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相似文献

1
Stomatal responses to light and leaf-air water vapor pressure difference show similar kinetics in sugarcane and soybean.气孔对光和叶-气水蒸气压差的响应在甘蔗和大豆中表现出相似的动力学特征。
Plant Physiol. 1986 Jul;81(3):865-8. doi: 10.1104/pp.81.3.865.
2
The magnitude of the stomatal response to blue light : modulation by atmospheric humidity.气孔对蓝光反应的强度:大气湿度的调节作用
Plant Physiol. 1990 Jun;93(2):701-7. doi: 10.1104/pp.93.2.701.
3
In vivo manipulation of cuticular water permeance and its effect on stomatal response to air humidity.角质层水分渗透性的体内调控及其对气孔对空气湿度响应的影响。
New Phytol. 1997 Nov;137(3):473-480. doi: 10.1046/j.1469-8137.1997.00847.x.
4
Stomatal responses to VPD utilize guard cell intracellular signaling components.气孔对蒸汽压亏缺的响应利用保卫细胞的细胞内信号传导成分。
Front Plant Sci. 2024 Feb 5;15:1351612. doi: 10.3389/fpls.2024.1351612. eCollection 2024.
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Hydraulics Regulate Stomatal Responses to Changes in Leaf Water Status in the Fern -.水力学调节蕨类植物气孔对叶片水分状况变化的响应。
Plant Physiol. 2019 Feb;179(2):533-543. doi: 10.1104/pp.18.01412. Epub 2018 Dec 11.
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The effect of blue light on stomatal oscillations and leaf turgor pressure in banana leaves.蓝光对香蕉叶片气孔振荡和叶膨压的影响。
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Unexpected Connections between Humidity and Ion Transport Discovered Using a Model to Bridge Guard Cell-to-Leaf Scales.利用模型在保卫细胞到叶片尺度之间架起桥梁,发现湿度与离子传输之间意想不到的联系。
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Stomatal dynamics are regulated by leaf hydraulic traits and guard cell anatomy in nine true mangrove species.九种真红树植物的气孔动态受叶片水力特性和保卫细胞解剖结构的调节。
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Stomatal VPD Response: There Is More to the Story Than ABA.气孔 VPD 响应:ABA 并非唯一因素。
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Stomatal action directly feeds back on leaf turgor: new insights into the regulation of the plant water status from non-invasive pressure probe measurements.气孔作用直接反馈于叶片膨压:非侵入性压力探针测量在植物水分状态调节中的新认识。
Plant J. 2010 Jun 1;62(6):1072-82. doi: 10.1111/j.1365-313X.2010.04213.x. Epub 2010 Mar 25.

引用本文的文献

1
Stomatal responses to VPD utilize guard cell intracellular signaling components.气孔对蒸汽压亏缺的响应利用保卫细胞的细胞内信号传导成分。
Front Plant Sci. 2024 Feb 5;15:1351612. doi: 10.3389/fpls.2024.1351612. eCollection 2024.
2
The Role of Grass Orthologues During Stomatal Development.禾本科直系同源基因在气孔发育过程中的作用
Front Plant Sci. 2020 Feb 11;11:55. doi: 10.3389/fpls.2020.00055. eCollection 2020.
3
Impact of Stomatal Density and Morphology on Water-Use Efficiency in a Changing World.在不断变化的世界中气孔密度和形态对水分利用效率的影响
Front Plant Sci. 2019 Mar 6;10:225. doi: 10.3389/fpls.2019.00225. eCollection 2019.
4
Temporal Dynamics of Stomatal Behavior: Modeling and Implications for Photosynthesis and Water Use.气孔行为的时间动态:建模及其对光合作用和水分利用的影响。
Plant Physiol. 2017 Jun;174(2):603-613. doi: 10.1104/pp.17.00125. Epub 2017 Mar 31.
5
Stomatal dynamics and its importance to carbon gain in two rainforest Piper species : I. VPD effects on the transient stomatal response to lightflecks.两种雨林胡椒属植物的气孔动态及其对碳获取的重要性:I. 水汽压亏缺对气孔对光斑瞬态响应的影响
Oecologia. 1993 Jun;94(3):388-394. doi: 10.1007/BF00317114.
6
Dynamic stomatal behavior and its role in carbon gain during lightflecks of a gap phase and an understory Piper species acclimated to high and low light.动态气孔行为及其在林窗阶段光斑期间碳获取中的作用,以及一种适应高光和低光环境的林下胡椒属植物的情况。
Oecologia. 1992 Nov;92(2):222-228. doi: 10.1007/BF00317368.
7
Stomatal and photosynthetic responses during sun/shade transitions in subalpine plants: influence on water use efficiency.亚高山植物在阳/阴转变过程中的气孔与光合响应:对水分利用效率的影响
Oecologia. 1987 Nov;74(1):62-67. doi: 10.1007/BF00377346.
8
Modeling Stomatal Conductance.建模气孔导度。
Plant Physiol. 2017 Jun;174(2):572-582. doi: 10.1104/pp.16.01772. Epub 2017 Jan 6.
9
Stomatal size, speed, and responsiveness impact on photosynthesis and water use efficiency.气孔大小、速度和响应能力会影响光合作用和水分利用效率。
Plant Physiol. 2014 Apr;164(4):1556-70. doi: 10.1104/pp.114.237107. Epub 2014 Feb 27.
10
Guard cells of Commelina communis L. do not respond metabolically to osmotic stress in isolated epidermis: Implications for stomatal responses to drought and humidity.菘蓝保卫细胞在离体表皮中不能对渗透胁迫做出代谢响应:对气孔响应干旱和湿度的意义。
Planta. 1988 May;174(2):166-73. doi: 10.1007/BF00394768.

