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日月潮汐力对植物叶片运动的控制。

Control of plant leaf movements by the lunisolar tidal force.

作者信息

Fisahn Joachim

机构信息

Max Planck Institute of Molecular Plant Physiology, Am Mühlenberg, Potsdam, Germany.

出版信息

Ann Bot. 2018 Jun 8;121(7):e1-e6. doi: 10.1093/aob/mcx214.

Abstract

BACKGROUND

Investigations into the diurnal ascent and descent of leaves of beans and other species, as well as experimental interventions into these movements, such as exposures to light at different times during the movement cycle, led to the concept of an endogenous 'clock' as a regulator of these oscillations. The causal origin of leaf movement can be traced to processes that modulate cell volume in target tissues of the pulvinus and petiole. However, these elements of the leaf-movement process do not sufficiently account for the rhythms that are generated following germination in constant light or dark conditions, or when plants are transferred to similar free-running conditions.

SCOPE

To further unravel the regulation of leaf-movement rhythms, many of the published time courses of leaf movements that provided evidence for the concept of the endogenous clock were analysed in conjunction with the contemporaneous time courses of the lunisolar tidal acceleration. This was accomplished by application of the Etide program, which estimates, with high temporal resolution, local gravitational changes as a consequence of the diurnal variations of the lunisolar gravitational force due to the orbits and relative positions of Earth, Moon and Sun. To substantiate the results obtained in earthbound laboratories additional experiments were performed in the International Space Station (ISS). Tidal recurrence within the ISS exhibited a periodicity of 45 min. In all instances investigated, it was evident that a synchronism exists between the times of the turning points of both the lunisolar tide and of the leaftide when the direction of leaf movement changes. This finding of synchrony documents that the lunisolar tide is a regulator of the leaftide, and that the rhythm of leaf movement is not of endogenous origin but is an expression of an exogenous lunisolar clock impressed upon the leaf-movement apparatus.

CONCLUSIONS

A huge number of correlations between leaftide and Etide time courses were established for leaf movement rhythms in natural conditions of the greenhouse, in conditions of constant light or dark, and under the microgravity conditions of the International Space Station. Even the apparently spontaneous short-period, small-amplitude rhythms recorded from leaves under unusual growth conditions are consistent with the hypothesis of a lunisolar zeitgeber. Synchronism between leaftide and Etide is discussed in terms of classical and quantum mechanics.

摘要

背景

对豆类和其他物种叶片的昼夜升降以及对这些运动的实验干预,例如在运动周期的不同时间进行光照处理,引出了内源性“时钟”作为这些振荡调节因子的概念。叶片运动的因果起源可追溯到调节叶枕和叶柄目标组织细胞体积的过程。然而,叶片运动过程的这些要素并不能充分解释在持续光照或黑暗条件下萌发后产生的节律,或者当植物转移到类似的自由运行条件下时产生的节律。

范围

为了进一步揭示叶片运动节律的调节机制,结合太阴-太阳潮汐加速度的同期时间进程,分析了许多已发表的为内源性时钟概念提供证据的叶片运动时间进程。这是通过应用Etide程序完成的,该程序以高时间分辨率估算由于地球、月球和太阳的轨道及相对位置导致的太阴-太阳引力的昼夜变化所引起的局部引力变化。为了证实地面实验室获得的结果,在国际空间站(ISS)进行了额外的实验。国际空间站内的潮汐重现周期为45分钟。在所有研究的案例中,很明显,当叶片运动方向改变时,太阴-太阳潮汐和叶潮汐的转折点时间之间存在同步性。这种同步性的发现证明太阴-太阳潮汐是叶潮汐的调节因子,并且叶片运动的节律不是内源性的,而是施加在叶片运动装置上的外源性太阴-太阳时钟的一种表现。

结论

在温室的自然条件下、持续光照或黑暗条件下以及国际空间站的微重力条件下,针对叶片运动节律建立了大量叶潮汐和Etide时间进程之间的相关性。即使在异常生长条件下从叶片记录到的明显自发的短周期、小振幅节律也与太阴-太阳授时因子的假设一致。从经典力学和量子力学的角度讨论了叶潮汐和Etide之间的同步性。

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