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Direct estimation of functional PSII reaction center concentration and PSII electron flux on a volume basis: A new approach to the analysis of Fast Repetition Rate fluorometry (FRRf) data

机译:直接估算功能性PSII反应中心浓度和PSII电子通量:基于快速重复速率荧光法(FRRf)数据分析的新方法

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摘要

Phytoplankton primary productivity is most commonly measured by 14 C assimilation although less direct methods, such as O 2 exchange, have also been employed. These methods are invasive, requiring bottle incubation for up to 24 h. As an alternative, Fast Repetition Rate fluorometry (FRRf) has been used, on wide temporal and spatial scales within aquatic systems, to estimate photosystem II (PSII) electron flux per unit volume (JVPSII), which generally correlates well with photosynthetic O 2 evolution. A major limitation of using FRRf arises from the need to employ an independent method to determine the concentration of functional photosystem II reaction centers ([RCII]); a requirement that has prevented FRR fluorometers being used, as stand-alone instruments, for the estimation of electron transport. Within this study, we have taken a new approach to the analysis of FRRf data, based on a simple hypothesis; that under a given set of environmental conditions, the ratio of rate constants for RCII fluorescence emission and photochemistry falls within a narrow range, for all groups of phytoplankton. We present a simple equation, derived from the established FRRf algorithm, for determining [RCII] from dark FRRf data alone. We also describe an entirely new algorithm for estimating JV PSII , which does not require determination of [RCII] and is valid for a heterogeneous model of connectivity among RCIIs. Empirical supporting evidence is presented. These data are derived from FRR measurements across a diverse range of microalgae, in parallel with independent measurements of [RCII] . Possible sources of error, particularly under nutrient stress conditions, are discussed. © 2012, by the American Society of Limnology and Oceanography, Inc.
机译:浮游植物的初级生产力通常是通过14 C同化作用来衡量的,尽管也采用了不太直接的方法,例如O 2交换。这些方法具有侵入性,需要将瓶孵育最多24小时。作为替代方案,在水生系统中广泛的时间和空间尺度上,已使用快速重复速率荧光法(FRRf)来估算单位体积的光系统II(PSII)电子通量(JVPSII),该电子通量通常与光合O 2的演化密切相关。使用FRRf的主要局限性在于需要采用独立的方法来确定功能性光系统II反应中心([RCII])的浓度。这项要求阻止了FRR荧光计作为独立的仪器用于电子传输的估算。在这项研究中,我们基于简单的假设采用了一种新的方法来分析FRRf数据。在给定的一组环境条件下,对于所有浮游植物组,RCII荧光发射和光化学的速率常数之比都在狭窄的范围内。我们提出一个简单的方程式,该方程式由已建立的FRRf算法得出,用于仅根据暗FRRf数据确定[RCII]。我们还描述了一种用于估算合资PSII的全新算法,该算法不需要确定[RCII],并且对于RCII之间的异构连接模型有效。提供了经验支持证据。这些数据来自跨各种微藻类的FRR测量结果,与[RCII]的独立测量结果平行。讨论了可能的误差来源,尤其是在营养胁迫条件下。 ©2012,美国美国湖泊科学与海洋学学会版权所有。

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