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Purification and Characterization of NADP+-Linked Isocitrate Dehydrogenase from Scots Pine1 : Evidence for Different Physiological Roles of the Enzyme in Primary Development

机译:NADP +连接的纯化和表征 苏格兰松树的异柠檬酸脱氢酶1 :酶的不同生理作用的证据 基本发展

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摘要

NADP+-isocitrate dehydrogenase (NADP+-IDH; EC 1.1.1.42) is involved in the supply of 2-oxoglutarate for ammonia assimilation and glutamate synthesis in higher plants through the glutamine synthetase/glutamate synthase (GS/GOGAT) cycle. Only one NADP+-IDH form of cytosolic localization was detected in green cotyledons of pine (Pinus spp.) seedlings. The pine enzyme was purified and exhibited molecular and kinetic properties similar to those described for NADP+-IDH from angiosperm, with a higher catalytic efficiency (105 m−1 s−1) than the deduced efficiencies for GS and GOGAT in higher plants. A polyclonal antiserum was raised against pine NADP+-IDH and used to assess protein expression in the seedlings. Steady-state levels of NADP+-IDH were coordinated with GS during seed germination and were associated with GS/GOGAT enzymes during chloroplast biogenesis, suggesting that NADP+-IDH is involved in the provision of carbon skeletons for the synthesis of nitrogen-containing molecules. However, a noncoordinated pattern of NADP+-IDH and GS/GOGAT was observed in advanced stages of cotyledon development and in the hypocotyl. A detailed analysis in hypocotyl sections revealed that NADP+-IDH abundance was inversely correlated with the presence of GS, GOGAT, and ribulose-1,5-bisphosphate carboxylase/oxygenase but was associated with the differentiation of the organ. These results cannot be explained by the accepted role of the enzyme in nitrogen assimilation and strongly suggest that NADP+-IDH may have other, as-yet-unknown, biological functions.
机译:NADP +-异柠檬酸脱氢酶(NADP + -IDH; EC 1.1.1.42)通过谷氨酰胺合成酶/谷氨酸合成酶(GS / GOGAT)循环参与2-氧代戊二酸的氨化和谷氨酸合成。在松树(Pinus spp。)幼苗的绿色子叶中仅检测到一种NADP + -IDH形式的胞质定位。纯化了松树酶,并显示了与被子植物NADP + -IDH相似的分子和动力学特性,其催化效率(105 m-1 s-1)比高等植物中GS和GOGAT的推导效率更高。产生了针对松树NADP + -IDH的多克隆抗血清,并用于评估幼苗中的蛋白质表达。种子发芽过程中,NADP + -IDH的稳态水平与GS协调,在叶绿体生物发生过程中,其与GS / GOGAT酶相关,这表明NADP + -IDH参与了碳骨架的合成,以合成含氮分子。然而,在子叶发育的晚期和下胚轴中观察到NADP + -IDH和GS / GOGAT的不协调模式。在下胚轴部分的详细分析显示,NADP + -IDH的丰度与GS,GOGAT和核糖-1,5-双磷酸羧化酶/加氧酶的存在呈负相关,但与器官的分化有关。这些结果不能由酶在氮同化中的公认作用来解释,并且强烈表明NADP + -IDH可能还具有其他迄今未知的生物学功能。

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