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3,6-二脱氧己糖的生物合成:CDP-6-脱氧-L-苏式-D-甘油-4-己酮糖3-脱水酶(E1)与其还原酶(E3)之间蛋白质-蛋白质相互作用的体内和体外证据。

Biosynthesis of 3,6-dideoxyhexoses: in vivo and in vitro evidence for protein-protein interaction between CDP-6-deoxy-L-threo-D-glycero-4-hexulose 3-dehydrase (E1) and its reductase (E3).

作者信息

Chen X M, Ploux O, Liu H W

机构信息

Department of Chemistry, University of Minnesota, Minneapolis 55455, USA.

出版信息

Biochemistry. 1996 Dec 24;35(51):16412-20. doi: 10.1021/bi961921i.

Abstract

CDP-6-deoxy-L-threo-D-glycero-4-hexulose 3-dehydrase (E1), together with its reductase (E3), catalyzes a novel deoxygenation reaction essential for the biosynthesis of 3,6-dideoxyhexoses. In an attempt to gain evidence substantiating the E1.E3 complex formation as a prerequisite for the C-3 deoxygenation activity, we have carried out experiments to study the interaction between these two proteins. The detection of a new species when a mixture of E1 and E3 was analyzed by size-exclusion chromatography was the initial indication supporting the proposed complex formation. Additional evidence for the expected complex formation was provided by the change of the CD spectrum of E1 upon its coupling with E3. The fact that the catalytic efficiency of this system is limited by the quantity of one enzyme, which becomes catalytically competent only after coupling with the second enzyme, further illustrated the importance of such a complex formation to the deoxygenation activity. By using the two-hybrid system which scores for interactions between two proteins coexpressed in yeast, the E1.E3 complex formation in vivo was also firmly established. These results, when considered with the incompatibility of other electron transfer proteins as replacements for E3 in this electron relay, nicely demonstrated the specificity of the E1-E3 recognition. The apparent dissociation constant of the E1.E3 complex formed in rapid equilibrium was estimated to be 288 +/- 22 nM from the correlation between the initial rate of the overall reaction and the concentration of one protein component, and the stoichiometry between E3 and E1 of this complex was deduced as 1.7. Interestingly, while the conformation of the E1.E3 complex was sensitive to the salt concentration in the buffer, the decrease in the catalytic activity at high ionic strength was most likely due to the retardation of the electron transfer mediated by E3. In conjunction with early mechanistic studies, the present data establish the significance of the E1.E3 complex formation for catalysis and, consequently, corroborate the mechanism proposed for the overall deoxygenation process.

摘要

CDP-6-脱氧-L-苏式-D-甘油-4-己酮糖3-脱水酶(E1)与其还原酶(E3)共同催化一种对3,6-二脱氧己糖生物合成至关重要的新型脱氧反应。为了获得证据证实E1.E3复合物的形成是C-3脱氧活性的先决条件,我们进行了实验来研究这两种蛋白质之间的相互作用。当通过尺寸排阻色谱分析E1和E3的混合物时检测到一个新物种,这是支持所提出的复合物形成的初步迹象。E1与E3偶联后其圆二色光谱的变化为预期的复合物形成提供了额外证据。该系统的催化效率受一种酶的量限制,该酶只有在与第二种酶偶联后才具有催化活性,这一事实进一步说明了这种复合物形成对脱氧活性的重要性。通过使用对酵母中共表达的两种蛋白质之间的相互作用进行评分的双杂交系统,体内E1.E3复合物的形成也得到了确凿证实。这些结果与其他电子传递蛋白作为该电子传递中E3的替代物不兼容的情况相结合,很好地证明了E1-E3识别的特异性。根据总反应的初始速率与一种蛋白质组分浓度之间的相关性,快速平衡中形成的E1.E3复合物的表观解离常数估计为288±22 nM,并且该复合物中E3与E1之间的化学计量比推断为1.7。有趣的是,虽然E1.E3复合物的构象对缓冲液中的盐浓度敏感,但高离子强度下催化活性的降低最可能是由于E3介导的电子传递受阻。结合早期的机理研究,目前的数据确立了E1.E3复合物形成对催化的重要性,因此证实了为整个脱氧过程提出的机制。

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