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A novel, non-invasive, online-monitoring, versatile and easy plant-based probe for measuring leaf water status

机译:一种新颖的,无创的在线监测,多功能且基于植物的简便探头,用于测量叶片水状况

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摘要

A high-precision pressure probe is described which allows non-invasive online-monitoring of the water relations of intact leaves. Real-time recording of the leaf water status occurred by data transfer to an Internet server. The leaf patch clamp pressure probe measures the attenuated pressure, Pp, of a leaf patch in response to a constant clamp pressure, Pclamp. Pp is sensed by a miniaturized silicone pressure sensor integrated into the device. The magnitude of Pp is dictated by the transfer function of the leaf, Tf, which is a function of leaf patch volume and ultimately of cell turgor pressure, Pc, as shown theoretically. The power function Tf=f(Pc) theoretically derived was experimentally confirmed by concomitant Pp and Pc measurements on intact leaflets of the liana Tetrastigma voinierianum under greenhouse conditions. Simultaneous Pp recordings on leaflets up to 10 m height above ground demonstrated that changes in Tf induced by Pc changes due to changes of microclimate and/or of the irrigation regime were sensitively reflected in corresponding changes of Pp. Analysis of the data show that transpirational water loss during the morning hours was associated with a transient rise in turgor pressure gradients within the leaflets. Subsequent recovery of turgescence during the afternoon was much faster than the preceding transpiration-induced water loss if the plants were well irrigated. Our data show the enormous potential of the leaf patch clamp pressure probe for leaf water studies including unravelling of the hydraulic communication between neighbouring leaves and over long distances within tall plants (trees).
机译:描述了一种高精度压力探头,该探头允许对完整叶片的水关系进行无创在线监测。通过将数据传输到Internet服务器来实时记录叶水状态。叶片片钳压力探头响应恒定的夹紧压力Pclamp来测量叶片片的衰减压力Pp。通过集成到设备中的微型有机硅压力传感器来检测Pp。 Pp的大小由叶片的传递函数Tf决定,该函数是叶片斑块体积的函数,最终是细胞膨胀压力Pc的函数,如理论上所示。通过在温室条件下对藤本植物Tetrastigma voinierianum完整小叶的同时进行的Pp和Pc测量,实验证实了理论推导的幂函数Tf = f(Pc)。在距地面不超过10 m的小叶上同时记录Pp证明,由于微气候和/或灌溉制度的变化,Pc的变化引起的Tf的变化会敏感地反映在Pp的相应变化中。数据分析表明,早晨的蒸腾水损失与小叶内的膨压梯度的短暂升高有关。如果植物灌溉良好,则下午随后的t节恢复要比之前的蒸腾诱导的失水快得多。我们的数据表明,叶面贴片压力传感器的巨大潜力可用于叶片水研究,包括揭示相邻叶片之间的水力连通以及高大植物(树木)中长距离的水力联系。

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