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1
Induction of coleoptile elongation by carbon dioxide.二氧化碳诱导胚芽鞘伸长。
Plant Physiol. 1971 Mar;47(3):335-41. doi: 10.1104/pp.47.3.335.
2
[Experiments and hypothesis concerning the primary action of auxin in elongation growth].[关于生长素在伸长生长中主要作用的实验与假说]
Planta. 1971 Mar;100(1):47-75. doi: 10.1007/BF00386886.
3
The pH profile for acid-induced elongation of coleoptile and epicotyl sections is consistent with the acid-growth theory.酸诱导的胚芽鞘和上胚轴切段伸长的 pH 曲线与酸生长理论一致。
Planta. 1991 Dec;186(1):70-4. doi: 10.1007/BF00201499.
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A Synergistic Stimulation of Avena sativa Coleoptile Elongation by Indoleacetic Acid and Carbon Dioxide.吲哚乙酸和二氧化碳对燕麦胚芽鞘伸长的协同刺激作用。
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5
The mechanical behavior of isolated Avena coleoptile walls subjected to constant stress: properties and relation to cell elongation.离体燕麦胚芽鞘壁在恒定应力作用下的力学行为:特性及其与细胞伸长的关系。
Plant Physiol. 1971 Jun;47(6):805-11. doi: 10.1104/pp.47.6.805.
6
Auxin-induced growth of Avena coleoptiles involves two mechanisms with different pH optima.生长素诱导的燕麦胚芽鞘生长涉及两种具有不同最适pH值的机制。
Plant Physiol. 1992 Aug;99(4):1556-61. doi: 10.1104/pp.99.4.1556.
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引用本文的文献

1
The "acid growth effect" and geotropism.“酸生长效应”和向地性。
Planta. 1970 Mar;95(1):62-71. doi: 10.1007/BF00431121.
2
The in-vitro acid-growth response: Relation to in-vivo growth responses and auxin action.体外酸度生长反应:与体内生长反应和生长素作用的关系。
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Differential hormone responses in different growing zones of the bean hypocotyl.豆下胚轴不同生长区的激素差异响应。
Planta. 1974 Sep;116(3):225-41. doi: 10.1007/BF00390229.
4
Rapid growth responses of corn root segments: Effect of pH on elongation.玉米根段的快速生长反应:pH 对伸长的影响。
Planta. 1974 Mar;119(1):27-37. doi: 10.1007/BF00390819.
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Rapid-growth responses of corn root segments: Effect of citrate-phosphate buffer on elongation.玉米根段的快速生长反应:柠檬酸盐-磷酸盐缓冲液对伸长的影响。
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Rapid-growth responses of corn root segments: Effect of auxin on elongation.玉米根段的快速生长反应:生长素对伸长的影响。
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The effect of deuterium oxide on protein turnover in Lemna minor.重水对小浮萍蛋白周转率的影响。
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The stability of the postulated wall-loosening enzyme in acid-induced growth.在酸性诱导生长中推测的细胞壁松动酶的稳定性。
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Effects of carbon dioxide on the spatially separate electrogenic ion pumps and the growth rate in the hypocotyl ofVigna sesquipedalis.二氧化碳对豇豆下胚轴中空间分离的生电离子泵和生长速率的影响。
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10
Acetic acid esters and permeable weak acids induce active proton extrusion and extension growth of coleoptile segments by lowering the cytoplasmic pH.醋酸酯和可透性弱酸通过降低细胞质 pH 值诱导伸长区胚鞘主动排质子和延伸生长。
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本文引用的文献

