Yang Liyan, Cui Guimei, Wang Yixue, Hao Yaoshan, Du Jianzhong, Zhang Hongmei, Wang Changbiao, Zhang Huanhuan, Wu Shu-Biao, Sun Yi
Biotechnology Research Center, Shanxi Academy of Agricultural SciencesTaiyuan, China; College of Life Science, Shanxi Normal UniversityLinfen, China.
Biotechnology Research Center, Shanxi Academy of Agricultural Sciences Taiyuan, China.
Front Plant Sci. 2017 Mar 21;8:383. doi: 10.3389/fpls.2017.00383. eCollection 2017.
Plant genetic transformation has arguably been the core of plant improvement in recent decades. Efforts have been made to develop in planta transformation systems due to the limitations present in the tissue-culture-based methods. Herein, we report an improved in planta transformation system, and provide the evidence of reporter gene expression in pollen tube, embryos and stable transgenicity of the plants following pollen-mediated plant transformation with optimized sonication treatment of pollen. The results showed that the aeration at 4°C treatment of pollen grains in sucrose prior to sonication significantly improved the pollen viability leading to improved kernel set and transformation efficiency. Scanning electron microscopy observation revealed that the removal of operculum covering pollen pore by ultrasonication might be one of the reasons for the pollen grains to become competent for transformation. Evidences have shown that the gene was expressed in the pollen tube and embryos, and the gene was detected in the subsequent T and T progenies, suggesting the successful transfer of the foreign genes to the recipient plants. The Southern blot analysis of gene in T progenies and PCR-identified gene segregation in T seedlings confirmed the stable inheritance of the transgene. The outcome illustrated that the pollen-mediated genetic transformation system can be widely applied in the plant improvement programs with apparent advantages over tissue-culture-based transformation methods.
近几十年来,植物遗传转化可以说是植物改良的核心。由于基于组织培养的方法存在局限性,人们一直在努力开发植物体内转化系统。在此,我们报告了一种改进的植物体内转化系统,并提供了报告基因在花粉管、胚中表达的证据,以及花粉介导的植物转化经优化的花粉超声处理后植物的稳定转基因性。结果表明,在超声处理前,4°C蔗糖中通气处理花粉粒显著提高了花粉活力,从而提高了结实率和转化效率。扫描电子显微镜观察表明,超声处理去除覆盖花粉孔的盖膜可能是花粉粒变得易于转化的原因之一。证据表明,该基因在花粉管和胚中表达,并且在随后的T1和T2后代中检测到该基因,这表明外源基因成功转移到受体植物中。T1后代中该基因的Southern杂交分析以及T2幼苗中PCR鉴定的基因分离证实了转基因的稳定遗传。结果表明,花粉介导的遗传转化系统可以广泛应用于植物改良计划,与基于组织培养的转化方法相比具有明显优势。