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首页> 外文期刊>The international journal of biochemistry and cell biology >A protein tyrosine phosphatase-like inositol polyphosphatase from Selenomonas ruminantium subsp. lactilytica has specificity for the 5-phosphate of myo-inositol hexakisphosphate.
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A protein tyrosine phosphatase-like inositol polyphosphatase from Selenomonas ruminantium subsp. lactilytica has specificity for the 5-phosphate of myo-inositol hexakisphosphate.

机译:一种来自硒单胞菌反刍动物亚种的蛋白质酪氨酸磷酸酶样肌醇多磷酸酶。乳酸菌对肌醇六羟磷酸的5-磷酸具有特异性。

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摘要

Although it is becoming well known that myo-inositol polyphosphates and the enzymes involved in their metabolism play a critical role in eukaryotic systems, little is understood of their significance in prokaryotic systems. A novel protein tyrosine phosphatase (PTP)-like inositol polyphosphatase (IPPase) gene has been cloned from Selenomonas ruminantium subsp. lactilytica (phyAsrl). The deduced amino acid sequence of PhyAsrl is most similar to a PTP-like IPPase from the anaerobic bacterium S. ruminantium (35% identity), but also shows similarity (19-30% identity) to various other putative prokaryotic PTPs. Recombinant PhyAsrl could dephosphorylate myo-inositol hexakisphosphate (Ins P(6)) in vitro, and maximal activity was displayed at an ionic strength of 200 mM, a pH of 4.5, and a temperature of 55 degrees C. In order to elucidate its substrate specificity and pathway of Ins P(6) dephosphorylation, a combination of kinetic and high-performance ion-pair chromatography studies were conducted. The data indicated that PhyAsrl has a general specificity for polyphosphorylated myo-inositol substrates, but can also dephosphorylate molecules containing high energy pyrophosphate bonds in vitro. PhyAsrl is unique from other microbial IPPases in that it preferentially cleaves the 5-phosphate position of Ins P(6). Furthermore, it can produce Ins(2)P via a highly unique and ordered pathway of sequential dephosphorylation: Ins P(6), Ins(1,2,3,4,6)P(5), D-Ins(1,2,3,6)P(4), Ins(1,2,3)P(3), and D/L-Ins(1,2)P(2). Finally, reverse transcription PCR was used to determine that phyAsrl is constitutively expressed, and together with bioinformatic analysis, was used to gain an understanding of its physiological significance.
机译:尽管众所周知肌醇多磷酸及其代谢中的酶在真核系统中起关键作用,但对其原核系统的重要性了解甚少。一个新的蛋白质酪氨酸磷酸酶(PTP)样肌醇多磷酸酶(IPPase)基因已被克隆从反刍动物亚种。乳酸菌(phyAsrl)。 PhyAsrl的推导氨基酸序列与厌氧细菌反刍动物链霉菌的PTP样IPPase最相似(35%相同),但与其他各种假定的原核PTP也相似(19-30%相同)。重组PhyAsrl可在体外使磷酸肌醇六磷酸(Ins P(6))脱磷酸,在200 mM的离子强度,4.5的pH和55摄氏度的温度下显示出最大的活性。为了阐明其底物Ins P(6)去磷酸化的特异性和途径,进行了动力学和高性能离子对色谱研究的组合。数据表明,PhyAsrl对多磷酸化肌醇底物具有一般特异性,但在体外还可以使含有高能焦磷酸键的分子脱磷酸化。 PhyAsrl与其他微生物IPPases不同,因为它优先裂解Ins P(6)的5-磷酸位置。此外,它可以通过高度独特且有序的顺序去磷酸化途径生产Ins(2)P:Ins P(6),Ins(1,2,3,4,6)P(5),D-Ins(1, 2,3,6)P(4),Ins(1,2,3)P(3)和D / L-Ins(1,2)P(2)。最后,逆转录PCR用于确定phyAsrl组成型表达,并与生物信息学分析一起用于了解其生理学意义。

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