Davison Paul A, Schubert Heidi L, Reid James D, Iorg Charles D, Heroux Annie, Hill Christopher P, Hunter C Neil
Department of Molecular Biology and Biotechnology, University of Sheffield, Sheffield S10 2TN, UK.
Biochemistry. 2005 May 31;44(21):7603-12. doi: 10.1021/bi050240x.
Gun4 has been implicated in a developmental signaling pathway between the chloroplast and the nucleus involving magnesium protoporphyrin IX (MgP(IX)), the first dedicated intermediate in the chlorophyll biosynthetic pathway. Here we present the crystal structure of Thermosynechococcus elongatus Gun4 at 1.5 A, describe the binding affinities of Gun4 for substrate and product porphyrin molecules, and identify a likely (Mg)P(IX) binding site on the protein. Kinetic analyses show that Gun4 dramatically increases the efficiency of transformation of porphyrin substrate to metalloporphyrin product and that it also reduces the threshold Mg2+ concentration required for activity at low porphyrin concentration. Gun4 therefore controls magnesium chelatase at physiologically significant Mg2+ concentrations and likely acts as a molecular switch in vivo so that in its absence magnesium chelatase is inactive. This mechanism could allow Gun4 to mediate magnesium protoporphyrin levels both for chlorophyll biosynthesis and for signaling to the nucleus.
Gun4参与了叶绿体与细胞核之间涉及镁原卟啉IX(MgP(IX))的一条发育信号通路,MgP(IX)是叶绿素生物合成途径中的首个专用中间体。在此,我们展示了嗜热栖热放线菌Gun4在1.5埃分辨率下的晶体结构,描述了Gun4与底物及产物卟啉分子的结合亲和力,并确定了该蛋白上一个可能的(Mg)P(IX)结合位点。动力学分析表明,Gun4显著提高了卟啉底物转化为金属卟啉产物的效率,并且在低卟啉浓度下还降低了活性所需的阈值Mg2+浓度。因此,Gun4在生理上显著的Mg2+浓度下控制镁螯合酶,并且可能在体内充当分子开关,使得在其缺失时镁螯合酶无活性。这种机制可能使Gun4既能调节用于叶绿素生物合成的镁原卟啉水平,又能调节向细胞核发出信号的水平。