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结构洞察北极蓝藻捕光色素蛋白 C-藻蓝蛋白的冷适应机制。

Structural insights into the cold adaptation of the photosynthetic pigment-protein C-phycocyanin from an Arctic cyanobacterium.

机构信息

State Key Laboratory of Microbial Technology, Institute of Marine Science and Technology, Marine Biotechnology Research Center, Shandong University, Jinan 250100, China.

SOA Key Laboratory for Polar Science, Polar Research Institute of China, Shanghai 200136, China.

出版信息

Biochim Biophys Acta Bioenerg. 2017 Apr;1858(4):325-335. doi: 10.1016/j.bbabio.2017.02.004. Epub 2017 Feb 7.

Abstract

The cold adaptation mechanism of phycobiliproteins, the major photosynthetic pigment-proteins in cyanobacteria and red algae, has rarely been studied. Here we reported the biochemical, structural, and molecular dynamics simulation study of the C-phycocyanin from Arctic cyanobacterial strain Pseudanabaena sp. LW0831. We characterized the phycobilisome components of LW0831 and obtained their gene sequences. Compared to the mesophilic counterpart from Arthrospira platensis (Ar-C-PC), LW0831 C-phycocyanin (Ps-C-PC) has a decreased thermostability (∆T of -16°C), one of the typical features of cold-adapted enzymes. To uncover its structural basis, we resolved the crystal structure of Ps-C-PC 1 at 2.04Å. Consistent with the decrease in thermostability, comparative structural analyses revealed decreased intra-trimer and inter-trimer interactions in Ps-C-PC 1, compared to Ar-C-PC. However, comparative molecular dynamics simulations indicated that Ps-C-PC 1 shows similar flexibilities to Ar-C-PC for both the (αβ) trimer and (αβ) hexamer. Therefore, the optimization mode is clearly different from cold-adapted enzymes, which usually have increased flexibilities. Detailed analyses demonstrated different optimization modes for the α and β subunits and it was revealed that hydrophobic interactions are key to this difference, though salt bridges, hydrogen bonds, and surface hydrophobicity are also involved. This study is the first report of the structure of cold-adapted phycobiliproteins and provides insights into the cold-adaptation strategies of non-enzyme proteins.

摘要

藻胆蛋白是蓝藻和红藻中主要的光合色素蛋白,其冷适应机制研究甚少。本文报道了来自北极蓝藻菌株 Pseudanabaena sp. LW0831 的 C-藻蓝蛋白的生化、结构和分子动力学模拟研究。我们对 LW0831 的藻胆体成分进行了表征,并获得了它们的基因序列。与嗜热的节旋藻(Ar-C-PC)相比,LW0831 的 C-藻蓝蛋白(Ps-C-PC)的热稳定性降低(-16°C),这是冷适应酶的典型特征之一。为了揭示其结构基础,我们解析了 Ps-C-PC 1 的晶体结构,分辨率为 2.04Å。与热稳定性降低一致,比较结构分析表明,与 Ar-C-PC 相比,Ps-C-PC 1 中的单体间和三聚体间相互作用减少。然而,比较分子动力学模拟表明,对于(αβ)三聚体和(αβ)六聚体,Ps-C-PC 1 的柔韧性与 Ar-C-PC 相似。因此,优化模式显然与冷适应酶不同,后者通常具有更高的柔韧性。详细分析表明,α和β亚基采用了不同的优化模式,虽然盐桥、氢键和表面疏水性也参与其中,但疏水性相互作用是这种差异的关键。本研究首次报道了冷适应藻胆蛋白的结构,为非酶蛋白的冷适应策略提供了新的见解。

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