Fast and efficient generation of knock-in human organoids using homology-independent CRISPR-Cas9 precision genome editing
Artegiani, Benedetta; Hendriks, Delilah; Beumer, Joep; Kok, Rutger; Zheng, Xuan; Joore, Indi; Chuva de Sousa Lopes, Susana; van Zon, Jeroen; Tans, Sander; Clevers, Hans
(2020) Nature Cell Biology, volume 22, issue 3, pp. 321 - 331
(Article)
Abstract
CRISPR-Cas9 technology has revolutionized genome editing and is applicable to the organoid field. However, precise integration of exogenous DNA sequences into human organoids is lacking robust knock-in approaches. Here, we describe CRISPR-Cas9-mediated homology-independent organoid transgenesis (CRISPR-HOT), which enables efficient generation of knock-in human organoids representing different tissues. CRISPR-HOT avoids extensive
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cloning and outperforms homology directed repair (HDR) in achieving precise integration of exogenous DNA sequences into desired loci, without the necessity to inactivate TP53 in untransformed cells, which was previously used to increase HDR-mediated knock-in. CRISPR-HOT was used to fluorescently tag and visualize subcellular structural molecules and to generate reporter lines for rare intestinal cell types. A double reporter-in which the mitotic spindle was labelled by endogenously tagged tubulin and the cell membrane by endogenously tagged E-cadherin-uncovered modes of human hepatocyte division. Combining tubulin tagging with TP53 knock-out revealed that TP53 is involved in controlling hepatocyte ploidy and mitotic spindle fidelity. CRISPR-HOT simplifies genome editing in human organoids.
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Keywords: CRISPR-Cas Systems, Gene Editing, Gene Knock-In Techniques/methods, Hepatocytes/cytology, Humans, Intestines/cytology, Liver/cytology, Organoids/cytology, Spindle Apparatus/ultrastructure, Tumor Suppressor Protein p53/physiology, Cell Biology, Research Support, Non-U.S. Gov't, Journal Article
ISSN: 1465-7392
Publisher: Nature Publishing Group
Note: Funding Information: We thank G. Darmasaputra for help with imaging and analyses of polyploid divisions and M. Galli for advice on hepatocyte ploidy; Y. Bar-Ephraïm and J. Bernink for help with FACS; H. Gehart and V. Hornung for providing plasmids; and S. van den Brink for support with preparation of medium components. We acknowledge all of the anonymous tissue donors. This work is part of the Oncode Institute, which is partly financed by the Dutch Cancer Society. B.A. was supported by a FEBS long-term fellowship and is the recipient of a VENI grant (NWO-ALW 863.15.015). Publisher Copyright: © 2020, The Author(s), under exclusive licence to Springer Nature Limited. Copyright: Copyright 2020 Elsevier B.V., All rights reserved.
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