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比较乙醇酸和甘氨酸作为光呼吸底物的效果。

Comparison of the effectiveness of glycolic Acid and glycine as substrates for photorespiration.

机构信息

Department of Biochemistry, The Connecticut Agricultural Experiment Station, New Haven, Connecticut 06504.

出版信息

Plant Physiol. 1972 Jul;50(1):109-13. doi: 10.1104/pp.50.1.109.

DOI:10.1104/pp.50.1.109
PMID:16658103
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC367324/
Abstract

Considerable evidence exists that the carboxyl-carbon atom of glycolic acid is the primary source of the CO(2) produced during photorespiration by leaves of many species of plants, including tobacco. Experiments were conducted to determine whether glyoxylate or glycine, both products of glycolic acid metabolism, is the more immediate precursor of photorespiratory CO(2).Illuminated tobacco leaf disks were floated on 18 mm solutions of glycolate-1-(14)C or glycine-1-(14)C in CO(2)-free air. The (14)CO(2) released and the (14)C content of several postulated intermediates were determined when the substrate solutions were provided alone or with one of the following: 9 mm alpha-hydroxy-2-pyridine-methanesulfonic acid, an inhibitor of the oxidation of glycolate to glyoxylate; 9 mm isonicotinyl hydrazide, an inhibitor of the conversion of glycine to serine; or 18 mm nonradioactive glycine or glycolate with the other radioactive substrate.Both inhibitors decreased the rate of photorespiration in tobacco leaf disks by the (14)C-assay. The alpha-hydroxy-2-pyridine-methanesulfonic acid severely blocked (14)CO(2) production and labeling of the glycolate pathway from glycolate-1-(14)C. Isonicotinyl hydrazide had little effect on the (14)CO(2) released from glycine-1-(14)C although the glycine to serine conversion was severely inhibited.These results and other data in the literature indicate that the glycolate pathway of carbohydrate metabolism does not supply sufficient CO(2) during the synthesis of serine from glycine to account for the rates of photorespiration observed in many species. A direct decarboxylation of glyoxylate is more likely the main source of photorespiratory CO(2).

摘要

有大量证据表明,在许多植物物种的叶片进行光呼吸时,产生的 CO2 主要来自于甘氨酸的羧基碳。为了确定乙醛酸或甘氨酸,这两种甘氨酸代谢的产物,哪个是光呼吸 CO2 的更直接前体,进行了实验。

将光照下的烟草叶圆盘漂浮在 18mM 的甘氨酸-1-(14)C 或甘氨酸-1-(14)C 溶液中,溶液在 CO2- 自由空气中。当单独提供或与以下一种物质一起提供时,确定释放的 (14)CO2 和几个假定中间产物的 (14)C 含量:9mM α-羟基-2-吡啶甲磺酸,甘氨酸氧化为乙醛酸的抑制剂;9mM 异烟酰肼,甘氨酸转化为丝氨酸的抑制剂;或 18mM 非放射性甘氨酸或甘氨酸与另一种放射性底物。两种抑制剂都通过 14C 测定降低了烟草叶盘的光呼吸速率。α-羟基-2-吡啶甲磺酸严重阻断了甘氨酸-1-(14)C 的甘氨酸途径的 (14)CO2 产生和标记。异烟酰肼对甘氨酸-1-(14)C 释放的 (14)CO2 几乎没有影响,尽管甘氨酸转化为丝氨酸受到严重抑制。

这些结果和文献中的其他数据表明,在许多物种中观察到的光呼吸速率表明,碳水化合物代谢的甘氨酸途径在从甘氨酸合成丝氨酸时不能提供足够的 CO2。乙醛酸的直接脱羧更可能是光呼吸 CO2 的主要来源。

相似文献

1
Comparison of the effectiveness of glycolic Acid and glycine as substrates for photorespiration.比较乙醇酸和甘氨酸作为光呼吸底物的效果。
Plant Physiol. 1972 Jul;50(1):109-13. doi: 10.1104/pp.50.1.109.
2
Fixation of O(2) during Photorespiration: Kinetic and Steady-State Studies of the Photorespiratory Carbon Oxidation Cycle with Intact Leaves and Isolated Chloroplasts of C(3) Plants.光呼吸过程中氧气的固定:对C₃植物完整叶片和分离叶绿体光呼吸碳氧化循环的动力学和稳态研究
Plant Physiol. 1978 Dec;62(6):954-67. doi: 10.1104/pp.62.6.954.
3
Alternate pathways of glycolate synthesis in tobacco and maize leaves in relation to rates of photorespiration.烟草和玉米叶片中乙醇酸合成的替代途径与光呼吸速率的关系
Plant Physiol. 1973 Feb;51(2):299-305. doi: 10.1104/pp.51.2.299.
4
Metabolic regulation of glycolate synthesis, photorespiration, and net photosynthesis in tobacco by L-glutamate.通过 L-谷氨酸对烟草中海藻糖合成、光呼吸和净光合作用的代谢调节。
Plant Physiol. 1977 Apr;59(4):688-94. doi: 10.1104/pp.59.4.688.
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Increased rate of net photosynthetic carbon dioxide uptake caused by the inhibition of glycolate oxidase.乙醇酸氧化酶抑制导致净光合二氧化碳吸收速率增加。
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Chemical inhibition of the glycolate pathway in soybean leaf cells.大豆叶片细胞中甘醇酸途径的化学抑制。
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Effects of glycine hydroxamate, carbon dioxide, and oxygen on photorespiratory carbon and nitrogen metabolism in spinach mesophyll cells.甘氨酸异羟肟酸、二氧化碳和氧气对菠菜叶肉细胞光呼吸碳氮代谢的影响。
Plant Physiol. 1982 May;69(5):1136-9. doi: 10.1104/pp.69.5.1136.

