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稳定的 Closterium peracerosum-strigosum-littorale 复合体的核转化。

Stable nuclear transformation of the Closterium peracerosum-strigosum-littorale complex.

机构信息

Department of Chemical and Biological Sciences, Faculty of Science, Japan Women's University, 2-8-1 Mejirodai, Bunkyo-ku, Tokyo, 112-8681 Japan.

出版信息

Plant Cell Physiol. 2011 Sep;52(9):1676-85. doi: 10.1093/pcp/pcr103. Epub 2011 Jul 29.

DOI:10.1093/pcp/pcr103
PMID:21804095
Abstract

Although charophycean algae form a relevant monophyly with embryophytes and hence occupy a fundamental place in the development of Streptophyta, no tools for genetic transformation in these organisms have been developed. Here we present the first stable nuclear transformation system for the unicellular Zygnematales, the Closterium peracerosum-strigosum-littorale complex (C. psl complex), which is one of the most useful organisms for experimental research on charophycean algae. When a vector, pSA106, containing the dominant selectable marker ble (phleomycin-resistant) gene and a reporter cgfp (Chlamydomonas-adapted green fluorescent protein) gene was introduced into cells via particle bombardment, a total of 19 phleomycin-resistant cells were obtained in the presence of a low concentration of phleomycin. Six isogenic strains isolated using conditioned medium showed consecutive cgfp expression and long-term stability for phleomycin resistance. DNA analyses verified single or tandem/redundant integration of ~10 copies of pSA106 into the C. psl complex genome. We also constructed an overexpression vector, pSA1102, and then integrated a CpPI gene encoding minus-specific sex pheromone into pSA1102. Ectopic overexpression of CpPI and the pheromonal function were confirmed when the vector pSA1102_CpPI was introduced into mt(+) cells. The present efficient transformation system for the C. psl complex should provide not only a basis for molecular investigation of Closterium but also an insight into important processes in early development and evolution of Streptophyta.

摘要

尽管 轮藻 门藻类与 胚植物 形成相关的单系群,因此在 石松植物 纲的发展中占据基础地位,但这些生物中尚未开发出遗传转化工具。在这里,我们首次展示了用于单细胞 绿藻纲 ( 团藻目 ),即 串珠藻属-刚毛藻属-海生藻属 复合体(C. psl 复合体)的稳定核转化系统,该复合体是用于实验研究 轮藻 门藻类的最有用的生物之一。当含有显性选择标记 ble(潮霉素抗性)基因和报告基因 cgfp(适应于衣藻的绿色荧光蛋白)的载体 pSA106 通过粒子轰击导入细胞时,在低浓度潮霉素存在下,总共获得了 19 株潮霉素抗性细胞。使用条件培养基分离的 6 个同基因株系显示连续的 cgfp 表达和对潮霉素抗性的长期稳定性。DNA 分析证实了 pSA106 的单拷贝或串联/冗余整合到 C. psl 复合体基因组中约 10 个拷贝。我们还构建了一个过表达载体 pSA1102,然后将编码 minus-特异性性信息素的 CpPI 基因整合到 pSA1102 中。当载体 pSA1102_CpPI 被导入 mt(+)细胞时,CpPI 的异位过表达及其性信息素功能得到了证实。目前用于 C. psl 复合体的高效转化系统不仅为分子研究 串珠藻属 提供了基础,也为石松植物 纲 早期发育和进化的重要过程提供了新的认识。

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