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海芋转移至高光和低光条件后的光合作用与呼吸作用

Photosynthesis and respiration in Alocasia macrorrhiza following transfers to high and low light.

作者信息

Sims Daniel A, Pearcy Robert W

机构信息

Department of Botany, University of California, 95616, Davis, CA, USA.

出版信息

Oecologia. 1991 May;86(3):447-453. doi: 10.1007/BF00317615.

Abstract

Photosynthetic capacities and respiration rates of Alocasia macrorrhiza leaves were measured for 4 weeks following reciprocal transfers between high (20% of full sun) and low (1% of full sun) light environments. Photosynthetic capacities and respiration rates of mature, high-light leaves were 1.7 and 4.5 times those of low-light leaves, respectively. Following transfer, respiration rates adjusted within 1 week to those characteristic of plants grown in the new environment. By contrast, photosynthetic capacities either did not adjust or changed only slowly following transfer. Most of the difference in respiration between high- and low-light leaves was related to the carbohydrate status as determined by the daily PFD and little was directly related to the maintenance costs of the photosynthetic apparatus. Leaf construction cost was directly proportional to maximum photosynthetic capacity. Consequently, although daily carbon gain per unit leaf area was the same for low-light and high to low-light transferred plants within a week after transfer, the carbon return per unit of carbon investment in the leaves remained lower in the high to low transfer plants throughout the 4 week measurement period. Conversely, in high-light, the low leaf construction cost of the low to high-light transferred plants resulted in carbon gain per unit investment just as high as that of the high-light plants.

摘要

在将海芋叶片在高光(全日照的20%)和低光(全日照的1%)环境之间相互转移后的4周内,对其光合能力和呼吸速率进行了测量。成熟的高光叶片的光合能力和呼吸速率分别是低光叶片的1.7倍和4.5倍。转移后,呼吸速率在1周内调整到与在新环境中生长的植物的特征速率一致。相比之下,光合能力要么没有调整,要么在转移后变化缓慢。高光和低光叶片之间呼吸的大部分差异与由每日光合有效辐射(PFD)决定的碳水化合物状态有关,而与光合机构的维持成本直接相关的很少。叶片构建成本与最大光合能力成正比。因此,尽管在转移后一周内,低光和从高光转移到低光的植物每单位叶面积的每日碳增益相同,但在整个4周的测量期内,从高光转移到低光的植物中,叶片每单位碳投资的碳回报仍然较低。相反,在高光环境下,从低光转移到高光的植物叶片构建成本较低,导致每单位投资的碳增益与高光植物一样高。

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