Properties of the soybean seed coat cuticle change during development

被引:0
作者
Kosala Ranathunge
Suqin Shao
Dinah Qutob
Mark Gijzen
Carol A. Peterson
Mark A. Bernards
机构
[1] University of Waterloo,Department of Biology
[2] The University of Western Ontario,Environmental Stress Biology Group, Department of Biology
[3] Agriculture and Agri-Food Canada,Southern Crop Protection and Food Research Centre (London)
[4] University of Bonn,Institute of Cellular and Molecular Botany
[5] Agriculture and Agri-Food Canada,Guelph Food Research Centre
来源
Planta | 2010年 / 231卷
关键词
Soybean; Seed coat cuticle; Cuticular cracks; Hard seeds; Permeability;
D O I
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中图分类号
学科分类号
摘要
Whether a seed coat of a soybean (Glycine max L. Mer.) seed is permeable or non-permeable is governed by a number of quantitative trait loci further influenced by environmental factors. In soybean seeds, water loss is controlled by a thin, inconspicuous outer cuticle. When intact, the outer cuticle constitutes a barrier to water passage; however, the presence of minute cracks in the cuticle results in the ready passage of water. We explored the timing of cuticular development in soybean seeds by measuring the deposition of the cutin in relation to seed growth and cell viability. Cutin deposition occurred early in the development and ceased just prior to the final stage of rapid seed expansion. Cracks in the cuticle appeared after cutin synthesis ceased while the seed continued to grow. In permeable seeds (regardless of genotype) the resistance of the cuticle to water passage increased steadily during development until seed expansion was maximal and cracks appeared in the cuticle. Once cracks formed, they became the primary site of water passage and the cuticle lost its ability to control the process. In non-permeable seeds, no cracks appeared at this critical point and the cuticle continued to restrict water passage. Microarray analysis of gene expression during seed coat development revealed a complex transcriptome with many genes uniquely expressed in the seed coat. However, the expression patterns were remarkably similar between permeable and non-permeable types, in keeping with the complexity of the underlying genetics of seed coat permeability.
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页码:1171 / 1188
页数:17
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