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预测同时变化的环境条件下的植物性能——温度、光照与节间生长的相互作用

Predicting Plant Performance Under Simultaneously Changing Environmental Conditions-The Interplay Between Temperature, Light, and Internode Growth.

作者信息

Kahlen Katrin, Chen Tsu-Wei

机构信息

Department of Vegetable Crops, Geisenheim University Geisenheim, Germany.

Institute of Horticultural Production Systems, Faculty of Natural Sciences, Leibniz Universität Hannover Hannover, Germany.

出版信息

Front Plant Sci. 2015 Dec 21;6:1130. doi: 10.3389/fpls.2015.01130. eCollection 2015.

Abstract

Plant performance is significantly influenced by prevailing light and temperature conditions during plant growth and development. For plants exposed to natural fluctuations in abiotic environmental conditions it is however laborious and cumbersome to experimentally assign any contribution of individual environmental factors to plant responses. This study aimed at analyzing the interplay between light, temperature and internode growth based on model approaches. We extended the light-sensitive virtual plant model L-Cucumber by implementing a common Arrhenius function for appearance rates, growth rates, and growth durations. For two greenhouse experiments, the temperature-sensitive model approach resulted in a precise prediction of cucumber mean internode lengths and number of internodes, as well as in accurately predicted patterns of individual internode lengths along the main stem. In addition, a system's analysis revealed that environmental data averaged over the experimental period were not necessarily related to internode performance. Finally, the need for a species-specific parameterization of the temperature response function and related aspects in modeling temperature effects on plant development and growth is discussed.

摘要

植物的生长表现会在很大程度上受到植物生长发育期间的光照和温度条件的影响。然而,对于暴露于非生物环境条件自然波动下的植物而言,通过实验来确定各个环境因素对植物反应的贡献既费力又麻烦。本研究旨在基于模型方法分析光照、温度与节间生长之间的相互作用。我们通过为出现率、生长率和生长持续时间实现一个通用的阿伦尼乌斯函数,对光敏感虚拟植物模型L - 黄瓜进行了扩展。对于两个温室实验,温度敏感模型方法精确预测了黄瓜的平均节间长度和节间数量,以及沿着主茎的单个节间长度的准确预测模式。此外,系统分析表明,实验期间的平均环境数据不一定与节间表现相关。最后,讨论了在模拟温度对植物发育和生长的影响时,对温度响应函数进行物种特异性参数化及相关方面的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3438/4685136/06e7d180b266/fpls-06-01130-g0001.jpg

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