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Proc Natl Acad Sci U S A. 2010 Feb 23;107(8):3475-80. doi: 10.1073/pnas.0911663107. Epub 2010 Feb 8.
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本文引用的文献

1
Metabolic engineering towards the enhancement of photosynthesis.通过代谢工程提高光合作用。
Photochem Photobiol. 2008 Nov-Dec;84(6):1317-23. doi: 10.1111/j.1751-1097.2008.00427.x. Epub 2008 Aug 27.
2
Directing the evolution of Rubisco and Rubisco activase: first impressions of a new tool for photosynthesis research.指导核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)和Rubisco活化酶的进化:光合作用研究新工具的初步印象
Photosynth Res. 2008 Oct-Dec;98(1-3):667-75. doi: 10.1007/s11120-008-9324-z. Epub 2008 Jul 15.
3
Structure and function of Rubisco.核酮糖-1,5-二磷酸羧化酶/加氧酶的结构与功能。
Plant Physiol Biochem. 2008 Mar;46(3):275-91. doi: 10.1016/j.plaphy.2008.01.001. Epub 2008 Jan 12.
4
Conformational proofreading: the impact of conformational changes on the specificity of molecular recognition.构象校对:构象变化对分子识别特异性的影响。
PLoS One. 2007 May 23;2(5):e468. doi: 10.1371/journal.pone.0000468.
5
Mechanism of c(4) photosynthesis: the size and composition of the inorganic carbon pool in bundle sheath cells.C(4)光合作用的机制:束鞘细胞中无机碳库的大小和组成。
Plant Physiol. 1987 Dec;85(4):958-64. doi: 10.1104/pp.85.4.958.
6
Despite slow catalysis and confused substrate specificity, all ribulose bisphosphate carboxylases may be nearly perfectly optimized.尽管催化作用缓慢且底物特异性不明确,但所有核酮糖二磷酸羧化酶可能都已近乎完美地实现了优化。
Proc Natl Acad Sci U S A. 2006 May 9;103(19):7246-51. doi: 10.1073/pnas.0600605103. Epub 2006 Apr 26.
7
Directed evolution of RuBisCO hypermorphs through genetic selection in engineered E.coli.通过在工程化大肠杆菌中进行基因筛选对核酮糖-1,5-二磷酸羧化酶超形态进行定向进化。
Protein Eng Des Sel. 2006 Mar;19(3):113-9. doi: 10.1093/protein/gzj010. Epub 2006 Jan 19.
8
CO2 CONCENTRATING MECHANISMS IN PHOTOSYNTHETIC MICROORGANISMS.光合微生物中的二氧化碳浓缩机制
Annu Rev Plant Physiol Plant Mol Biol. 1999 Jun;50:539-570. doi: 10.1146/annurev.arplant.50.1.539.
9
Photosynthesis and growth of tobacco with a substituted bacterial Rubisco mirror the properties of the introduced enzyme.具有替代型细菌核酮糖-1,5-二磷酸羧化酶的烟草的光合作用和生长反映了所引入酶的特性。
Plant Physiol. 2003 Sep;133(1):287-94. doi: 10.1104/pp.103.026146.
10
Rubisco: structure, regulatory interactions, and possibilities for a better enzyme.核酮糖-1,5-二磷酸羧化酶/加氧酶:结构、调控相互作用以及改良该酶的可能性
Annu Rev Plant Biol. 2002;53:449-75. doi: 10.1146/annurev.arplant.53.100301.135233.

跨物种分析追踪了 Rubisco 在低维景观中向最优性的适应。

Cross-species analysis traces adaptation of Rubisco toward optimality in a low-dimensional landscape.

机构信息

Department of Physics of Complex Systems, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Proc Natl Acad Sci U S A. 2010 Feb 23;107(8):3475-80. doi: 10.1073/pnas.0911663107. Epub 2010 Feb 8.

DOI:10.1073/pnas.0911663107
PMID:20142476
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2840432/
Abstract

Rubisco (D-ribulose 1,5-bisphosphate carboxylase/oxygenase), probably the most abundant protein in the biosphere, performs an essential part in the process of carbon fixation through photosynthesis, thus facilitating life on earth. Despite the significant effect that Rubisco has on the fitness of plants and other photosynthetic organisms, this enzyme is known to have a low catalytic rate and a tendency to confuse its substrate, carbon dioxide, with oxygen. This apparent inefficiency is puzzling and raises questions regarding the roles of evolution versus biochemical constraints in shaping Rubisco. Here we examine these questions by analyzing the measured kinetic parameters of Rubisco from various organisms living in various environments. The analysis presented here suggests that the evolution of Rubisco is confined to an effectively one-dimensional landscape, which is manifested in simple power law correlations between its kinetic parameters. Within this one-dimensional landscape, which may represent biochemical and structural constraints, Rubisco appears to be tuned to the intracellular environment in which it resides such that the net photosynthesis rate is nearly optimal. Our analysis indicates that the specificity of Rubisco is not the main determinant of its efficiency but rather the trade-off between the carboxylation velocity and CO(2) affinity. As a result, the presence of oxygen has only a moderate effect on the optimal performance of Rubisco, which is determined mostly by the local CO(2) concentration. Rubisco appears as an experimentally testable example for the evolution of proteins subject both to strong selection pressure and to biochemical constraints that strongly confine the evolutionary plasticity to a low-dimensional landscape.

摘要

核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)可能是生物圈中含量最丰富的蛋白质,它在光合作用的碳固定过程中起着至关重要的作用,从而促进了地球上的生命活动。尽管 Rubisco 对植物和其他光合生物的适应性有重大影响,但这种酶的催化效率低,容易将其底物二氧化碳与氧气混淆。这种明显的低效性令人费解,并引发了关于进化与生化限制在塑造 Rubisco 中的作用的问题。在这里,我们通过分析生活在不同环境中的各种生物体的 Rubisco 的测量动力学参数来研究这些问题。这里提出的分析表明,Rubisco 的进化受到限制,只能在一个有效一维的景观中进行,这表现在其动力学参数之间存在简单的幂律关系。在这个可能代表生化和结构限制的一维景观中,Rubisco 似乎被调整到其所在的细胞内环境中,从而使净光合作用率接近最佳。我们的分析表明,Rubisco 的特异性不是其效率的主要决定因素,而是羧化速度和 CO2 亲和力之间的权衡。因此,氧气的存在对 Rubisco 的最佳性能只有适度的影响,这主要取决于局部 CO2 浓度。Rubisco 作为一个可通过实验验证的例子,展示了蛋白质在受到强烈选择压力和强烈限制其进化可塑性的生化限制的情况下的进化。