Albert Blanch-Asensio, Catarina Grandela, Christine L Mummery, Richard P Davis
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Using a strategy whereby the positive selection marker is only expressed if the donor plasmid carrying the payload is correctly targeted, we can obtain 100% enrichment for cells containing the DNA payload. Procedures for expressing Cre efficiently also mean that a clonal isolation step is no longer essential to derive the required genetically modified hPS cells containing the integrated DNA, potentially reducing clonal variability. Furthermore, STRAIGHT-IN facilitates rapid and multiplexed generation of genetically matched hPS cells when multiple donor plasmids are delivered simultaneously. STRAIGHT-IN has various applications, which include integrating complex genetic circuits for synthetic biology, as well as creating panels of hPS cells lines containing, as necessary, hundreds of disease-linked variants for disease modeling and drug discovery. After establishing the hPS cell line containing the landing pad, the entire procedure, including donor plasmid synthesis, takes 1.5-3 months, depending on whether single or multiple DNA payloads are integrated. 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引用次数: 0
摘要
在哺乳动物细胞(如人类多能干细胞(hPS 细胞))中靶向整合大 DNA 载体(>10 kb)或基因组置换仍然是一项挑战。在这里,我们描述了一种称为丝氨酸和酪氨酸重组酶辅助基因整合高通量研究(STRAIGHT-IN)的平台,以规避这一问题。首先,精确插入或使用着陆垫盒来替换特定的基因组区域。然后,位点特异性整合酶 Bxb1 可以将 DNA 构建物(包括大于 50 kb 的 DNA 构建物)整合到基因组中,而 Cre 重组酶会切除辅助 DNA 序列,以防止整合后沉默。我们采用的策略是,只有携带有效载荷的供体质粒被正确靶向,阳性选择标记才会表达,这样就能使含有 DNA 有效载荷的细胞得到 100% 的富集。高效表达 Cre 的程序还意味着,要获得含有整合 DNA 的所需转基因 hPS 细胞,不再需要克隆分离步骤,从而有可能减少克隆变异。此外,当同时提供多个供体质粒时,STRAIGHT-IN 还有助于快速、多重地生成基因匹配的 hPS 细胞。STRAIGHT-IN 有多种应用,包括为合成生物学整合复杂的基因回路,以及根据需要创建包含数百个疾病相关变体的 hPS 细胞系,用于疾病建模和药物发现。在建立包含着陆垫的 hPS 细胞系后,整个过程(包括供体质粒合成)需要 1.5-3 个月,具体取决于是整合单个还是多个 DNA 有效载荷。该方案只要求研究人员熟练掌握分子生物学和标准细胞培养技术。
STRAIGHT-IN: a platform for rapidly generating panels of genetically modified human pluripotent stem cell lines.
Targeted integration of large DNA cargoes (>10 kb) or genomic replacements in mammalian cells, such as human pluripotent stem cells (hPS cells), remains challenging. Here we describe a platform termed serine and tyrosine recombinase-assisted integration of genes for high-throughput investigation (STRAIGHT-IN) to circumvent this. First, a landing pad cassette is precisely inserted or used to replace specific genomic regions. The site-specific integrase Bxb1 then enables DNA constructs, including those >50 kb, to be integrated into the genome, while Cre recombinase excises auxiliary DNA sequences to prevent postintegrative silencing. Using a strategy whereby the positive selection marker is only expressed if the donor plasmid carrying the payload is correctly targeted, we can obtain 100% enrichment for cells containing the DNA payload. Procedures for expressing Cre efficiently also mean that a clonal isolation step is no longer essential to derive the required genetically modified hPS cells containing the integrated DNA, potentially reducing clonal variability. Furthermore, STRAIGHT-IN facilitates rapid and multiplexed generation of genetically matched hPS cells when multiple donor plasmids are delivered simultaneously. STRAIGHT-IN has various applications, which include integrating complex genetic circuits for synthetic biology, as well as creating panels of hPS cells lines containing, as necessary, hundreds of disease-linked variants for disease modeling and drug discovery. After establishing the hPS cell line containing the landing pad, the entire procedure, including donor plasmid synthesis, takes 1.5-3 months, depending on whether single or multiple DNA payloads are integrated. This protocol only requires the researcher to be skilled in molecular biology and standard cell culture techniques.
期刊介绍:
Nature Protocols focuses on publishing protocols used to address significant biological and biomedical science research questions, including methods grounded in physics and chemistry with practical applications to biological problems. The journal caters to a primary audience of research scientists and, as such, exclusively publishes protocols with research applications. Protocols primarily aimed at influencing patient management and treatment decisions are not featured.
The specific techniques covered encompass a wide range, including but not limited to: Biochemistry, Cell biology, Cell culture, Chemical modification, Computational biology, Developmental biology, Epigenomics, Genetic analysis, Genetic modification, Genomics, Imaging, Immunology, Isolation, purification, and separation, Lipidomics, Metabolomics, Microbiology, Model organisms, Nanotechnology, Neuroscience, Nucleic-acid-based molecular biology, Pharmacology, Plant biology, Protein analysis, Proteomics, Spectroscopy, Structural biology, Synthetic chemistry, Tissue culture, Toxicology, and Virology.