Peiji Yang , Jie Hao , Zhiguo Li , Fideline Tchuenbou-Magaia , Jiheng Ni
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The wind-disturbance effect was found to be optimal with <em>SSI</em> = 0.126 for a condition where <em>V</em>, <em>T</em>, <em>I</em> and <em>SA</em> values are 3 m s<sup>−1</sup>, 1 min, 30 min, and 15 days, respectively. <em>V</em> and <em>T</em> were positively correlated with the ethylene and abscisic acid content in seedling leaves, abscisic acid and auxin content in stems, cytokinin and ethylene content in roots, and the elastic moduli of stems and roots but negatively associated with the cytokinin content in stems and leaves, auxin and abscisic acid content in roots, and leaves’ elastic modulus. Wind disturbance mechanism for controlling seedlings growth involved eliciting the accumulation of abscisic acid in stems and leaves and reduction of the auxin content in roots to about the optimal threshold for roots growth thereby reducing seedling stems and leaves development and promoting a better roots growth and a high <em>SSI</em>. 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引用次数: 0
摘要
风扰动是解决秧苗徒长问题的一种潜在生态友好型技术。本研究采用正交试验设计和壮苗指数(SSI)评估秧苗活力,研究风扰动对番茄秧苗生长的调节作用。采用酶联免疫吸附试验和单轴拉力试验研究了番茄幼苗内源激素水平和生物力学特性的变化。结果表明,对 SSI 影响较大的因素依次为风扰时间(T)、风扰开始时的苗龄(SA)、风速(V)和间隔时间(I)。在 V、T、I 和 SA 值分别为 3 m s-1、1 分钟、30 分钟和 15 天的条件下,风扰动效果最佳,SSI = 0.126。V 和 T 与幼苗叶片中的乙烯和脱落酸含量、茎中的脱落酸和辅酶含量、根中的细胞分裂素和乙烯含量以及茎和根的弹性模量呈正相关,但与茎和叶片中的细胞分裂素含量、根中的辅酶和脱落酸含量以及叶片的弹性模量呈负相关。风扰动控制幼苗生长的机制包括引起茎和叶中赤霉酸的积累,以及将根中的辅助素含量降低到根系生长的最佳阈值左右,从而减少幼苗茎叶的发育,促进根系更好地生长,提高 SSI。这项工作为利用风扰动作为可持续幼苗培育和个性化幼苗管理方法提供了理论见解和技术指导。
Wind disturbance-based tomato seedlings growth control
Wind-disturbance is a potential eco-friendly technique for tackling leggy seedlings. This study uses orthogonal experimental design and seedlings vigour assessment by strong seedling index (SSI) to investigate wind-disturbance on regulating tomato seedlings growth. Changes in endogenous hormone levels and biomechanical properties of tomato seedlings were investigated using enzyme-linked immunosorbent assay and uniaxial tension tests. Results showed that factors influencing significantly SSI, in descending order, are wind disturbance time (T), seedling age at the onset of wind disturbance (SA), wind velocity (V), and interval time (I). The wind-disturbance effect was found to be optimal with SSI = 0.126 for a condition where V, T, I and SA values are 3 m s−1, 1 min, 30 min, and 15 days, respectively. V and T were positively correlated with the ethylene and abscisic acid content in seedling leaves, abscisic acid and auxin content in stems, cytokinin and ethylene content in roots, and the elastic moduli of stems and roots but negatively associated with the cytokinin content in stems and leaves, auxin and abscisic acid content in roots, and leaves’ elastic modulus. Wind disturbance mechanism for controlling seedlings growth involved eliciting the accumulation of abscisic acid in stems and leaves and reduction of the auxin content in roots to about the optimal threshold for roots growth thereby reducing seedling stems and leaves development and promoting a better roots growth and a high SSI. This work offers theoretical insights and technical guidance for utilising wind-disturbance as a sustainable seedling cultivation and personalised seedling management approach.
期刊介绍:
Biosystems Engineering publishes research in engineering and the physical sciences that represent advances in understanding or modelling of the performance of biological systems for sustainable developments in land use and the environment, agriculture and amenity, bioproduction processes and the food chain. The subject matter of the journal reflects the wide range and interdisciplinary nature of research in engineering for biological systems.