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本文引用的文献

1
Maltose metabolism by pea chloroplasts.豌豆叶绿体的麦芽糖代谢。
Planta. 1983 Jun;158(2):179-84. doi: 10.1007/BF00397712.
2
Chloroplast and extrachloroplastic starch-degrading enzymes in Pisum sativum L.豌豆中叶绿体内和叶绿体外的淀粉降解酶
Planta. 1986 Jun;168(2):175-82. doi: 10.1007/BF00402961.
3
Amino Acid and sucrose content determined in the cytosolic, chloroplastic, and vacuolar compartments and in the Phloem sap of spinach leaves.测定了菠菜叶片的胞质溶胶、叶绿体、液泡区室以及韧皮部汁液中的氨基酸和蔗糖含量。
Plant Physiol. 1991 Sep;97(1):227-33. doi: 10.1104/pp.97.1.227.
4
Diversity of specificity and function of phosphate translocators in various plastids.各种质体中磷酸盐转运蛋白特异性和功能的多样性。
Plant Physiol. 1991 Feb;95(2):341-3. doi: 10.1104/pp.95.2.341.
5
Stromal Phosphate Concentration Is Low during Feedback Limited Photosynthesis.在反馈受限的光合作用过程中,基质磷酸盐浓度较低。
Plant Physiol. 1989 Oct;91(2):679-84. doi: 10.1104/pp.91.2.679.
6
Starch Biosynthesis in Developing Wheat Grain : Evidence against the Direct Involvement of Triose Phosphates in the Metabolic Pathway.发育中小麦籽粒中的淀粉生物合成:反对磷酸丙糖直接参与代谢途径的证据。
Plant Physiol. 1988 Jun;87(2):311-9. doi: 10.1104/pp.87.2.311.
7
Control of photosynthetic sucrose synthesis in barley primary leaves: role of fructose 2,6-bisphosphate.大麦幼叶光合作用蔗糖合成的调控:果糖 2,6-二磷酸的作用。
Plant Physiol. 1986 Sep;82(1):15-8. doi: 10.1104/pp.82.1.15.
8
Measurement of subcellular metabolite levels in leaves by fractionation of freeze-stopped material in nonaqueous media.通过在非水介质中对冷冻停止的材料进行分级分离来测量叶片中的亚细胞代谢物水平。
Plant Physiol. 1984 Jul;75(3):542-7. doi: 10.1104/pp.75.3.542.
9
Physiological rates of starch breakdown in isolated intact spinach chloroplasts.分离完整菠菜叶绿体中淀粉分解的生理速率。
Plant Physiol. 1981 Sep;68(3):755-61. doi: 10.1104/pp.68.3.755.
10
Accumulation of Maltose during Photosynthesis in Protoplasts Isolated from Spinach Leaves Treated with Mannose.用甘露糖处理的菠菜叶原生质体光合作用过程中麦芽糖的积累。
Plant Physiol. 1981 Jan;67(1):85-8. doi: 10.1104/pp.67.1.85.

夜间叶绿体中碳的输出。

Export of carbon from chloroplasts at night.

作者信息

Schleucher J, Vanderveer PJ, Sharkey TD

机构信息

Department of Botany (J.S., P.J.V., T.D.S.).

出版信息

Plant Physiol. 1998 Dec;118(4):1439-45. doi: 10.1104/pp.118.4.1439.

DOI:10.1104/pp.118.4.1439
PMID:9847119
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC34761/
Abstract

Hexose export from chloroplasts at night has been inferred in previous studies of mutant and transgenic plants. We have tested whether hexose export is the normal route of carbon export from chloroplasts at night. We used nuclear magnetic resonance to distinguish glucose (Glc) made from hexose export and Glc made from triose export. Glc synthesized in vitro from fructose-6-phosphate in the presence of deuterium-labeled water had deuterium incorporated at C-2, whereas synthesis from triose phosphates caused C-2 through C-5 to become deuterated. In both tomato (Lycopersicon esculentum L. ) and bean (Phaseolus vulgaris L.), Glc from sucrose made at night in the presence of deuterium-enriched water was deuterated only in the C-2 position, indicating that >75% of carbon is exported as hexoses at night. In darkness the phosphate in the cytosol was 28 mM, whereas that in the chloroplasts was 5 mM, but hexose phosphates were 10-fold higher in the cytosol than in the chloroplasts. Therefore, hexose phosphates would not move out of chloroplasts without the input of energy. We conclude that most carbon leaves chloroplasts at night as Glc, maltose, or higher maltodextrins under normal conditions.

摘要

在之前对突变体和转基因植物的研究中,已推断出夜间叶绿体中的己糖输出情况。我们测试了己糖输出是否是夜间叶绿体碳输出的正常途径。我们使用核磁共振来区分由己糖输出产生的葡萄糖(Glc)和由磷酸丙糖输出产生的Glc。在氘标记水存在的情况下,由6-磷酸果糖体外合成的Glc在C-2位置掺入了氘,而由磷酸丙糖合成则导致C-2至C-5位置被氘化。在番茄(Lycopersicon esculentum L.)和菜豆(Phaseolus vulgaris L.)中,在富含氘的水存在下夜间合成的蔗糖中的Glc仅在C-2位置被氘化,这表明夜间超过75%的碳以己糖形式输出。在黑暗中,细胞质中的磷酸盐浓度为28 mM,而叶绿体中的为5 mM,但细胞质中的己糖磷酸比叶绿体中的高10倍。因此,没有能量输入,己糖磷酸不会从叶绿体中移出。我们得出结论,在正常条件下,夜间大多数碳以Glc、麦芽糖或更高的麦芽糊精形式离开叶绿体。