引用本文的文献

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J Exp Bot. 2014 Oct;65(18):5331-8. doi: 10.1093/jxb/eru294. Epub 2014 Jul 22.
2
Changes in specific radioactivities of sunflower leaf metabolites during photosynthesis in (14)CO 2 and (12)CO 2 at normal and low oxygen.在正常和低氧条件下,(14)CO 2 和 (12)CO 2 中向日葵叶片代谢物的特定放射性在光合作用期间的变化。
Planta. 1974 Jan;120(2):125-34. doi: 10.1007/BF00384922.
3
The effect of temperature on glycollate decarboxylation in leaf peroxisomes.温度对叶片过氧化物体中天冬氨酸脱羧作用的影响。
Planta. 1977 Jan;133(3):261-6. doi: 10.1007/BF00380687.
4
Conversion of photosynthetic products in the light in CO2-free O 2 and N 2 in leaves of Zea mays L. and Phaseolus vulgaris L.在无 CO2 的 O2 和 N2 中,玉米和菜豆叶片的光合作用产物在光下的转化。
Planta. 1976 Jan;131(2):121-3. doi: 10.1007/BF00389981.
5
The specific radioactivity of glycolic acid in relation to the specific activity of carbon dioxide evolved in light in photosynthesizing sunflower leaves.在光合作用的向日葵叶片中,与光呼吸释放的二氧化碳的比活性相关的乙二醇酸的比放射性。
Planta. 1978 Jan;138(3):257-61. doi: 10.1007/BF00386820.
6
Glyoxylate decarboxylation during photorespiration.光呼吸过程中的乙醛酸脱羧。
Planta. 1978 Jan;144(1):31-7. doi: 10.1007/BF00385004.
7
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8
Metabolism and decarboxylation of glycollate and serine in leaf peroxisomes.叶过氧化物体中甘醇酸和丝氨酸的代谢和脱羧作用。
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9
Regulation of Glycine Decarboxylase and l-Serine Hydroxymethyltransferase Activities by Glyoxylate in Tobacco Leaf Mitochondrial Preparations.乙醛酸对烟草叶片线粒体提取物中甘氨酸脱羧酶和L-丝氨酸羟甲基转移酶活性的调节
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10
Enhanced Incorporation of Tritium into Glycolate during Photosynthesis by Tobacco Leaf Tissue in the Presence of Tritiated Water.在氚水存在的情况下,烟草叶片组织在光合作用中增强了甘醇酸的氚掺入。
Plant Physiol. 1982 Jan;69(1):192-7. doi: 10.1104/pp.69.1.192.

本文引用的文献

1
Glycolate and glyoxylate metabolism by isolated peroxisomes or chloroplasts.分离的过氧化物体或叶绿体中的乙醇酸和乙醛酸代谢。
Plant Physiol. 1969 Feb;44(2):242-50. doi: 10.1104/pp.44.2.242.
2
Investigation on photorespiration with a sensitive C-assay.采用灵敏的 C 测定法研究光呼吸。
Plant Physiol. 1968 Nov;43(11):1829-37. doi: 10.1104/pp.43.11.1829.
3
Carbon metabolism of C-labeled amino acids in wheat leaves. I. A pathway of glyoxylate-serine metabolism.小麦叶片中 C 标记氨基酸的碳代谢。I. 乙醛酸-丝氨酸代谢途径。
Plant Physiol. 1962 Nov;37(6):826-32. doi: 10.1104/pp.37.6.826.
4
BIOCHEMICAL CONTROL OF STOMATAL OPENING IN LEAVES.叶片气孔开放的生化调控
Proc Natl Acad Sci U S A. 1961 Sep;47(9):1423-33. doi: 10.1073/pnas.47.9.1423.
5
THE RELATION OF GLYCOLIC ACID SYNTHESIS TO THE PRIMARY PHOTOSYNTHETIC CARBOXYLATION REACTION IN LEAVES.叶片中乙醇酸合成与初级光合羧化反应的关系
J Biol Chem. 1965 May;240:1869-76.
6
The relationship of glycolic acid to respiration and photosynthesis in tobacco leaves.乙醇酸与烟草叶片呼吸作用和光合作用的关系。
J Biol Chem. 1959 Dec;234:3077-81.
7
The role of glycolic acid oxidase in the respiration of leaves.乙醇酸氧化酶在叶片呼吸作用中的作用。
J Biol Chem. 1958 Dec;233(6):1299-303.
8
The metabolism of the organic acids of tobacco leaves. XIV. On the uptake of (+)-tartaric acid from solutions in the range pH 3 to pH 6.烟草叶片有机酸的代谢。十四、关于在pH 3至pH 6范围内从溶液中吸收(+)-酒石酸的研究。
J Biol Chem. 1957 Aug;227(2):943-9.
9
The path of carbon in photosynthesis. XX. The steady state.光合作用中碳的路径。XX. 稳态。
Experientia. 1952 Dec 15;8(12):445-57. doi: 10.1007/BF02139287.
10
Leaf peroxisomes and their relation to photorespiration and photosynthesis.叶片过氧化物酶体及其与光呼吸和光合作用的关系。
Ann N Y Acad Sci. 1969 Dec 19;168(2):325-41. doi: 10.1111/j.1749-6632.1969.tb43119.x.