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首页> 外文期刊>Archives of Biochemistry and Biophysics >Properties of hybrid enzymes between Synechococcus large subunits and higher plant small subunits of ribulose-1,5-bisphosphate carboxylase/oxygenase in Escherichia coli
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Properties of hybrid enzymes between Synechococcus large subunits and higher plant small subunits of ribulose-1,5-bisphosphate carboxylase/oxygenase in Escherichia coli

机译:大肠杆菌中1,5-双磷酸核糖羧化酶/加氧酶的突触球菌大亚基和高等植物小亚基之间的杂合酶特性

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To explore the function of small subunits of Rubisco, three hybrid enzymes were synthesized in Escherichia coli by construction of a transcriptionally coupled expression system in which the synthetic small subunit gene of rice, tobacco, and wheat, respectively, was cloned downstream from the large subunit gene of Synechococcus sp. PCC6301. These coexpression products were detected by utilizing SDS-PAGE and confirmed by immunoblotting. The amount of carboxylase activity from the intact cells revealed that each higher plant small subunit was able to assemble with the Synechococcus large subunit octamer core to form an active heterologous enzyme in E. coli. However, in these heterologous enzymes, the interaction between large subunits and small subunits was very weak, the small subunit readily dissociated from the large su unit octamer core. A detailed kinetic assay was carried out with the partially purified hybrid enzymes. Compared to Synechococcus Rubisco, the activity of rice, tobacco, and wheat hybrid Rubisco decreased to 37, 61, and 37% of the original activity, respectively. These hybrid enzymes showed a greater affinity for CO2 and RuBP than Synechococcus Rubisco. The specificity factor of the three hybrid Rubiscos was 98, 84, and 76%, respectively, of the original. These results indicate for the first time that the small subunit contributes to the stability, catalytic efficiency, and CO2/O-2 specificity of Rubisco together, which suggests that small subunits may be fruitful targets for engineering an improved Rubisco. Meanwhile, we found that sorbitol in the culture of induced cells promoted the production of active assembled enzyme and shortened the time to reach maximal expression.
机译:为了探索Rubisco小亚基的功能,通过构建转录偶联表达系统在大肠杆菌中合成了三种杂交酶,在该系统中分别将水稻,烟草和小麦的合成小亚基基因克隆到大亚基的下游。 Synechococcus sp。的基因PCC6301。这些共表达产物通过利用SDS-PAGE检测并通过免疫印迹证实。来自完整细胞的羧化酶活性的量表明,每个高等植物的小亚基都能够与Syechococcus大亚基八聚体核心组装,在大肠杆菌中形成活性异源酶。然而,在这些异源酶中,大的亚基和小的亚基之间的相互作用非常弱,小的亚基容易与大的su单元八聚体核心解离。用部分纯化的杂合酶进行详细的动力学测定。与Synechococcus Rubisco相比,水稻,烟草和小麦杂交Rubisco的活性分别降低至原始活性的37%,61%和37%。这些杂合酶显示比Synchococcus Rubisco对CO2和RuBP的亲和力更大。三种杂种Rubiscos的特异性因子分别是原始的98%,84%和76%。这些结果首次表明,小亚基共同有助于Rubisco的稳定性,催化效率和CO2 / O-2特异性,这表明小亚基可能是工程化改良Rubisco的有效目标。同时,我们发现诱导细胞培养物中的山梨糖醇可促进活性组装酶的产生,并缩短达到最大表达的时间。

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