Key Laboratory of Biology and Genetic Improvement of Horticultural Crops (Northeast Region), Ministry of Agriculture, Harbin 150030, China.
Department of Plant Biology and Ecology, College of Life Science, Nankai University, China.
Plant Physiol Biochem. 2018 Apr;125:35-44. doi: 10.1016/j.plaphy.2018.01.015. Epub 2018 Jan 31.
Onion (Allium cepa L.) is one of the major vegetables in China and accounts for a large proportion of China's vegetable exports. Onion cytoplasmic male sterility, which is often used in onion breeding, is caused by the interaction between the nuclear genes and the cytoplasm. However, the underlying molecular mechanism of onion cytoplasmic male sterility remains unclear. In this study, we analysed the anther microstructure of the onion cytoplasmic male sterile line SA2 and the onion maintainer line SB2. We found that the pollen abortion in SA2 occurred at the tetrad stage during the microspore development, which was very different from that in SB2. We used the Illumina HiSeq platform to sequence RNA from anthers at the tetrad stage collected from the SA2 and SB2 lines. The RNA sequencing and transcriptome assembly produced 146,413 All-Unigenes. Based on an analysis of the differentially expressed genes, we identified two cytoplasmic control genes, atp9 and cox1, and three nuclear-related genes, SERK1, AG and AMS. These transcriptomic results were also verified by fluorescence quantitative PCR. Our study provides important information about genes related to onion cytoplasmic male sterility, and it will help improve the understanding of the molecular mechanism of onion cytoplasmic male sterility.
洋葱(Allium cepa L.)是中国的主要蔬菜之一,在中国蔬菜出口中占有很大比例。洋葱细胞质雄性不育通常用于洋葱的育种,是由核基因与细胞质相互作用引起的。然而,洋葱细胞质雄性不育的潜在分子机制尚不清楚。在这项研究中,我们分析了洋葱细胞质不育系 SA2 和洋葱保持系 SB2 的花药微观结构。我们发现,SA2 中的花粉败育发生在小孢子发育的四分体阶段,这与 SB2 中的花粉败育非常不同。我们使用 Illumina HiSeq 平台对从 SA2 和 SB2 系收集的四分体阶段的花药进行 RNA 测序。RNA 测序和转录组组装产生了 146413 个 All-Unigenes。基于对差异表达基因的分析,我们鉴定了两个细胞质控制基因 atp9 和 cox1,以及三个与核相关的基因 SERK1、AG 和 AMS。这些转录组结果也通过荧光定量 PCR 进行了验证。我们的研究提供了与洋葱细胞质雄性不育相关的基因的重要信息,这将有助于提高对洋葱细胞质雄性不育分子机制的理解。