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基于三维结构的嗜热型核酮糖-1,5-二磷酸羧化酶突变设计提高了其在环境温度下的活性。

Mutation design of a thermophilic Rubisco based on three-dimensional structure enhances its activity at ambient temperature.

作者信息

Fujihashi Masahiro, Nishitani Yuichi, Kiriyama Tomohiro, Aono Riku, Sato Takaaki, Takai Tomoyuki, Tagashira Kenta, Fukuda Wakao, Atomi Haruyuki, Imanaka Tadayuki, Miki Kunio

机构信息

Department of Chemistry, Graduate School of Science, Kyoto University, Sakyo-Ku, Kyoto, 606-8502, Japan.

Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-Ku, Kyoto, 615-8510, Japan.

出版信息

Proteins. 2016 Oct;84(10):1339-46. doi: 10.1002/prot.25080. Epub 2016 Jun 24.

Abstract

Ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) plays a central role in carbon dioxide fixation on our planet. Rubisco from a hyperthermophilic archaeon Thermococcus kodakarensis (Tk-Rubisco) shows approximately twenty times the activity of spinach Rubisco at high temperature, but only one-eighth the activity at ambient temperature. We have tried to improve the activity of Tk-Rubisco at ambient temperature, and have successfully constructed several mutants which showed higher activities than the wild-type enzyme both in vitro and in vivo. Here, we designed new Tk-Rubisco mutants based on its three-dimensional structure and a sequence comparison of thermophilic and mesophilic plant Rubiscos. Four mutations were introduced to generate new mutants based on this strategy, and one of the four mutants, T289D, showed significantly improved activity compared to that of the wild-type enzyme. The crystal structure of the Tk-Rubisco T289D mutant suggested that the increase in activity was due to mechanisms distinct from those involved in the improvement in activity of Tk-Rubisco SP8, a mutant protein previously reported to show the highest activity at ambient temperature. Combining the mutations of T289D and SP8 successfully generated a mutant protein (SP8-T289D) with the highest activity to date both in vitro and in vivo. The improvement was particularly pronounced for the in vivo activity of SP8-T289D when introduced into the mesophilic, photosynthetic bacterium Rhodopseudomonas palustris, which resulted in a strain with nearly two-fold higher specific growth rates compared to that of a strain harboring the wild-type enzyme at ambient temperature. Proteins 2016; 84:1339-1346. © 2016 Wiley Periodicals, Inc.

摘要

1,5-二磷酸核酮糖羧化酶/加氧酶(Rubisco)在地球上的二氧化碳固定过程中起着核心作用。来自嗜热古菌柯达氏嗜热栖热菌(Tk-Rubisco)的Rubisco在高温下的活性约为菠菜Rubisco的20倍,但在环境温度下仅为其八分之一。我们试图提高Tk-Rubisco在环境温度下的活性,并成功构建了几个突变体,这些突变体在体外和体内均表现出比野生型酶更高的活性。在此,我们基于Tk-Rubisco的三维结构以及嗜热和中温植物Rubisco的序列比较设计了新的Tk-Rubisco突变体。基于此策略引入了四个突变以产生新的突变体,四个突变体之一T289D与野生型酶相比活性显著提高。Tk-Rubisco T289D突变体的晶体结构表明,活性的提高是由于与先前报道的在环境温度下表现出最高活性的突变蛋白Tk-Rubisco SP8活性提高所涉及的机制不同的机制。将T289D和SP8的突变成功组合产生了一种突变蛋白(SP8-T289D),其在体外和体内均具有迄今为止最高的活性。当将SP8-T289D引入嗜温光合细菌沼泽红假单胞菌时,其体内活性的提高尤为明显,这导致与在环境温度下携带野生型酶的菌株相比,该菌株的比生长速率提高了近两倍。《蛋白质》2016年;84:1339 - 1346。©2016威利期刊公司

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