播前处理、种子成分及水分吸胀对锦绣花种子萌发的影响

Y. A. Mahajan, B. A. Shinde, Arun Torris, Akshay Gade, V. Patil, C. K. John, N. Kadoo, T. Nikam
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引用次数: 2

摘要

金凤花是一种重要的园艺和药用植物。它的种子发芽差、不稳定、延迟。尚不清楚白杨种子的详细结构成分和促进种子萌发过程的吸水机理。因此,有必要研究一种方法,以确保种子萌发的一致性和增强。采用不同的播前处理方法,结合布鲁瑙尔-埃米特-泰勒(BET)表面积分析和三维x射线微层析成像(micro-T)技术,研究了紫苏种子萌发过程中的结构成分、孔隙网络和吸水机理。结果表明,播前机械划伤后水浸泡24 h,可显著提高种子萌发率(>85%)。BET和micro-T结果表明,种皮被盖气孔率为21%,气孔网络连通良好(17.50%),有利于水通过种门,磷钨酸染色证实了这一点。然而,由于其微不足道的孔隙度,肌层和胚乳是不透水的。多学科技术,如BET和micro-T,以及传统的方法,可以用来解决种皮结构,孔隙率和水吸机制,帮助种子发芽。机械划伤使水分通过网状孔网络通过可渗透的被盖渗入种子内层,显著提高了种子的萌发率。该方法可以在较短的时间内产生大量的植物,并保护这一具有高药用价值的重要物种的自然种群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pre-Sowing Treatments, Seed Components and Water Imbibition Aids Seed Germination of Gloriosa superba
Gloriosa superba L. is a horticulturally and medicinally important plant. Its seeds have poor, erratic, and deferred germination. The detailed seed structure components and water imbibition mechanism facilitating the process of seed germination in G. superba remain unexplored. Therefore, it is essential to develop methods to ensure consistent and enhanced seed germination in G. superba. Various pre-sowing treatments along with the Brunauer-Emmett-Teller (BET) surface area analysis and 3D X-ray micro-tomography (micro-T) were employed to elucidate seed structure components, porosity network, and the water imbibition mechanism during germination in G. superba. The study revealed that consistent and significantly improved seed germination (>85%) was observed using the pre-sowing treatment mechanical scarification followed by 24 h water soaking in G. superba. BET and micro-T showed that the tegmen of the seed coat exhibited porosity (21%) with a well-connected porosity network (17.50%) that helped in water movement through hilum, which was confirmed by phosphotungstic acid staining. However, the sarcotesta and endosperm were water-impermeable due to their negligible porosity. Multidisciplinary techniques such as BET and micro-T along with conventional methodologies can be employed to address the seed coat structure, porosity, and water imbibition mechanism aiding seed germination. Mechanical scarification enabled the water to penetrate internal seed layers through the permeable tegmen via the reticulate pore network, which significantly improved seed germination. The developed seed germination method can produce a large number of plants in less time and conserve the natural populations of this high-value medicinally important species.
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