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680纳米和730纳米处的叶绿素荧光与叶片光合作用

Chlorophyll fluorescence at 680 and 730 nm and leaf photosynthesis.

作者信息

Peterson R B, Oja V, Laisk A

机构信息

Department of Biochemistry and Genetics, The Connecticut Agricultural Experiment Station, 123 Huntington St, New Haven, CT, 06511, USA,

出版信息

Photosynth Res. 2001;70(2):185-96. doi: 10.1023/A:1017952500015.

DOI:10.1023/A:1017952500015
PMID:16228352
Abstract

Chlorophyll fluorescence constitutes a simple, rapid, and non-invasive means to assess light utilization in Photosystem II (PS II). This study examines aspects relating to the accuracy and applicability of fluorescence for measurement of PS II photochemical quantum yield in intact leaves. A known source of error is fluorescence emission at 730 nm that arises from Photosystem I (PS I). We measured this PS I offset using a dual channel detection system that allows measurement of fluorescence yield in the red (660 nm < F < 710 nm) or far red (F > 710 nm) region of the fluorescence emission spectrum. The magnitude of the PS I offset was equivalent to 30% and 48% of the dark level fluorescence F(0) in the far red region for Helianthus annuus and Sorghum bicolor, respectively. The PS I offset was therefore subtracted from fluorescence yields measured in the far red spectral window prior to calculation of PS II quantum yield. Resulting values of PS II quantum yield were consistently higher than corresponding values based on emission in the red region. The basis for this discrepancy lies in the finite optical thickness of the leaf that leads to selective reabsorption by chlorophyll of red fluorescence emission originating in deeper cell layers. Consequently, red fluorescence measurements preferentially sense emission from chloroplasts in the uppermost layer of the leaf where levels of photoprotective nonphotochemical quenching are higher due to increased photon density. It is suggested that far red fluorescence, corrected for the PS I offset, provides the most reliable quantitative basis for calculation of PS II quantum yield because of reduced sensitivity of these measurements to gradients in leaf transmittance and quenching capacity.

摘要

叶绿素荧光是一种简单、快速且非侵入性的手段,用于评估光系统II(PS II)中的光利用情况。本研究考察了与荧光用于完整叶片中PS II光化学量子产率测量的准确性和适用性相关的方面。一个已知的误差来源是光系统I(PS I)产生的730 nm处的荧光发射。我们使用双通道检测系统测量了这种PS I偏移,该系统允许测量荧光发射光谱的红色(660 nm < F < 710 nm)或远红色(F > 710 nm)区域的荧光产率。对于向日葵和高粱,PS I偏移的幅度分别相当于远红色区域暗水平荧光F(0)的30%和48%。因此,在计算PS II量子产率之前,从远红色光谱窗口测量的荧光产率中减去PS I偏移。PS II量子产率的最终值始终高于基于红色区域发射的相应值。这种差异的基础在于叶片有限的光学厚度,这导致叶绿素对源自更深细胞层的红色荧光发射进行选择性重吸收。因此,红色荧光测量优先检测叶片最上层叶绿体的发射,由于光子密度增加,该层的光保护非光化学猝灭水平较高。有人认为,校正了PS I偏移的远红色荧光为计算PS II量子产率提供了最可靠的定量基础,因为这些测量对叶片透光率和猝灭能力梯度的敏感性较低。

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本文引用的文献

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Chlorophyll-a Pigment Measurement of Spirulina in Algal Growth Monitoring Using Portable Pulsed LED Fluorescence Lidar System.利用便携式脉冲 LED 荧光激光雷达系统监测藻类生长中的螺旋藻叶绿素-a 色素测量。
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