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Updated: Nov 11, 2025

Pooled CRISPR-Based Genetic Screens in Mammalian Cells
Published on: September 4, 2019
Application of CRISPR screens to investigate mammalian cell competition
Abstract:
Cell competition is defined as the context-dependent elimination of cells that is mediated by intercellular communication, such as paracrine or contact-dependent cell signaling, and/or mechanical stresses. It is considered to be a quality control mechanism that facilitates the removal of suboptimal cells from both adult and embryonic tissues. Cell competition, however, can also be hijacked by transformed cells to acquire a 'super-competitor' status and outcompete the normal epithelium to establish a precancerous field. To date, many genetic drivers of cell competition have been identified predominately through studies in Drosophila. Especially during the last couple of years, ethylmethanesulfonate-based genetic screens have been instrumental to our understanding of the molecular regulators behind some of the most common competition mechanisms in Drosophila, namely competition due to impaired ribosomal function (or anabolism) and mechanical sensitivity. Despite recent findings in Drosophila and in mammalian models of cell competition, the drivers of mammalian cell competition remain largely elusive. Since the discovery of CRISPR/Cas9, its use in functional genomics has been indispensable to uncover novel cancer vulnerabilities. We envision that CRISPR/Cas9 screens will enable systematic, genome-scale probing of mammalian cell competition to discover novel mutations that not only trigger cell competition but also identify novel molecular components that are essential for the recognition and elimination of less fit cells. In this review, we summarize recent contributions that further our understanding of the molecular mechanisms of cell competition by genetic screening in Drosophila, and provide our perspective on how similar and novel screening strategies made possible by whole-genome CRISPR/Cas9 screening can advance our understanding of mammalian cell competition in the future.
Insights
Cell competition eliminates suboptimal cells but can be hijacked by cancer. CRISPR/Cas9 screens promise to uncover drivers of mammalian cell competition, advancing cancer research.
Area of Science:
- Developmental Biology
- Cell Biology
- Genetics
Background:
- Cell competition is a quality control mechanism removing suboptimal cells via intercellular signaling or mechanical stress.
- Transformed cells can exploit cell competition to gain a growth advantage, potentially leading to cancer.
- While studied in Drosophila, genetic drivers of mammalian cell competition remain largely unknown.
Purpose of the Study:
- To review current understanding of cell competition mechanisms, particularly those identified through genetic screening in Drosophila.
- To explore the potential of CRISPR/Cas9 screening for discovering mammalian cell competition drivers and essential molecular components.
- To provide a perspective on advancing mammalian cell competition research using advanced screening strategies.
Main Methods:
- Review of existing literature on genetic screens (e.g., ethylmethanesulfonate) in Drosophila for cell competition.
- Discussion of CRISPR/Cas9 technology and its application in functional genomics and cancer vulnerability discovery.
- Synthesis of findings from Drosophila studies to inform potential mammalian research.
Main Results:
- Ethylmethanesulfonate screens in Drosophila have identified key regulators of cell competition linked to ribosomal function and mechanical sensitivity.
- CRISPR/Cas9 technology offers a powerful tool for genome-scale functional genomics in mammalian systems.
- The review highlights the gap in knowledge regarding mammalian cell competition drivers.
Conclusions:
- Genetic screening, especially with CRISPR/Cas9, is crucial for elucidating mammalian cell competition.
- Understanding cell competition can reveal novel cancer vulnerabilities and therapeutic targets.
- Future research should leverage CRISPR/Cas9 to systematically probe mammalian cell competition.

