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Pressure Probe Technique for Measuring Water Relations of Cells in Higher Plants

机译:测量高等植物细胞水分关系的压力探针技术

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摘要

A new method is described for continuously measuring cell turgor pressure (P), hydraulic conductivity (Lp), and volumetric elastic modulus (ε) in higher plant cells, using a pressure probe. This technique permits volume changes, ΔV, and turgor pressure changes, ΔP, to be determined with an accuracy of 10−5 to 10−6 μl and 3 to 5·10−2 bar, respectively.The main principle of the new method is the same as the pressure probe developed by Zimmermann and Steudle in which pressure is transmitted to a pressure transducer by means of an oil-filled capillary introduced into the cell. In order to use the pressure probe for small tissue cells, the effective compressible volume of the apparatus has to be sufficiently small in comparison to the volume of the cell itself. This is achieved by accurately fixing the oil/cell sap boundary in the very tip of the microcapillary by means of an electronic feedback mechanism, so that the effective volume of the apparatus is reduced to about 2 to 10% of the cell volume. In this way also, errors arising from compressibility of the apparatus and temperature fluctuations can be excluded.Measurements on tissues cells of Capsicum annuum fruits yield ε values of 2 to 25 bar. Furthermore, ε can be shown to be a function of both cell turgor pressure and cell volume; ε increases with increasing turgor pressure and is higher in larger cells.
机译:描述了一种使用压力探针连续测量高等植物细胞中细胞膨大压力(P),水力传导率(Lp)和体积弹性模量(ε)的新方法。该技术可以确定体积变化ΔV和膨胀压力变化ΔP,精度为10 -5 至10 -6 μl和3至5·10 −2 bar。新方法的主要原理与Zimmermann和Steudle开发的压力探头相同,其中压力通过引入的充油毛细管传输到压力传感器。进入细胞。为了将压力探针用于小的组织细胞,与细胞本身的体积相比,设备的有效可压缩体积必须足够小。这是通过借助电子反馈机制将油/细胞液汁边界准确地固定在微毛细管的最顶端来实现的,从而使设备的有效体积减少到细胞体积的2%到10%。以此方式,也可以排除由于设备的可压缩性和温度波动引起的误差。对辣椒果实的组织细胞的测量得出ε值为2至25bar。此外,可以证明ε是细胞膨胀压力和细胞体积的函数。 ε随着膨胀压力的增加而增加,而在较大的电池中则更高。

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