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Conformational modulation and hydrodynamic radii of CP12 protein and its complexes probed by fluorescence correlation spectroscopy

机译:荧光相关光谱技术探测CP12蛋白及其配合物的构象调节和流体力学半径

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Light/dark regulation of the Calvin cycle in oxygenic photosynthetic organisms involves the formation and dissociation of supramolecular complexes between CP12, a nuclear-encoded chloroplast protein, and the two enzymes glyceraldehyde-3-phosphate dehydrogenase (GAPDH) (EC 1.2.1.13) and phosphoribulokinase (PRK) (EC 2.7.1.19). Despite the high importance of understanding the structural basis of the interaction of CP12 with GAPDH and PRK to investigate the regulation of the Calvin cycle, information is still lacking about the structural remodulation of CP12 and its complex formation. Here, we characterize the diffusion dynamics and hydrodynamic radii of CP12 from Chlamydomonas reinhardtii upon binding to GAPDH and PRK using fluorescence correlation spectroscopy experiments. We quantify a hydrodynamic radius of 3.4 +/- 0.2 nm for the CP12 protein with an increase up to 5.2 +/- 0.3 nm upon complex formation with GAPDH and PRK. In addition, unfolding experiments reveal a 1.6-and 2.0-fold increase respectively of the hydrodynamic radii for the N-terminal and C-terminal cysteine CP12 mutant proteins compared with their native folded structures. The different behavior of the CP12 mutant proteins during hydrophobic collapse transition is a direct clue to different structural orientations of the CP12 mutant proteins. These different structures are expected to facilitate the binding of either GAPDH or PRK during binary complex and ternary complex formation
机译:氧气光合生物中加尔文循环的明暗调节涉及超分子复合物在核编码叶绿体蛋白CP12和两种酶甘油醛-3-磷酸脱氢酶(GAPDH)(EC 1.2.1.13)和磷酸核糖激酶(PRK)(EC 2.7.1.19)。尽管了解CP12与GAPDH和PRK相互作用的结构基础以研究加尔文循环的调节非常重要,但仍缺乏关于CP12的结构调节及其复杂形成的信息。在这里,我们使用荧光相关光谱实验表征了莱茵衣藻CP12与GAPDH和PRK结合后的扩散动力学和流体动力学半径。我们量化了CP12蛋白质的3.4 +/- 0.2 nm的流体动力学半径,并在与GAPDH和PRK形成复合物后增加了5.2 +/- 0.3 nm。此外,展开实验显示,与天然折叠结构相比,N端和C端半胱氨酸CP12突变蛋白的流体力学半径分别增加了1.6倍和2.0倍。 CP12突变蛋白在疏水性塌陷过渡过程中的不同行为是CP12突变蛋白不同结构取向的直接线索。这些不同的结构有望在二元复合物和三元复合物形成过程中促进GAPDH或PRK的结合

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