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作物中核酮糖-1,5-二磷酸羧化酶/加氧酶的催化特性及温度响应

Rubisco Catalytic Properties and Temperature Response in Crops.

作者信息

Hermida-Carrera Carmen, Kapralov Maxim V, Galmés Jeroni

机构信息

Research Group on Plant Biology under Mediterranean Conditions, Universitat de les Illes Balears, 07122 Palma, Balearic Islands, Spain (C.H.-C., J.G.); andSchool of Natural Sciences and Psychology, Liverpool John Moores University, Liverpool L3 3AF, United Kingdom (M.V.K.).

Research Group on Plant Biology under Mediterranean Conditions, Universitat de les Illes Balears, 07122 Palma, Balearic Islands, Spain (C.H.-C., J.G.); andSchool of Natural Sciences and Psychology, Liverpool John Moores University, Liverpool L3 3AF, United Kingdom (M.V.K.)

出版信息

Plant Physiol. 2016 Aug;171(4):2549-61. doi: 10.1104/pp.16.01846. Epub 2016 Jun 21.

Abstract

Rubisco catalytic traits and their thermal dependence are two major factors limiting the CO2 assimilation potential of plants. In this study, we present the profile of Rubisco kinetics for 20 crop species at three different temperatures. The results largely confirmed the existence of significant variation in the Rubisco kinetics among species. Although some of the species tended to present Rubisco with higher thermal sensitivity (e.g. Oryza sativa) than others (e.g. Lactuca sativa), interspecific differences depended on the kinetic parameter. Comparing the temperature response of the different kinetic parameters, the Rubisco Km for CO2 presented higher energy of activation than the maximum carboxylation rate and the CO2 compensation point in the absence of mitochondrial respiration. The analysis of the Rubisco large subunit sequence revealed the existence of some sites under adaptive evolution in branches with specific kinetic traits. Because Rubisco kinetics and their temperature dependency were species specific, they largely affected the assimilation potential of Rubisco from the different crops, especially under those conditions (i.e. low CO2 availability at the site of carboxylation and high temperature) inducing Rubisco-limited photosynthesis. As an example, at 25°C, Rubisco from Hordeum vulgare and Glycine max presented, respectively, the highest and lowest potential for CO2 assimilation at both high and low chloroplastic CO2 concentrations. In our opinion, this information is relevant to improve photosynthesis models and should be considered in future attempts to design more efficient Rubiscos.

摘要

核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)的催化特性及其对温度的依赖性是限制植物二氧化碳同化潜力的两个主要因素。在本研究中,我们展示了20种作物在三种不同温度下的Rubisco动力学概况。结果在很大程度上证实了不同物种间Rubisco动力学存在显著差异。尽管有些物种(如水稻)的Rubisco比其他物种(如生菜)表现出更高的热敏感性,但种间差异取决于动力学参数。比较不同动力学参数的温度响应,在不考虑线粒体呼吸的情况下,Rubisco对二氧化碳的Km值比最大羧化速率和二氧化碳补偿点表现出更高的活化能。对Rubisco大亚基序列的分析揭示,在具有特定动力学特性的分支中存在一些处于适应性进化的位点。由于Rubisco动力学及其温度依赖性具有物种特异性,它们在很大程度上影响了不同作物中Rubisco的同化潜力,尤其是在那些诱导Rubisco限制光合作用的条件下(即羧化位点二氧化碳供应不足和高温)。例如,在25°C时,来自大麦和大豆的Rubisco在叶绿体二氧化碳浓度高和低的情况下分别表现出最高和最低的二氧化碳同化潜力。我们认为,这些信息对于改进光合作用模型具有重要意义,并且在未来设计更高效的Rubisco的尝试中应予以考虑。

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