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首页> 外文期刊>MBio >Linking the Dynamic Response of the Carbon Dioxide-Concentrating Mechanism to Carbon Assimilation Behavior in Fremyella diplosiphon
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Linking the Dynamic Response of the Carbon Dioxide-Concentrating Mechanism to Carbon Assimilation Behavior in Fremyella diplosiphon

机译:将二氧化碳浓缩机制的动态响应与<命名含量含量型=“属型”> Fre -ella diplosiphon 联系起来给碳同化行为

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摘要

Cyanobacteria use a carbon dioxide (CO _(2))-concentrating mechanism (CCM) that enhances their carbon fixation efficiency and is regulated by many environmental factors that impact photosynthesis, including carbon availability, light levels, and nutrient access. Efforts to connect the regulation of the CCM by these factors to functional effects on carbon assimilation rates have been complicated by the aqueous nature of cyanobacteria. Here, we describe the use of cyanobacteria in a semiwet state on glass fiber filtration discs—cyanobacterial discs—to establish dynamic carbon assimilation behavior using gas exchange analysis. In combination with quantitative PCR (qPCR) and transmission electron microscopy (TEM) analyses, we linked the regulation of CCM components to corresponding carbon assimilation behavior in the freshwater, filamentous cyanobacterium Fremyella diplosiphon . Inorganic carbon (C _(i)) levels, light quantity, and light quality have all been shown to influence carbon assimilation behavior in F. diplosiphon . Our results suggest a biphasic model of cyanobacterial carbon fixation. While behavior at low levels of CO _(2) is driven mainly by the C _(i) uptake ability of the cyanobacterium, at higher CO _(2) levels, carbon assimilation behavior is multifaceted and depends on C _(i) availability, carboxysome morphology, linear electron flow, and cell shape. Carbon response curves (CRCs) generated via gas exchange analysis enable rapid examination of CO _(2) assimilation behavior in cyanobacteria and can be used for cells grown under distinct conditions to provide insight into how CO _(2) assimilation correlates with the regulation of critical cellular functions, such as the environmental control of the CCM and downstream photosynthetic capacity.
机译:蓝藻使用二氧化碳(CO _(2)) - 浓缩机制(CCM),增强其碳固定效率,并受到许多影响光合作用的环境因素,包括碳可用性,光水平和营养接入。通过这些因素将CCM调节与碳同化率的功能效果连接到碳同化率的努力受到青苔的水性的复杂性。在此,我们描述了在玻璃纤维过滤盘 - 蓝藻盘上的半自动纤维态中使用蓝细菌 - 以建立使用气体交换分析的动态碳同化行为。与定量PCR(QPCR)和透射电子显微镜(TEM)分析相结合,我们将CCM组分的调节与淡水,丝状蓝色的Cyanobacterium Fremyella Diplosiphon的相应碳同化行为联系起来。无机碳(C _(i))水平,光量和光质质量已被证明在F. Diplosiphon中影响碳同化行为。我们的研究结果表明了蓝藻碳固定的双相模型。虽然在低水平的CO _(2)处的行为主要由Cyanobacterium的C _(i)摄取能力驱动,但在较高的CO _(2)水平下,碳同化行为是多方面的,并且取决于C _(i)可用性,圆腹形态,线性电子流和细胞形状。通过气体交换分析产生的碳响应曲线(CRCS)能够快速检查Cyanobacteria中的CO _(2)同化行为,可用于在不同条件下生长的细胞,以便于如何与CO _(2)同化相关的洞察力与调控相关联临界蜂窝功能,例如CCM的环境控制和下游光合容量。

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