本文引用的文献

1
Effect of Light Quality on Stomatal Opening in Leaves of Xanthium strumarium L.光质对苍耳叶片气孔开放的影响
Plant Physiol. 1981 Nov;68(5):1170-4. doi: 10.1104/pp.68.5.1170.
2
Kinetic properties of the blue-light response of stomata.气孔对蓝光响应的动力学特性。
Proc Natl Acad Sci U S A. 1985 Dec;82(23):8019-23. doi: 10.1073/pnas.82.23.8019.

气孔对光和叶-气水蒸气压差的响应在甘蔗和大豆中表现出相似的动力学特征。

Stomatal responses to light and leaf-air water vapor pressure difference show similar kinetics in sugarcane and soybean.

机构信息

Department of Biological Sciences, Stanford University, Stanford, California 94305.

出版信息

Plant Physiol. 1986 Jul;81(3):865-8. doi: 10.1104/pp.81.3.865.

DOI:10.1104/pp.81.3.865
PMID:16664916
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1075441/
Abstract

Stomatal responses to light and humidity (vapor pressure difference, VPD) are important determinants of stomatal conductance. Stomatal movements induced by light are the result of a transduction of the light stimulus into modulated ion fluxes in guard cells and concomitant osmotic adjustments and turgor changes. It is generally assumed that this transduction process is a general stomatal property, with different environmental stimuli integrated into guard cell metabolism through their modulation of ion fluxes. In contrast with this notion, the VPD response, which is unique because both its triggering signal and the turgor changes required for aperture modulations involve water molecules, has been considered to be hydropassive and thus independent of guard cell metabolism. We used a kinetic approach to compare the light and VPD responses in order to test the hypothesis that hydropassive changes in guard cell turgor could be faster than the metabolism-dependent light responses. Changes in stomatal conductance in intact leaves of sugarcane and soybean were measured after application of step changes in VPD and in light. In spite of a 5-fold difference in overall rates between the two species, the response rates following light or VPD steps were similar. Although a coincidental kinetic similarity between two mechanistically different responses cannot be ruled out, the data suggest a common mechanism controlling stomatal movements, with the VPD stimulus inducing metabolic modulations of ion fluxes analogous to other stomatal responses.

摘要

气孔对光和湿度(蒸气压差,VPD)的响应是气孔导度的重要决定因素。气孔对光的运动是光刺激转化为保卫细胞中调制离子流的结果,以及伴随的渗透调节和膨压变化。通常认为,这种转导过程是一种普遍的气孔特性,不同的环境刺激通过调节离子流整合到保卫细胞代谢中。与这一概念相反,VPD 响应是独特的,因为其触发信号和用于孔径调制的膨压变化都涉及水分子,因此被认为是水力被动的,因此独立于保卫细胞代谢。我们使用动力学方法比较了光和 VPD 响应,以检验水力被动的保卫细胞膨压变化是否可以比依赖代谢的光响应更快的假设。在 VPD 和光的阶跃变化后,测量了甘蔗和大豆完整叶片中气孔导度的变化。尽管这两个物种之间的总体速率差异有 5 倍,但光或 VPD 阶跃后的响应速率相似。尽管不能排除两种在机制上不同的反应之间偶然的动力学相似性,但数据表明控制气孔运动的共同机制,VPD 刺激诱导类似于其他气孔反应的离子流代谢调节。