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Differential Interaction of Maize Root Ferredoxin:NADP+ Oxidoreductase with Photosynthetic and Non-Photosynthetic Ferredoxin Isoproteins

机译:玉米根铁氧还蛋白:NADP +氧化还原酶与光合和非光合铁氧还蛋白同工酶的差异相互作用

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摘要

In higher plants ferredoxin (Fd):NADP+ oxidoreductase (FNR) and Fd are each distributed in photosynthetic and non-photosynthetic organs as distinct isoproteins. We have cloned cDNAs for leaf FNR (L-FNR I and L-FNR II) and root FNR (R-FNR) from maize (Zea mays L.), and produced recombinant L-FNR I and R-FNR to study their enzymatic functions through kinetic and Fd-binding analyses. The Km value obtained by assay for a diaphorase activity indicated that R-FNR had a 10-fold higher affinity for NADPH than L-FNR I. When we assayed for NADPH-cytochrome c reductase activity using maize photosynthetic Fd (Fd I) and non-photosynthetic Fd (Fd III), the R-FNR showed a marked difference in affinity between these two Fd isoproteins; the Km for Fd III was 3.0 μm and that for Fd I was 29 μm. Consistent with this, the dissociation constant for the R-FNR:Fd III complex was 10-fold smaller than that of the R-FNR:Fd I complex. This differential binding capacity was confirmed by an affinity chromatography of R-FNR on Fd-sepharose with stronger binding to Fd III. L-FNR I showed no such differential interaction with Fd I and Fd III. These data demonstrated that R-FNR has the ability to discriminate between these two types of Fds. We propose that the stronger interaction of R-FNR with Fd III is crucial for an efficient electron flux of NADPH-FNR-Fd cascade, thus supporting Fd-dependent metabolism in non-photosynthetic organs.
机译:在高等植物中,铁氧还蛋白(Fd):NADP + 氧化还原酶(FNR)和Fd分别以不同的同蛋白形式分布在光合和非光合器官中。我们已经从玉米(Zea mays L.)克隆了叶片FNR(L-FNR I和L-FNR II)和根部FNR(R-FNR)的cDNA,并生产了重组L-FNR I和R-FNR以研究其酶促通过动力学和Fd结合分析发挥功能。通过检测心肌黄递酶活性获得的Km值表明,R-FNR对NADPH的亲和力比L-FNR I高10倍。当我们使用玉米光合Fd(Fd I)和-光合Fd(Fd III),R-FNR在这两个Fd同蛋白之间显示出显着的亲和力差异; Fd III的Km为3.0μm,Fd I的Km为29μm。与此相一致,R-FNR:Fd III复合物的解离常数比R-FNR:Fd I复合物的解离常数小10倍。该差异结合能力通过R-FNR在Fd-琼脂糖上的亲和层析证实,与Fd III具有更强的结合力。 L-FNR I与Fd I和Fd III没有这种差异性相互作用。这些数据表明,R-FNR能够区分这两种类型的Fds。我们建议,R-FNR与Fd III的更强相互作用对于NADPH-FNR-Fd级联的有效电子通量至关重要,从而支持非光合器官中Fd依赖的代谢。

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