Zhang Weiting, Petri Karl, Ma Junyan, Lee Hyunho, Tsai Chia-Lun, Joung J Keith, Yeh Jing-Ruey Joanna
Cardiovascular Research Center, Massachusetts General Hospital, Charlestown, MA 02129, USA.
Department of Medicine, Harvard Medical School, Boston, MA 02115, USA.
bioRxiv. 2023 Aug 15:2023.08.14.553324. doi: 10.1101/2023.08.14.553324.
CRISPR prime editing () requires a Cas9 nickase-reverse transcriptase fusion protein (known as PE2) and a prime editing guide RNA (), an extended version of a standard guide RNA () that both specifies the intended target genomic sequence and encodes the desired genetic edit. Here we show that sequence complementarity between the 5' and the 3' regions of a pegRNA can negatively impact its ability to complex with Cas9, thereby potentially reducing PE efficiency. We demonstrate this limitation can be overcome by a simple pegRNA refolding procedure, which improved ribonucleoprotein-mediated PE efficiencies in zebrafish embryos by up to nearly 25-fold. Further gains in PE efficiencies of as much as 6-fold could also be achieved by introducing point mutations designed to disrupt internal interactions within the pegRNA. Our work defines simple strategies that can be implemented to improve the efficiency of PE.
CRISPR 碱基编辑()需要一种 Cas9 切口酶-逆转录酶融合蛋白(称为 PE2)和一个碱基编辑引导 RNA(),它是标准引导 RNA()的扩展版本,既能指定预期的目标基因组序列,又能编码所需的基因编辑。我们在此表明,pegRNA 的 5' 和 3' 区域之间的序列互补性会对其与 Cas9 形成复合物的能力产生负面影响,从而可能降低碱基编辑效率。我们证明,通过一个简单的 pegRNA 重折叠程序可以克服这一限制,该程序将斑马鱼胚胎中核糖核蛋白介导的碱基编辑效率提高了近 25 倍。通过引入旨在破坏 pegRNA 内部相互作用的点突变,碱基编辑效率还可进一步提高多达 6 倍。我们的工作定义了可用于提高碱基编辑效率的简单策略。