely to be nicotinic acid-adenine dinucleotide (NAAD), the dephosphorylated form of NAADP. Dephosphorylation of NAADP, but not 3'-NAADP, was dramatically attenuated by Ca2+ chelators and stimulated by Ca2+ over a physiological range in a calmodulin-insensitive manner. In contrast, NADP was metabolized predominantly to ADP-ribose phosphate via glycohydrolase activity, although slower Ca2+-dependent dephosphorylation of both NADP and 2'-AMP could also be demonstrated. This is the first report describing a Ca2+-regulated 2'-specific phosphatase which is probably the major pathway for the inactivation of NAADP in brain. Our data provide a potential feedback mechanism for limiting NAADP-induced Ca2+ release within cells through stimulation of NAADP metabolism by Ca2+ and strongly support a signalling role for this novel nucleotide in the brain.
机译:烟酸-腺嘌呤二核苷酸磷酸(NAADP)是一种新描述的Ca2 +动员核苷酸,似乎靶向细胞内Ca2 +释放通道,与对三磷酸肌醇或雷诺丹定/环状ADP-核糖敏感的通道不同。然而,关于细胞NAADP水平的调节知之甚少。在本研究中,我们已经表征了脑膜对NAADP的代谢。通过HPLC和MS分析,我们发现NAADP的丢失与主要产物的出现有关,该产物很可能是烟酸-腺嘌呤二核苷酸(NAAD),即NAADP的去磷酸化形式。在钙磷蛋白不敏感的生理范围内,Ca2 +螯合剂可大大减弱NAADP(而非3'-NAADP)的去磷酸化作用,并被Ca2 +刺激。相反,NADP主要通过糖水解酶活性代谢为ADP-核糖磷酸,尽管NADP和2'-AMP的Ca2 +依赖性脱磷酸作用也较慢。这是第一份描述Ca2 +调节的2'-特异性磷酸酶的报告,这可能是大脑中NAADP失活的主要途径。我们的数据提供了一种潜在的反馈机制,可通过刺激Ca2 +刺激NAADP代谢来限制NAADP诱导的细胞内Ca2 +释放,并强烈支持这种新型核苷酸在脑中的信号传导作用。

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