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在植物中通过天然加工单指导 RNA 转录本来生成具有催化活性的 Cas9/single-guide RNA 复合物。

Native Processing of Single Guide RNA Transcripts to Create Catalytic Cas9/Single Guide RNA Complexes in Planta.

机构信息

Department of Plant Pathology & Microbiology, Texas A&M University, College Station, Texas 77843.

Department of Plant Pathology & Microbiology, Texas A&M University, College Station, Texas 77843

出版信息

Plant Physiol. 2020 Oct;184(2):1194-1206. doi: 10.1104/pp.20.00150. Epub 2020 Jul 14.

Abstract

The present CRISPR/Cas9 gene editing dogma for single guide RNA (sgRNA) delivery is based on the premise that 5'-and 3'-nucleotide overhangs negate Cas9/sgRNA catalytic activity in vivo. This has led to engineering strategies designed to either avoid or remove extraneous nucleotides at the 5' and 3' termini of sgRNAs. Previously, we used a viral vector to express both GFP and a sgRNA from a single virus-derived mRNA in This vector yielded high levels of GFP and catalytically active sgRNAs. Here, in an effort to understand the biochemical interactions of this result, we used in vitro assays to demonstrate that nucleotide overhangs 5', but not 3', proximal to the sgRNA do in fact inactivate Cas9 catalytic activity at the specified target site. Next we showed that in planta sgRNAs bound to Cas9 are devoid of the expected 5' overhangs transcribed by the virus. Furthermore, when a plant nuclear promoter was used for expression of the GFP-sgRNA fusion transcript, it also produced indels when delivered with Cas9. These results reveal that 5' auto-processing of progenitor sgRNAs occurs natively in plants. Toward a possible mechanism for the perceived auto-processing, we found, using in vitro-generated RNAs and those isolated from plants, that the 5' to 3' exoribonuclease XRN1 can degrade elongated progenitor sgRNAs, whereas the mature sgRNA end products are resistant. Comparisons with other studies suggest that sgRNA auto-processing may be a phenomenon not unique to plants, but present in other eukaryotes as well.

摘要

目前,基于 Cas9/sgRNA 酶在体内的活性会被 5' 和 3' 核苷酸突出所否定的前提,CRISPR/Cas9 基因编辑的单指导 RNA(sgRNA)传递方法被广泛应用。这导致了工程策略的设计,旨在避免或去除 sgRNA 5' 和 3' 末端的多余核苷酸。此前,我们使用病毒载体在单个病毒衍生的 mRNA 中表达 GFP 和 sgRNA,该载体产生高水平的 GFP 和具有催化活性的 sgRNA。在这里,为了了解这一结果的生化相互作用,我们使用体外测定法证明 sgRNA 5' 核苷酸突出,但不是 3' 核苷酸突出,确实会使 Cas9 酶在特定靶位点的活性失活。接下来我们表明,在植物体内,与 Cas9 结合的 sgRNA 没有病毒转录的预期 5' 突出。此外,当使用植物核启动子表达 GFP-sgRNA 融合转录物时,当与 Cas9 一起递送时,也会产生插入缺失。这些结果表明,5' 前体 sgRNA 的自动加工在植物中自然发生。为了探究这种自动加工的可能机制,我们使用体外产生的 RNA 和从植物中分离的 RNA 发现,5' 到 3' 的外切核酸酶 XRN1 可以降解伸长的前体 sgRNA,而成熟的 sgRNA 末端产物则具有抗性。与其他研究的比较表明,sgRNA 自动加工可能不是植物特有的现象,而是也存在于其他真核生物中。

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本文引用的文献

1
In Planta Processing of the SpCas9-gRNA Complex.在 SpCas9-gRNA 复合物的植物体内加工。
Plant Cell Physiol. 2017 Nov 1;58(11):1857-1867. doi: 10.1093/pcp/pcx154.

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