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景天酸代谢对两种水生维管植物年生产力的贡献。

The contribution of crassulacean acid metabolism to the annual productivity of two aquatic vascular plants.

作者信息

Boston Harry L, Adams Michael S

机构信息

Department of Botany and the Institute for Environmental Studies, University of Wisconsin, 53706, Madison, WI, USA.

出版信息

Oecologia. 1986 Mar;68(4):615-622. doi: 10.1007/BF00378781.

DOI:10.1007/BF00378781
PMID:28311722
Abstract

Net annual productivity and annual carbon budgets were determined for populations of Littorella uniflora var. americana and Isoetes macrospora in a mesotrophic and oligotrophic lake in northern Wisconsin, to assess the contribution of Crassulacean Acid Metabolism (CAM) to annual productivity of the species in their natural environment. Nocturnal carbon accumulation (CAM), daytime uptake of external CO via the C mechanism, and refixation of endogenously generated CO from daytime respiration were the sources of carbon income. CAM activity as diurnal acid rhythms reached maxima of 89 to 182 μeq·g leaf fresh weight for the various populations.Maximum rates of daytime C uptake ranged from 0.56 to 1.46 mg C·g leaf dry wt.·h for the study populations. Refixation of daytime respired CO averaged 37% for the four populations. Carbon loss was due largely to "dark" respiration, during the day and night. Nocturnal carbon accumulation, daytime CO uptake and 24-h dark respiration were of similar magnitude, indicating dark respiration was equivalent to ∼50% of gross photosynthesis.Net annual production was measured for each population by following leaf turnover. Turnover rates for the Littorella populations were 1.56 and 1.72·yr, and for the Isoetes populations, 0.85 and 1.00·yr. Measured net annual productivity and calculated net annual productivity (based on carbon exchange) agreed within an average of 12% for the four populations. While CAM activity was greater for the more productive population of each species, the results suggest that the contribution of CAM to annual productivity is greater for the less productive population of each species. CAM contributed 45 to 55% of the annual carbon gain for the study populations.

摘要

在威斯康星州北部的一个中营养和贫营养湖泊中,测定了美洲单花苦草(Littorella uniflora var. americana)和大孢子水韭(Isoetes macrospora)种群的年净生产力和年度碳预算,以评估景天酸代谢(CAM)对这些物种在其自然环境中年生产力的贡献。夜间碳积累(CAM)、白天通过C机制吸收外部CO₂以及重新固定白天呼吸产生的内源性CO₂是碳收入的来源。作为昼夜酸节律的CAM活性在不同种群中达到89至182 μeq·g叶片鲜重的最大值。研究种群白天C吸收的最大速率范围为0.56至1.46 mg C·g叶片干重·h。四个种群重新固定白天呼吸产生的CO₂平均为37%。碳损失主要是由于白天和夜间的“暗”呼吸。夜间碳积累、白天CO₂吸收和24小时暗呼吸的幅度相似,表明暗呼吸相当于总光合作用的约50%。通过跟踪叶片周转来测量每个种群的年净产量。苦草种群的周转率分别为1.56和1.72·yr,水韭种群的周转率分别为0.85和1.00·yr。四个种群实测的年净生产力与计算的年净生产力(基于碳交换)平均相差12%以内。虽然每个物种中生产力较高的种群的CAM活性更大,但结果表明,CAM对每个物种中生产力较低种群的年生产力贡献更大。CAM对研究种群年碳增益的贡献为45%至55%。

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引用本文的文献

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Crassulacean acid metabolism in the context of other carbon-concentrating mechanisms in freshwater plants: a review.

本文引用的文献

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Oecologia. 1985 Mar;65(4):573-579. doi: 10.1007/BF00379675.
2
Inorganic carbon assimilation in the Isoetids, Isoetes lacustris L. and Lobelia dortmanna L.水韭属植物(水韭和睡菜)中的无机碳同化作用
Oecologia. 1984 Jan;61(1):115-121. doi: 10.1007/BF00379096.
3
Crassulacean acid metabolism in Isoetes bolanderi in high elevation oligotrophic lakes.高海拔贫营养湖泊中博兰德水韭的景天酸代谢
淡水植物中其他碳浓缩机制背景下的景天酸代谢:综述。
Photosynth Res. 2011 Sep;109(1-3):269-79. doi: 10.1007/s11120-011-9630-8. Epub 2011 Feb 10.
Oecologia. 1983 Apr;58(1):63-69. doi: 10.1007/BF00384543.
4
Crassulacean acid metabolism in the seasonally submerged aquatic Isoetes howellii.季节性淹没水生植物豪氏水韭中的景天酸代谢
Oecologia. 1983 Apr;58(1):57-62. doi: 10.1007/BF00384542.
5
Comparisons of δC values in leaves of aquatic macrophytes from different habitats in Britain and Finland; some implications for photosynthetic processes in aquatic plants.英国和芬兰不同生境的水生大型植物叶片中δC值的比较;对水生植物光合作用过程的一些启示。
Oecologia. 1981 Aug;50(1):117-124. doi: 10.1007/BF00378804.
6
Dark CO-fixation and diurnal malic acid fluctuations in the submerged-aquatic Isoetes storkii.沉水水生植物斯托克氏水韭中的暗二氧化碳固定与昼夜苹果酸波动
Oecologia. 1981 Mar;48(3):332-333. doi: 10.1007/BF00346490.
7
Crassulacean acid metabolism (CAM) in Kalanchoë: Changes in intercellular CO2 concentration during a normal CAM cycle and during cycles in continuous light or darkness.景天酸代谢(CAM)在落地生根中的表现:在正常 CAM 循环以及持续光照或黑暗循环期间胞间 CO2 浓度的变化。
Planta. 1981 May;152(1):87-92. doi: 10.1007/BF00384990.
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Carbon Assimilation Characteristics of the Aquatic CAM Plant, Isoetes howellii.水生景天型CAM 植物的碳同化特征。
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