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一类新型粘性果皮和淡绿色突变导致番茄(Solanum lycopersicum)叶片和果实的角质层缺失。

A novel class of sticky peel and light green mutations causes cuticle deficiency in leaves and fruits of tomato (Solanum lycopersicum).

机构信息

Research Institute, Kagome Co., Ltd., 17 Nishitomiyama, Nasushiobara, 329-2762, Japan.

出版信息

Planta. 2012 Nov;236(5):1559-70. doi: 10.1007/s00425-012-1719-6. Epub 2012 Jul 27.

DOI:10.1007/s00425-012-1719-6
PMID:22837053
Abstract

The plant cuticle consists of aliphatic wax and cutin, and covers all the aerial tissues, conferring resistance to both biotic and abiotic stresses. In this study, we performed phenotypic characterizations of tomato mutants having both sticky peel (pe) and light green (lg) mutations. Our genetic analysis showed that these two mutations are tightly linked and behave like a monogenic recessive mutation. The double mutant (pe lg) produced glossy soft fruits with light green leaves, most likely due to defects in cuticle formation. Cytological analysis revealed that the thickness of the fruit cuticle layer was dramatically reduced in the pe lg mutant. The epidermal cells of the leaves were also deformed in the pe lg mutant, suggesting that leaf cuticle formation was also disrupted in the mutant. Consistent with this, transmission electron microscopic analysis showed that the electron density of the cuticle layer of the adaxial surface of the leaf was reduced in the pe lg mutant compared to WT, suggesting that there are changes in cuticle structure and/or composition in the pe lg mutant. Both physiological analysis to measure the rate of transpiration, and staining of the fruits and leaves with toluidine blue, revealed that water permeability was enhanced in the pe lg mutant, consistent with the reduced thickness of its cuticle layer. Taken together the preliminary analyses of the cuticle components, the PE LG is most likely involved in proper cuticle formation.

摘要

植物表皮由脂肪蜡和角质组成,覆盖所有气生组织,赋予其对生物和非生物胁迫的抗性。在这项研究中,我们对具有粘性果皮 (pe) 和淡绿叶 (lg) 突变的番茄突变体进行了表型特征分析。我们的遗传分析表明,这两个突变紧密连锁,表现为单基因隐性突变。双突变体 (pe lg) 产生有光泽的软果和淡绿叶,很可能是由于角质层形成缺陷所致。细胞学分析表明,pe lg 突变体中果皮角质层的厚度显著降低。pe lg 突变体的叶片表皮细胞也变形,表明叶片角质层的形成也受到干扰。与此一致的是,透射电子显微镜分析表明,与 WT 相比,pe lg 突变体叶片上表面角质层的电子密度降低,表明角质层结构和/或组成发生了变化。对蒸腾速率进行生理分析以及用甲苯胺蓝对果实和叶片进行染色的结果表明,pe lg 突变体的水分渗透性增强,与角质层厚度降低一致。综合角质层成分的初步分析,PE LG 很可能参与了适当的角质层形成。

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