Aylor Donald E
Department of Plant Pathology and Ecology, The Connecticut Agricultural Experiment Station, PO Box 1106, New Haven, CT 06504, USA.
J Exp Bot. 2003 Oct;54(391):2307-12. doi: 10.1093/jxb/erg242. Epub 2003 Aug 8.
The water content of corn (Zea mays L.) pollen directly affects its dispersal in the atmosphere through its effect on settling speed and viability. Therefore, the rate of water loss from pollen after being shed from the anther is an important component of a model to predict effective pollen transport distances in the atmosphere. The rate of water loss from corn pollen in air was determined using two methods: (1) by direct weighing of samples containing approximately 5 x 10(4) grains, and (2) by microscopic measurement of the change in size of individual grains. The conductance of the pollen wall to water loss was derived from the time rate of change of pollen mass or pollen grain size. The two methods gave average conductance values of 0.026 and 0.027 cm s-1, respectively. In other experiments, the water potential, psi, of corn pollen was determined at various values of relative water content (dry weight basis), either by using a thermocouple psychrometer or by allowing samples of pollen to come to vapour equilibrium with various saturated salt solutions. Non-linear regression analysis of the data yielded psi (MPa) = -3.218 theta(-1.35) (r2 = 0.94; for -298 < or = psi < or = -1 MPa). This result was incorporated into a model differential equation for the rate of water loss from pollen. The model agreed well (r2 approximately 0.98) with the observed time-course of the decrease of water content of pollen grains exposed to a range of temperature and humidity conditions.
玉米(Zea mays L.)花粉的含水量通过对沉降速度和活力的影响,直接影响其在大气中的扩散。因此,花粉从花药中散出后的失水速率是预测花粉在大气中有效传播距离模型的一个重要组成部分。采用两种方法测定了玉米花粉在空气中的失水速率:(1)直接称量含有约5×10⁴粒花粉的样品;(2)通过显微镜测量单个花粉粒大小的变化。花粉壁对水分散失的传导率由花粉质量或花粉粒大小的时间变化率得出。两种方法得到的平均传导率值分别为0.026和0.027 cm s⁻¹。在其他实验中,通过使用热电偶湿度计或让花粉样品与各种饱和盐溶液达到蒸汽平衡,在不同相对含水量(以干重计)下测定了玉米花粉的水势ψ。对数据进行非线性回归分析得到ψ(MPa) = - 3.218θ⁻¹·³⁵(r² = 0.94;- 298≤ψ≤ - 1 MPa)。该结果被纳入花粉失水速率的模型微分方程。该模型与在一系列温度和湿度条件下观察到的花粉粒含水量下降的时间进程吻合良好(r²约为0.98)。