1
Osmotic Behavior of Oat Coleoptile Tissue in Relation to Growth.燕麦胚芽鞘组织的渗透行为与生长的关系。
J Gen Physiol. 1963 Sep 1;47(1):83-101. doi: 10.1085/jgp.47.1.83.
2
Fungal Morphogenesis: Ring Formation and Closure by Arthrobotrys dactyloides.真菌形态发生:节丛孢属通过环形成和闭合。
Science. 1967 Jan 20;155(3760):345-6. doi: 10.1126/science.155.3760.345.
3
Enhancement of wall loosening and elongation by Acid solutions.酸溶液对细胞壁松弛和伸长的促进作用。
Plant Physiol. 1970 Aug;46(2):250-3. doi: 10.1104/pp.46.2.250.
4
Adaptation of barley roots to low oxygen supply and its relation to potassium and sodium uptake.大麦根对低氧供应的适应及其与钾、钠吸收的关系。
Plant Physiol. 1969 Sep;44(9):1233-40. doi: 10.1104/pp.44.9.1233.
5
In vitro autolysis of plant cell walls.植物细胞壁的体外自溶。
Plant Physiol. 1967 Jul;42(7):968-72. doi: 10.1104/pp.42.7.968.
6
Reduction in Turgor Pressure as a Result of Extremely Brief Exposure to CO(2).由于极短时间暴露于 CO(2)而导致的膨压降低。
Plant Physiol. 1966 Jan;41(1):39-44. doi: 10.1104/pp.41.1.39.
7
Reversible Changes in the Hydraulic Permeability of Plant Cell Membranes.植物细胞膜水力通透性的可逆变化
Plant Physiol. 1964 Nov;39(6):1043-50. doi: 10.1104/pp.39.6.1043.
8
Rapid Changes in Permeability of Cell Membranes to Water Brought About by Carbon Dioxide & Oxygen.二氧化碳和氧气引起的细胞膜对水渗透性的快速变化
Plant Physiol. 1962 Jul;37(4):481-6. doi: 10.1104/pp.37.4.481.
9
Studies on the Growth of Coleoptile and First Internode Sections. A New, Sensitive, Straight-Growth Test for Auxins.胚芽鞘和第一节间切段生长的研究。一种新的、灵敏的生长素直生长测试法。
Plant Physiol. 1956 Mar;31(2):94-111. doi: 10.1104/pp.31.2.94.
10
Induction of fern spore germination.蕨类植物孢子萌发的诱导
Proc Natl Acad Sci U S A. 1969 Nov;64(3):835-42. doi: 10.1073/pnas.64.3.835.

二氧化碳诱导胚芽鞘伸长。

Induction of coleoptile elongation by carbon dioxide.

作者信息

Evans M L, Ray P M, Reinhold L

机构信息

Division of Natural Sciences, University of California, Santa Cruz, California 95060.

出版信息

Plant Physiol. 1971 Mar;47(3):335-41. doi: 10.1104/pp.47.3.335.

DOI:10.1104/pp.47.3.335
PMID:16657618
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC365865/
Abstract

The ability of CO(2) to induce elongation of Avena sativa coleoptile segments was examined with the use of a high resolution growth-recording device. CO(2)-saturated water causes an 8- to 16-fold promotion in the rate of elongation within 1 minute. This elongation is insensitive to a variety of metabolic inhibitors that suppress auxin-induced elongation, and the CO(2) effect cannot be prevented by pretreatment with these inhibitors. Buffers of pH 3 to 4 also stimulate elongation quickly, and it seems that at least a major part of the action of CO(2) depends upon its ability to reduce pH. The rate of elongation of auxin-promoted segments can be further enhanced by treatment with CO(2) but not vice versa.The response to CO(2) can be inhibited by mannitol at osmotic concentrations that inhibit normal growth, by calcium, and by brief pretreatment with heavy water (D(2)O). The elongation rate that results from CO(2) treatment is sensitive to temperature, but the induction by CO(2) itself appears to be almost temperature-independent.Elongation following treatment with CO(2) may be a physical flow phenomenon, essentially independent of immediate biochemical participation, which occurs when wall polymer interactions that normally restrict strain in the cell wall are weakened or broken by CO(2) in a manner that in effect substitutes for the role of metabolism in normal auxin-inducible cell enlargement.

摘要

利用高分辨率生长记录装置研究了二氧化碳诱导燕麦胚芽鞘切段伸长的能力。二氧化碳饱和水在1分钟内可使伸长速率提高8至16倍。这种伸长对多种抑制生长素诱导伸长的代谢抑制剂不敏感,且用这些抑制剂预处理并不能阻止二氧化碳的作用。pH值为3至4的缓冲液也能迅速刺激伸长,而且二氧化碳的作用似乎至少大部分取决于其降低pH值的能力。用二氧化碳处理可进一步提高生长素促进切段的伸长速率,但反之则不然。在抑制正常生长的渗透浓度下,甘露醇、钙以及用重水(D₂O)进行短暂预处理均可抑制对二氧化碳的反应。二氧化碳处理所导致的伸长速率对温度敏感,但二氧化碳本身的诱导作用似乎几乎与温度无关。用二氧化碳处理后的伸长可能是一种物理流动现象,基本上不依赖于即时的生化参与,当正常限制细胞壁应变的壁聚合物相互作用被二氧化碳削弱或破坏时就会发生这种现象,其作用方式实际上替代了正常生长素诱导细胞扩大过程中代谢的作用。