Department of Horticultural Science, Kyungpook National University, Daegu, South Korea.
Forest Medicinal Resources Research Center, NIFoS, Yeongju, South Korea.
Plant Cell Rep. 2022 Nov;41(11):2201-2211. doi: 10.1007/s00299-022-02916-4. Epub 2022 Aug 21.
Overexpression of acdS in petunia negatively affects seed germination by suppression of ethylene biosynthesis and signaling genes and induction of abscisic acid biosynthesis genes in the seeds. The acdS gene, which encodes 1-aminocyclopropane-1-carboxylic acid (ACC) deaminase, has been overexpressed in horticultural crops to improve their tolerance to abiotic stress. However, the role of acdS in the germination of crop seeds has not been investigated, despite its suppression of ethylene production. In this study, acdS overexpression significantly reduced seed weight and germination rate in transgenic petunia cv. Merage Rose (T5, T7, and T12) relative to wild type via the suppression of ethylene biosynthesis and signaling genes and induction of abscisic acid (ABA) biosynthesis genes. The germination rate of T7 was significantly lower than those of T5 and T12, which was linked to higher expression of acdS in the former than the latter. The addition of exogenous ACC and gibberellic acid (GA) to the germination medium improved the germination rate of T5 seeds and GA promoted the germination rate of T12 seeds. However, neither ACC nor GA promoted the germination rate of T7 seeds. The improved germination rates in T5 and T12 were associated with the transcriptional regulation of ethylene biosynthesis genes, particularly that of the ACO1 gene, signaling genes, and ABA biosynthesis genes. In this study, we discovered a negative role of acdS in seed germination in petunia. Thus, we highlight the need to consider the negative effect of acdS on seed germination when overexpressing the gene in horticultural crops to improve tolerance to abiotic stress.
acdS 在矮牵牛中的过表达通过抑制乙烯生物合成和信号基因以及诱导种子中脱落酸(ABA)生物合成基因的表达,对种子萌发产生负面影响。acdS 基因编码 1-氨基环丙烷-1-羧酸(ACC)脱氨酶,已在园艺作物中过表达以提高其对非生物胁迫的耐受性。然而,尽管 acdS 抑制了乙烯的产生,但它在作物种子萌发中的作用尚未得到研究。在这项研究中,acdS 过表达通过抑制乙烯生物合成和信号基因以及诱导 ABA 生物合成基因的表达,显著降低了转基因矮牵牛 cv. Merage Rose(T5、T7 和 T12)相对于野生型的种子重量和萌发率。T7 的萌发率明显低于 T5 和 T12,这与前者 acdS 的表达高于后者有关。在萌发培养基中添加外源 ACC 和赤霉素(GA)可提高 T5 种子的萌发率,而 GA 则促进了 T12 种子的萌发率。然而,ACC 或 GA 均未促进 T7 种子的萌发率。T5 和 T12 中萌发率的提高与乙烯生物合成基因,特别是 ACO1 基因、信号基因和 ABA 生物合成基因的转录调控有关。在这项研究中,我们发现 acdS 在矮牵牛种子萌发中起负作用。因此,当在园艺作物中过表达该基因以提高对非生物胁迫的耐受性时,我们强调需要考虑 acdS 对种子萌发的负面影响。