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[细胞分裂素对黑麦幼苗光合酶形成的影响]

[Influence of cytokinins on the formation of photosynthetic enzymes in rye seedlings].

作者信息

Feierabend J

机构信息

Pflanzenphysiologisches Institut der Universität Göttingen, Göttingen, Deutschland.

出版信息

Planta. 1968 Mar;84(1):11-29. doi: 10.1007/BF00384818.

Abstract
  1. Factors were investigated which control the formation of photosynthetic enzymes during germination. Enzymes of the reductive pentose phosphate cycle like carboxydismutase (EC 4.1.1.39) and NADP-dependent glyceraldehydephosphate dehydrogenase (EC 1.2.1.9.) are formed in the primary leaves of dark-grown rye seedlings. The rate of their synthesis is determined by the level of cytokinins. This rate can be increased by treatment of normal seedlings with kinetin. After application of kinetin to dark-grown seedlings, the investigated enzymes finally reach the same activity as they do in untreated light-grown plants. The formation of these photosynthetic enzymes can be strongly reduced by excision of the roots early in the development, a treatment which is known to lower the supply of cytokinins. A high rate of enzyme formation can be restored by feeding kinetin to rootless seedlings. Neither adenosine nor gibberellic acid have this effect on enzyme formation. 2. Changes in the content of cytokinins preferentially influence the formation of the investigated photosynthetic enzymes. Some cytoplasmic enzymes are not affected by the decrease of the cytokinin level which is achieved by excision of the roots. At the beginning of germination only cytoplasmic enzymes are promoted by application of kinetin, whereas in later stages, after 96 hours of germination, only the formation of photosynthetic enzymes is increased. The formation of photosynthetic and cytoplasmic enzymes seem to differ in their cytokinin requirements. 3. Cytokinins seem to be necessary for the formation of enzymes of the reductive pentose phosphate cycle. However, the cytokinins do not alter the time of appearance of these enzymes. Also the suppressing action which is exerted on the formation of photosynthetic enzymes by low temperature cannot be prevented by the application of kinetin. The action of cytokinins probably does not induce the derepression of the genes, but the level of cytokinins determines the extent of the manifestation of the genes. 4. The formation of the photosynthetic enzymes is also promoted by phytochrome. Phytochrome and cytokinin act as independent factors in a multiplicative system. The rate of synthesis of these enzymes in the dark, which corresponds to the cytokinin level of the seedlings (rootless, normal or treated with kinetin) can be increased by a constant factor via the phytochrome system by continuous irradiation with far-red light. In the case of carboxydismutase this factor is nearly 2. 5. After excision of the roots carboxydismutase and NADP-dependent glyceraldehydephosphate dehydrogenase reach higher activity in red and blue light than in far-red light, under which no chlorophyll is formed. In this case formation of carboxydismutase in red and blue light seems to proceed in close correlation with chlorophyll synthesis.
摘要
  1. 对萌发过程中控制光合酶形成的因素进行了研究。还原戊糖磷酸循环的酶,如羧化歧化酶(EC 4.1.1.39)和NADP依赖的甘油醛-3-磷酸脱氢酶(EC 1.2.1.9),在黑暗中生长的黑麦幼苗的初生叶中形成。它们的合成速率由细胞分裂素水平决定。用激动素处理正常幼苗可提高该速率。对黑暗中生长的幼苗施用激动素后,所研究的酶最终达到与未处理的光照下生长的植物相同的活性。在发育早期切除根部,这种处理已知会降低细胞分裂素的供应,可使这些光合酶的形成大幅减少。给无根幼苗饲喂激动素可恢复高酶形成速率。腺苷和赤霉素对酶形成均无此作用。2. 细胞分裂素含量的变化优先影响所研究的光合酶的形成。一些细胞质酶不受通过切除根部实现的细胞分裂素水平降低的影响。在萌发开始时,仅细胞质酶受激动素施用的促进,而在萌发后期,即萌发96小时后,仅光合酶的形成增加。光合酶和细胞质酶的形成在细胞分裂素需求方面似乎有所不同。3. 细胞分裂素似乎是还原戊糖磷酸循环酶形成所必需的。然而,细胞分裂素不会改变这些酶出现的时间。低温对光合酶形成的抑制作用也不能通过施用激动素而被阻止。细胞分裂素的作用可能不会诱导基因的去抑制,但细胞分裂素水平决定基因表现的程度。4. 光合酶的形成也受光敏色素促进。光敏色素和细胞分裂素在一个乘法系统中作为独立因素起作用。通过远红光持续照射,经由光敏色素系统,这些酶在黑暗中的合成速率(对应于幼苗的细胞分裂素水平,无根、正常或用激动素处理)可通过一个恒定因子提高。就羧化歧化酶而言,这个因子接近2。5. 切除根部后,羧化歧化酶和NADP依赖的甘油醛-3-磷酸脱氢酶在红光和蓝光下比在远红光下具有更高的活性,在远红光下不形成叶绿素。在这种情况下,红光和蓝光下羧化歧化酶的形成似乎与叶绿素合成密切相关。

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