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Spontaneous non-canonical assembly of CcmK hexameric components from β-carboxysome shells of cyanobacteria

机译:蓝细菌β-羧基体壳的CcmK六聚体组分的自发非规范组装

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摘要

CcmK proteins are major constituents of icosahedral shells of beta-carboxysomes, a bacterial microcompartment that plays a key role for CO2 fixation in nature. Supported by the characterization of bidimensional (2D) layers of packed CcmK hexamers in crystal and electron microscopy structures, CcmK are assumed to be the major components of icosahedral flat facets. Here, we reassessed the validity of this model by studying CcmK isoforms from Synechocystis sp. PCC6803. Native mass spectrometry studies confirmed that CcmK are hexamers in solution. Interestingly, potential pre-assembled intermediates were also detected with CcmK2. Atomic-force microscopy (AFM) imaging under quasi-physiological conditions confirmed the formation of canonical flat sheets with CcmK4. Conversely, CcmK2 formed both canonical and striped-patterned patches, while CcmK1 assembled into remarkable supra-hexameric curved honeycomb-like mosaics. Mutational studies ascribed the propensity of CcmK1 to form round assemblies to a combination of two features shared by at least one CcmK isoform in most beta-cyanobacteria: a displacement of an alpha helical portion towards the hexamer edge, where a potential phosphate binding funnel forms between packed hexamers, and the presence of a short C-terminal extension in CcmK1. All-atom molecular dynamics supported a contribution of phosphate molecules sandwiched between hexamers to bend CcmK1 assemblies. Formation of supra-hexameric curved structures could be reproduced in coarse-grained simulations, provided that adhesion forces to the support were weak. Apart from uncovering unprecedented CcmK self-assembly features, our data suggest the possibility that transitions between curved and flat assemblies, following cargo maturation, could be important for the biogenesis of beta-carboxysomes, possibly also of other BMC.
机译:CcmK蛋白是β-羧基体的二十面体壳的主要成分,β-羧基体是在自然界中对CO2固定起关键作用的细菌微区室。在晶体和电子显微镜结构中,通过压缩CcmK六聚体的二维(2D)层表征,可以证明CcmK是二十面体平面的主要成分。在这里,我们通过研究来自集胞藻的CcmK同工型,重新评估了该模型的有效性。 PCC6803。天然质谱研究证实CcmK是溶液中的六聚体。有趣的是,还用CcmK2检测了潜在的预组装中间体。在准生理条件下的原子力显微镜(AFM)成像证实具有CcmK4的典型平板的形成。相反,CcmK2既形成了规范的斑纹图案,又形成了条纹状的斑块,而CcmK1则组装成非同寻常的超六边形弯曲蜂窝状马赛克。突变研究将CcmK1形成圆形装配的倾向归因于大多数β蓝细菌中至少一个CcmK同工型共有的两个特征的组合:α螺旋部分向六聚体边缘的位移,在该位置之间形成了潜在的磷酸盐结合漏斗六聚体,并在CcmK1中存在一个短的C端延伸。所有原子的分子动力学支持了夹在六聚体之间的磷酸分子弯曲CcmK1组装的贡献。如果对支撑体的粘附力较弱,则可以在粗粒度模拟中复制超六聚体弯曲结构的形成。除了发现前所未有的CcmK自组装特征外,我们的数据还表明,货物成熟后,弯曲组装和扁平组装之间的过渡可能对β-羧基体(可能还有其他BMC)的生物发生很重要。

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