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Wall Extensibility and Cell Hydraulic Conductivity Decrease in Enlarging Stem Tissues at Low Water Potentials

机译:低水势下扩大茎组织的壁可扩展性和细胞水力传导率降低

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摘要

Measurements with a guillotine psychrometer (H Nonami, JS Boyer [1990] Plant Physiol 94: 1601-1609) indicate that the inhibition of stem growth at low water potentials (low ψw) is accompanied by decreases in cell wall extensibility and tissue hydraulic conductance to water that eventually limit growth rate in soybean (Glycine max L. Merr.). To check this conclusion, we measured cell wall properties and cell hydraulic conductivities with independent techniques in soybean seedlings grown and treated the same way, i.e. grown in the dark and exposed to low ψw by transplanting dark grown seedlings to vermiculite of low water content. Wall properties were measured with an extensiometer modified for intact plants, and conductances were measured with a cell pressure probe in intact plants. Theory was developed to relate the wall measurements to those with the psychrometer. In the elongation zone, the plastic deformability of the walls decreased when measured with the extensiometer while growth was inhibited at low ψw. It increased during a modest growth recovery. This behavior was the same as that for the wall extensibility observed previously with the psychrometer. Tissue that was killed before measurement with the extensiometer also showed a similar response, indicating that changes in wall extensibility represented changes in wall physical properties and not rates of wall biosynthesis. The elastic compliance (reciprocal of bulk elastic modulus) did not change in the elongating or mature tissue. The hydraulic conductivity of cortical cells decreased in the elongating tissue and increased slightly during growth recovery in a response similar to that observed with the psychrometer. We conclude that the plastic properties of the cell walls and the conductance of the cells to water were decreased at low ψw but that the elastic properties of the walls were of little consequence in this response.
机译:用断头台干湿计(H Nonami,JS Boyer [1990] Plant Physiol 94:1601-1609)进行的测量表明,在低水位(低ψw)下茎生长的抑制作用伴随着细胞壁扩展性的降低和组织对水分的传导最终限制大豆生长速度的水(Glycine max L. Merr。)。为了验证这一结论,我们采用独立技术测量了大豆幼苗的细胞壁特性和细胞水力传导率,并以相同的方式进行了处理,即在黑暗中生长,并通过将黑暗生长的幼苗移植到低水分的ver石中暴露于低ψw的条件下。用为完整植物改良的引伸计测量壁的性能,并用细胞压力探针在完整植物中测量电导。开发了将壁测量值与干湿计相关的理论。在延伸区中,当使用引伸计测量时,壁的塑性变形能力下降,而在低ψw时生长受到抑制。在适度的增长恢复中,它有所增加。此行为与以前使用干湿计观察到的壁可扩展性相同。用引伸计测量之前被杀死的组织也显示出类似的反应,表明壁可延展性的变化代表壁物理性质的变化,而不是壁生物合成的速率。在伸长或成熟的组织中,弹性柔度(体弹性模量的倒数)没有变化。皮质细胞的水力传导率在伸长的组织中降低,在生长恢复过程中略有增加,其响应与干湿计观察到的相似。我们得出的结论是,在低ψw时,细胞壁的塑性和细胞对水的电导率会降低,但是在这种响应中,壁的弹性几乎没有影响。

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