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从叶片到生态系统的光合作用测量方法的新进展。

Emerging approaches to measure photosynthesis from the leaf to the ecosystem.

机构信息

United States Department of Agriculture, Global Change and Photosynthesis Research Unit, Agricultural Research Service, Urbana, IL 61801, U.S.A.

Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, U.S.A.

出版信息

Emerg Top Life Sci. 2021 May 21;5(2):261-274. doi: 10.1042/ETLS20200292.

DOI:10.1042/ETLS20200292
PMID:33527993
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8166339/
Abstract

Measuring photosynthesis is critical for quantifying and modeling leaf to regional scale productivity of managed and natural ecosystems. This review explores existing and novel advances in photosynthesis measurements that are certain to provide innovative directions in plant science research. First, we address gas exchange approaches from leaf to ecosystem scales. Leaf level gas exchange is a mature method but recent improvements to the user interface and environmental controls of commercial systems have resulted in faster and higher quality data collection. Canopy chamber and micrometeorological methods have also become more standardized tools and have an advanced understanding of ecosystem functioning under a changing environment and through long time series data coupled with community data sharing. Second, we review proximal and remote sensing approaches to measure photosynthesis, including hyperspectral reflectance- and fluorescence-based techniques. These techniques have long been used with aircraft and orbiting satellites, but lower-cost sensors and improved statistical analyses are allowing these techniques to become applicable at smaller scales to quantify changes in the underlying biochemistry of photosynthesis. Within the past decade measurements of chlorophyll fluorescence from earth-orbiting satellites have measured Solar Induced Fluorescence (SIF) enabling estimates of global ecosystem productivity. Finally, we highlight that stronger interactions of scientists across disciplines will benefit our capacity to accurately estimate productivity at regional and global scales. Applying the multiple techniques outlined in this review at scales from the leaf to the globe are likely to advance understanding of plant functioning from the organelle to the ecosystem.

摘要

测定光合作用对于量化和模拟管理和自然生态系统的叶片到区域尺度生产力至关重要。本综述探讨了光合作用测量的现有和新颖进展,这些进展必将为植物科学研究提供创新方向。首先,我们探讨了从叶片到生态系统尺度的气体交换方法。叶片气体交换是一种成熟的方法,但最近商业系统的用户界面和环境控制的改进使得数据采集更快、质量更高。冠层室和微气象方法也成为了更标准化的工具,并通过与社区数据共享的长期时间序列数据,对变化环境下的生态系统功能有了更深入的了解。其次,我们回顾了用于测量光合作用的近程和远程传感方法,包括基于高光谱反射率和荧光的技术。这些技术长期以来一直用于飞机和轨道卫星,但成本更低的传感器和改进的统计分析使得这些技术能够在更小的尺度上应用,以量化光合作用潜在生物化学变化。在过去十年中,地球轨道卫星对叶绿素荧光的测量测量了太阳诱导荧光(SIF),从而能够估算全球生态系统生产力。最后,我们强调,跨学科科学家之间更强的相互作用将有助于我们提高在区域和全球尺度上准确估计生产力的能力。在从器官到生态系统的尺度上应用本综述中概述的多种技术,可能会增进对植物功能的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47a9/8166339/783ab3d7fcc0/ETLS-5-261-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47a9/8166339/783ab3d7fcc0/ETLS-5-261-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47a9/8166339/783ab3d7fcc0/ETLS-5-261-g0001.jpg

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Crop Photosynthetic Performance Monitoring Based on a Combined System of Measured and Modelled Chloroplast Electron Transport Rate in Greenhouse Tomato.基于实测与模拟叶绿体电子传递速率组合系统的温室番茄作物光合性能监测
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RCP8.5 tracks cumulative CO emissions.
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Genetics as a key to improving crop photosynthesis.遗传学在提高作物光合作用中的关键作用。
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Advances in field-based high-throughput photosynthetic phenotyping.基于野外的高通量光合作用表型分析的进展。
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RCP8.5 追踪累积的 CO 排放。
Proc Natl Acad Sci U S A. 2020 Aug 18;117(33):19656-19657. doi: 10.1073/pnas.2007117117. Epub 2020 Aug 3.
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Sci Data. 2020 Jul 9;7(1):225. doi: 10.1038/s41597-020-0534-3.
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