Growth & Development, Biozentrum, University of Basel, Spitalstrasse 41, 4056 Basel, Switzerland.
Tissue and Organ Homeostasis, Centro de Biología Molecular "Severo Ochoa" (CSIC-UAM), Universidad Autónoma de Madrid, Nicolás Cabrera 1, Madrid, Spain.
Dev Cell. 2024 Oct 7;59(19):2672-2686.e5. doi: 10.1016/j.devcel.2024.06.004. Epub 2024 Jul 5.
CRISPR-Cas greatly facilitated the integration of exogenous sequences into specific loci. However, knockin generation in multicellular animals remains challenging, partially due to the complexity of insertion screening. Here, we describe SEED/Harvest, a method to generate knockins in Drosophila, based on CRISPR-Cas and the single-strand annealing (SSA) repair pathway. In SEED (from "scarless editing by element deletion"), a switchable cassette is first integrated into the target locus. In a subsequent CRISPR-triggered repair event, resolved by SSA, the cassette is seamlessly removed. Germline excision of SEED cassettes allows for fast and robust knockin generation of both fluorescent proteins and short protein tags in tandem. Tissue-specific expression of Cas9 results in somatic cassette excision, conferring spatiotemporal control of protein labeling and the conditional rescue of mutants. Finally, to achieve conditional protein labeling and manipulation of short tag knockins, we developed a genetic toolbox by functionalizing the ALFA nanobody.
CRISPR-Cas 极大地促进了外源序列整合到特定基因座。然而,多细胞动物的基因敲入仍然具有挑战性,部分原因是插入筛选的复杂性。在这里,我们描述了基于 CRISPR-Cas 和单链退火(SSA)修复途径的在果蝇中生成基因敲入的 SEED/Harvest 方法。在 SEED(“无疤痕通过元件缺失编辑”)中,首先将可切换盒式元件整合到靶基因座中。在随后的由 SSA 解决的 CRISPR 触发的修复事件中,盒式元件被无缝去除。SEED 盒式元件的生殖系切除允许快速和稳健的荧光蛋白和短蛋白标签的串联基因敲入。Cas9 的组织特异性表达导致体细胞盒式元件切除,赋予蛋白质标记的时空控制和突变体的条件拯救。最后,为了实现条件性蛋白质标记和短标签基因敲入的操作,我们通过功能化 ALFA 纳米抗体开发了一个遗传工具盒。