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利用工程化锌指核酸酶在衣藻中进行核基因靶向。

Nuclear gene targeting in Chlamydomonas using engineered zinc-finger nucleases.

机构信息

Institute of Biology, Experimental Biophysics, Humboldt Universität Berlin, Berlin, Germany.

出版信息

Plant J. 2013 Mar;73(5):873-82. doi: 10.1111/tpj.12066. Epub 2013 Jan 29.

DOI:10.1111/tpj.12066
PMID:23137232
Abstract

The unicellular green alga Chlamydomonas reinhardtii is a versatile model for fundamental and biotechnological research. A wide range of tools for genetic manipulation have been developed for this alga, but specific modification of nuclear genes is still not routinely possible. Here, we present a nuclear gene targeting strategy for Chlamydomonas that is based on the application of zinc-finger nucleases (ZFNs). Our approach includes (i) design of gene-specific ZFNs using available online tools, (ii) evaluation of the designed ZFNs in a Chlamydomonas in situ model system, (iii) optimization of ZFN activity by modification of the nuclease domain, and (iv) application of the most suitable enzymes for mutagenesis of an endogenous gene. Initially, we designed a set of ZFNs to target the COP3 gene that encodes the light-activated ion channel channelrhodopsin-1. To evaluate the designed ZFNs, we constructed a model strain by inserting a non-functional aminoglycoside 3'-phosphotransferase VIII (aphVIII) selection marker interspaced with a short COP3 target sequence into the nuclear genome. Upon co-transformation of this recipient strain with the engineered ZFNs and an aphVIII DNA template, we were able to restore marker activity and select paromomycin-resistant (Pm-R) clones with expressing nucleases. Of these Pm-R clones, 1% also contained a modified COP3 locus. In cases where cells were co-transformed with a modified COP3 template, the COP3 locus was specifically modified by homologous recombination between COP3 and the supplied template DNA. We anticipate that this ZFN technology will be useful for studying the functions of individual genes in Chlamydomonas.

摘要

单细胞绿藻莱茵衣藻是基础和生物技术研究的多功能模式生物。已经开发出多种用于该藻类的遗传操作工具,但核基因的特异性修饰仍然不常见。在这里,我们提出了一种基于锌指核酸酶(ZFNs)应用的莱茵衣藻核基因靶向策略。我们的方法包括(i)使用可用的在线工具设计基因特异性 ZFNs,(ii)在莱茵衣藻原位模型系统中评估设计的 ZFNs,(iii)通过修饰核酸酶结构域优化 ZFN 活性,以及(iv)应用最适合的酶进行内源基因的诱变。最初,我们设计了一组 ZFNs 来靶向编码光激活离子通道通道视紫红质-1 的 COP3 基因。为了评估设计的 ZFNs,我们构建了一个模型菌株,通过将一个非功能的氨基糖苷 3'-磷酸转移酶 VIII(aphVIII)选择标记与短 COP3 靶序列间隔插入核基因组中来实现。在将工程化的 ZFNs 和 aphVIII DNA 模板共转化该受体菌株后,我们能够恢复标记活性并选择表达核酶的帕霉素抗性(Pm-R)克隆。在这些 Pm-R 克隆中,有 1%还含有一个修饰的 COP3 基因座。在细胞与修饰的 COP3 模板共转化的情况下,COP3 基因座通过 COP3 与提供的模板 DNA 之间的同源重组而被特异性修饰。我们预计这项 ZFN 技术将有助于研究莱茵衣藻中单个基因的功能。

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