Zonia Laura, Feijó José A
Institute of Experimental Botany, Academy of Sciences of the Czech Republic, Na Pernikarce 15, 160 00 Prague 6, Czech Republic.
Biophys J. 2003 Feb;84(2 Pt 1):1387-98. doi: 10.1016/S0006-3495(03)74953-4.
Pollen tube growth is a dynamic system expressing a number of oscillating circuits. Our recent work identified a new circuit, oscillatory efflux of Cl(-) anion from the pollen tube apex. Cl(-) efflux is the first ion signal found to be coupled in phase with growth oscillations. Functional analyses indicate an active role for Cl(-) flux in pollen tube growth. In this report the dynamical properties of Cl(-) efflux are examined. Phase space analysis demonstrates that the system trajectory converges on a limit cycle. Fourier analysis reveals that two harmonic frequencies characterize normal growth. Cl(-) efflux is inhibited by the channel blocker DIDS, is stimulated by hypoosmotic treatment, and is antagonized by the signal encoded in inositol 3,4,5,6-tetrakisphosphate. These perturbations induce transitions of the limit cycle to new metastable states or cause system collapse to a static attractor centered near the origin. These perturbations also transform the spectral profile, inducing subharmonic frequencies, transitions to period doubling and tripling, superharmonic resonance, and chaos. These results indicate that Cl(-) signals in pollen tubes display features that are characteristic of active oscillators that carry frequency-encoded information. A reaction network of the Cl(-) oscillator coupled to two nonlinear feedback circuits that may drive pollen tube growth oscillations is considered.
花粉管生长是一个表达多种振荡回路的动态系统。我们最近的研究发现了一个新的回路,即氯离子(Cl⁻)从花粉管顶端的振荡外流。Cl⁻外流是第一个被发现与生长振荡同相位耦合的离子信号。功能分析表明Cl⁻通量在花粉管生长中发挥着积极作用。在本报告中,我们研究了Cl⁻外流的动力学特性。相空间分析表明系统轨迹收敛于一个极限环。傅里叶分析揭示,两个谐波频率表征正常生长。Cl⁻外流受到通道阻滞剂DIDS的抑制,受到低渗处理的刺激,并被肌醇3,4,5,6 - 四磷酸编码的信号所拮抗。这些扰动促使极限环转变为新的亚稳态,或导致系统坍缩到以原点附近为中心的静态吸引子。这些扰动还改变了频谱分布,诱导出次谐波频率、倍周期和三倍周期转变、超谐波共振以及混沌。这些结果表明,花粉管中的Cl⁻信号呈现出主动振荡器的特征,这些振荡器携带频率编码信息。我们考虑了一个与两个可能驱动花粉管生长振荡的非线性反馈回路耦合的Cl⁻振荡器反应网络。