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一种用于快速评估温度对光合作用影响的光声方法。

A photoacoustic method for rapid assessment of temperature effects on photosynthesis.

作者信息

Herbert Stephen K, Biel Karl Y, Vogelmann Thomas C

机构信息

Department of Botany, University of Wyoming, 1000 E. University Avenue, Laramie, WY 82071-3165, USA.

出版信息

Photosynth Res. 2006 Mar;87(3):287-94. doi: 10.1007/s11120-005-9009-9. Epub 2006 Jan 26.

Abstract

The photosynthetic and photoacoustic properties of leaf samples were studied using a photoacoustic system modified for precise temperature control. Data were collected over a temperature range of -10 degrees C to +60 degrees C. A distinct acoustic noise transient marked the freezing temperature of the samples. A positive absorption transient and a brief period of oxygen uptake marked the thermal denaturing temperature of the samples. Between these extremes, the effects of temperature on light absorption, oxygen evolution, and photochemical energy storage were quantified quickly and easily. Oxygen evolution could be measured as low as -5 degrees C and showed a broad temperature peak that was 10 degrees C lower under limiting light intensity than under saturating light intensity. Photochemical energy storage showed a narrower temperature peak that was only slightly lower for limiting light intensities than for saturating light intensities. In a survey of diverse plants, temperature response curves for oxygen evolution were determined readily for a variety of leaf types, including ferns and conifer needles. These results demonstrate that temperature-controlled photoacoustics can be useful for rapid assessment of temperature effects on photosynthesis and other leaf properties.

摘要

使用经过改进以实现精确温度控制的光声系统研究了叶片样品的光合和光声特性。在-10摄氏度至+60摄氏度的温度范围内收集数据。一个明显的声学噪声瞬变标志着样品的冻结温度。一个正吸收瞬变和一段短暂的氧气吸收标志着样品的热变性温度。在这些极端情况之间,温度对光吸收、氧气释放和光化学能量储存的影响能够快速且容易地被量化。氧气释放在低至-5摄氏度时即可测量,并且显示出一个宽温度峰值,在限制光强下比在饱和光强下低10摄氏度。光化学能量储存显示出一个较窄的温度峰值,对于限制光强而言仅略低于饱和光强时的温度峰值。在对多种植物的调查中,对于包括蕨类植物和针叶树针叶在内的各种叶片类型,都能很容易地确定氧气释放的温度响应曲线。这些结果表明,温度控制的光声技术可用于快速评估温度对光合作用和其他叶片特性的影响。

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