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本文引用的文献

1
Inhibition and stimulation of root respiration in pisum and plantago by hydroxamate : its consequences for the assessment of alternative path activity.异羟肟酸对豌豆和车前草根呼吸的抑制与刺激作用:其对交替途径活性评估的影响
Plant Physiol. 1984 Jul;75(3):813-7. doi: 10.1104/pp.75.3.813.
2
Effect of photosynthesis and carbohydrate status on respiratory rates and the involvement of the alternative pathway in leaf respiration.光合作用和碳水化合物状态对呼吸速率的影响以及交替途径在叶片呼吸中的作用。
Plant Physiol. 1983 Jul;72(3):598-603. doi: 10.1104/pp.72.3.598.
3
Relationship between Photosynthesis and Respiration: The Effect of Carbohydrate Status on the Rate of CO(2) Production by Respiration in Darkened and Illuminated Wheat Leaves.光合作用与呼吸作用的关系:碳水化合物状态对暗处理和光照小麦叶片呼吸作用中 CO(2)产生速率的影响。
Plant Physiol. 1983 Mar;71(3):574-81. doi: 10.1104/pp.71.3.574.

两种不同 Lolium perenne 种群叶片和根系呼吸调控:成熟叶片呼吸速率和作物产量差异。

Regulation of Respiration in the Leaves and Roots of Two Lolium perenne Populations with Contrasting Mature Leaf Respiration Rates and Crop Yields.

机构信息

Department of Plant Physiology, University of Groningen, P.O. Box 14, 9750 AA Haren (Gn), The Netherlands.

出版信息

Plant Physiol. 1985 Aug;78(4):678-83. doi: 10.1104/pp.78.4.678.

DOI:10.1104/pp.78.4.678
PMID:16664307
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1064803/
Abstract

Measurements of O(2) uptake were made on leaves and roots of two populations of Lolium perenne L. cv S23 (GL66 and GL72), previously shown to have contrasting rates of CO(2) evolution and yields of dry matter. O(2) uptake was faster in the mature leaves of GL66 than those of GL72, but no difference was observed in the respiratory rates of meristematic leaf bases or mature roots. The growth rate of GL72 was faster than that of GL66. Cyanide resistance was substantial in mature leaves but the alternative path did not contribute to O(2) uptake in the dark. In both populations, adding malate and glycine stimulated O(2) uptake, but exogenous sucrose only stimulated when uncoupler was also present. The difference between the respiratory rates of the two populations was maintained under all investigated conditions. We conclude that the rate of mature leaf respiration in the dark in L. perenne is limited by adenylate control of glycolysis. The difference between the fast (GL66) and slow (GL72) respiring populations reflected a greater respiratory capacity and higher turnover of ATP in GL66. Alternative path capacity was also high in the roots of both and contributed substantially to O(2) uptake, as indicated by inhibition by salicylhydroxamic acid in the absence of KCN. The alternative path capacity of meristematic leaf bases was considerably less than that in mature leaves.Transverse and cross-sections were made of mature leaves of both populations to study anatomical features which might explain the differences in ATP turnover, suggested by the biochemical experiments. Leaves of GL72 were thicker but did not show a different anatomy when compared with GL66. The increased thickness was not due to more or larger cells but entirely to a larger intercellular volume.

摘要

测量了两个 Lolium perenne L. cv S23(GL66 和 GL72)种群叶片和根系的 O(2)摄取量,此前的研究表明这两个种群的 CO(2)释放速率和干物质产量存在差异。GL66 的成熟叶片的 O(2)摄取速率快于 GL72,但分生组织叶片基部或成熟根的呼吸速率没有差异。GL72 的生长速率快于 GL66。成熟叶片中氰化物抗性很强,但替代途径在黑暗中对 O(2)摄取没有贡献。在两个种群中,添加苹果酸和甘氨酸均可刺激 O(2)摄取,但仅在外源蔗糖存在解偶联剂的情况下才刺激 O(2)摄取。在所有研究条件下,两个种群之间的呼吸速率差异都得以维持。我们得出结论,黑暗中成熟叶片呼吸的速率受到腺嘌呤核苷酸控制糖酵解的限制。快速(GL66)和慢速(GL72)呼吸种群之间的差异反映了 GL66 具有更高的呼吸能力和更高的 ATP 周转率。替代途径的能力在两个种群的根系中也很高,并且在没有 KCN 的情况下,水杨羟肟酸的抑制作用表明,它对 O(2)摄取有很大的贡献。分生组织叶片基部的替代途径能力明显低于成熟叶片。对两个种群的成熟叶片进行了横切和纵切,以研究可能解释生物化学实验中暗示的 ATP 周转率差异的解剖学特征。GL72 的叶片较厚,但与 GL66 相比,其解剖结构没有不同。增加的厚度不是由于更多或更大的细胞,而是完全由于细胞间体积的增加。