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Published on: November 9, 2020
Genetic manipulation and targeted protein degradation in mammalian systems: practical considerations, tips and tricks
Stefano L Giandomenico1, Erin M Schuman1
1Max Planck Institute for Brain Research, Frankfurt am Main, Germany.
Abstract:
Gaining a mechanistic understanding of the molecular pathways underpinning cellular and organismal physiology invariably relies on the perturbation of an experimental system to infer causality. This can be achieved either by genetic manipulation or by pharmacological treatment. Generally, the former approach is applicable to a wider range of targets, is more precise, and can address more nuanced functional aspects. Despite such apparent advantages, genetic manipulation (i.e., knock-down, knock-out, mutation, and tagging) in mammalian systems can be challenging due to problems with delivery, low rates of homologous recombination, and epigenetic silencing. The advent of CRISPR-Cas9 in combination with the development of robust differentiation protocols that can efficiently generate a variety of different cell types in vitro has accelerated our ability to probe gene function in a more physiological setting. Often, the main obstacle in this path of enquiry is to achieve the desired genetic modification. In this short review, we will focus on gene perturbation in mammalian cells and how editing and differentiation of pluripotent stem cells can complement more traditional approaches. Additionally, we introduce novel targeted protein degradation approaches as an alternative to DNA/RNA-based manipulation. Our aim is to present a broad overview of recent approaches and in vitro systems to study mammalian cell biology. Due to space limitations, we limit ourselves to providing the inexperienced reader with a conceptual framework on how to use these tools, and for more in-depth information, we will provide specific references throughout.
Insights
Investigating gene function in mammalian cells requires precise genetic manipulation. This review covers CRISPR-Cas9 gene editing and targeted protein degradation for studying cellular biology.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Understanding cellular and organismal physiology requires perturbing experimental systems to infer causality.
- Genetic manipulation offers precision and broader applicability over pharmacological treatments for studying gene function.
- Challenges in mammalian genetic manipulation include delivery issues, low homologous recombination rates, and epigenetic silencing.
Purpose of the Study:
- To review recent approaches for gene perturbation in mammalian cells.
- To discuss how editing and differentiation of pluripotent stem cells can aid in studying gene function.
- To introduce targeted protein degradation as an alternative to DNA/RNA-based manipulation.
Main Methods:
- CRISPR-Cas9 gene editing in combination with pluripotent stem cell differentiation protocols.
- Targeted protein degradation strategies.
- Review of in vitro systems for mammalian cell biology research.
Main Results:
- CRISPR-Cas9 and stem cell differentiation accelerate the ability to probe gene function in physiological settings.
- Novel targeted protein degradation approaches offer alternatives to traditional genetic manipulation.
- These methods provide a conceptual framework for studying mammalian cell biology.
Conclusions:
- Advancements in gene editing and stem cell differentiation offer powerful tools for dissecting molecular pathways.
- Targeted protein degradation presents a promising alternative for functional genomics.
- This review provides an overview of modern techniques for investigating mammalian cell biology.
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