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A Protocol for Multiple Gene Knockout in Mouse Small Intestinal Organoids Using a CRISPR-concatemer
Published on: July 12, 2017
CRISPR/Cas9-mediated knockout of Lim-domain only four retards organ of Corti cell growth
Rajamani Rathinam1, Rita Rosati1, Samson Jamesdaniel1,2
1Institute of Environmental Health Sciences, Wayne State University, Detroit, Michigan.
Abstract:
Lim-domain only 4 (LMO4) plays a critical role in mediating the ototoxic side-effects of cisplatin, a highly effective anti-cancer drug. However, the signaling mechanism by which cochlear LMO4 mediates otopathology is yet to be fully understood. Knockout cell culture models are useful tools for investigating the functional roles of novel genes and delineating associated signaling pathways. Therefore, LMO4 knockout organ of Corti cells were generated by using the CRISPR (clustered regularly interspersed short palindromic repeats)/Cas9 (CRISPR-associated protein 9) system. Successful knockout of LMO4 in UB/OC1 cells was verified by the absence of LMO4 protein bands in immunoblots. Though the Knockout of LMO4 retarded the growth rate and the migratory potential of the cells it did not inhibit their long-term viability as the LMO4 knockout UB/OC1 cells were able to survive, proliferate, and form colonies. In addition, the knockout of LMO4 did not alter the expression of myosin VIIa, a biomarker of hair cells, suggesting that the knockout cells retain important characteristic features of cochlear sensory receptor cells. Thus, the findings of this study indicate that CRISPR/Cas9 system is a simple and versatile method for knocking out genes of interest in organ of Corti cells and that LMO4 knockout UB/OC1 cells are viable experimental models for studying the functional role of LMO4 in ototoxicity.
Insights
Lim-domain only 4 (LMO4) is crucial for cisplatin ototoxicity. LMO4 knockout cells, created using CRISPR/Cas9, are viable models for studying LMO4
Area of Science:
- Ototoxicity research
- Molecular biology
- Gene editing
Background:
- Cisplatin is a vital anti-cancer drug with ototoxic side-effects.
- The precise mechanism of cochlear Lim-domain only 4 (LMO4) in otopathology remains unclear.
- Gene knockout cell models are essential for functional gene studies.
Purpose of the Study:
- To generate LMO4 knockout organ of Corti cells using CRISPR/Cas9.
- To assess the viability and characteristics of these knockout cells.
- To establish a model for studying LMO4's role in ototoxicity.
Main Methods:
- CRISPR/Cas9 gene editing was employed to create LMO4 knockout UB/OC1 cells.
- Immunoblotting confirmed the successful absence of LMO4 protein.
- Cell viability, proliferation, migration, and myosin VIIa expression were analyzed.
Main Results:
- LMO4 knockout cells exhibited reduced growth and migration but maintained long-term viability.
- Myosin VIIa expression, a hair cell biomarker, remained unaltered.
- The CRISPR/Cas9 system proved effective for gene knockout in these cells.
Conclusions:
- LMO4 knockout UB/OC1 cells are viable and retain key characteristics of cochlear sensory cells.
- This study validates CRISPR/Cas9 as a method for gene knockout in organ of Corti cells.
- LMO4 knockout cells provide a valuable model for investigating ototoxicity mechanisms.

