党参愈伤组织遗传转化体系的建立。

IF 1.1
Zhe-Yu Liu, Jiao-Jiao Ji, Feng Jiang, Xing-Rui Tian, Jian-Kuan Li, Jian-Ping Gao
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引用次数: 2

摘要

党参是一种传统的中药材和食用植物,含有多种生物活性成分。然而,由于功能基因分析的困难,其生物合成机制尚不清楚。因此,建立高效的基因转化系统对基因功能分析具有重要意义。本研究以草茎为外植体,建立了农杆菌介导的高效愈伤组织遗传转化体系。预培养3 d后,将外植体用含有pCAMBIA1381-35S::GUS的农杆菌GV3101菌感染,OD600值为0.3,培养15 min,然后在MS诱导培养基上共培养1 d,在添加250 mg l-1头孢噻肟钠的培养基上延迟培养12 d。将转化的愈伤组织选择在添加了250 mg l-1头孢噻肟钠和2.0 mg l-1潮霉素的筛选培养基上,通过PCR扩增GUS基因和组织化学GUS实验进行验证。在此条件下,愈伤组织的诱导转化效率最高,达到91.07%。愈伤参遗传转化体系的建立,为利用基因工程技术对愈伤参生物活性成分相关基因进行功能分析奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Establishment of a genetic transformation system for Codonopsis pilosula callus.

Codonopsis pilosula, a traditional Chinese medicinal and edible plant, contains several bioactive components. However, the biosynthetic mechanism is unclear because of the difficulties associated with functional gene analysis. Therefore, it is important to establish an efficient genetic transformation system for gene function analysis. In this study, we established a highly efficient Agrobacterium-mediated callus genetic transformation system for C. pilosula using stems as explants. After being pre-cultured for 3 days, the explants were infected with Agrobacterium tumefaciens strain GV3101 harboring pCAMBIA1381-35S::GUS at an OD600 value of 0.3 for 15 min, followed by co-cultivation on MS induction medium for 1 day and delayed cultivation on medium supplemented with 250 mg l-1 cefotaxime sodium for 12 days. The transformed calli were selected on screening medium supplemented with 250 mg l-1 cefotaxime sodium and 2.0 mg l-1 hygromycin and further confirmed by PCR amplification of the GUS gene and histochemical GUS assay. Based on the optimal protocol, the induction and transformation efficiency of calli reached a maximum of 91.07%. The establishment of a genetic transformation system for C. pilosula calli lays the foundation for the functional analysis of genes related to bioactive components through genetic engineering technology.

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