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Updated: Jun 22, 2025

Stereotaxic Injection of a Viral Vector for Conditional Gene Manipulation in the Mouse Spinal Cord
Published on: March 18, 2013
Transgenic Targeting of Fcrls Creates a Highly Efficient Constitutively Active Microglia Cre Line with Differentiated
Tobias Kaiser1,2, Jordan Dattero3,4, Liang Li3,2
1McGovern Institute for Brain Research at MIT, Cambridge, Massachusetts 02139 tkaiser@mit.edu fengg@mit.edu.
Abstract:
Microglia carry out important functions as the resident macrophages of the brain. To study their role in health and disease, the research community needs tools to genetically modify them with maximum completeness in a manner that distinguishes them from closely related cell types, such as monocytes. While currently available tamoxifen-inducible CreERT2 lines can achieve the differentiation from other cells, the field needs improved and publicly available constitutively active Cre lines, especially ones with favorable efficiency and specificity profiles for studies where high recombination efficiency is imperative and where tamoxifen administration is contraindicated. Here, we leverage the microglia-specific Fcrls gene to generate mice expressing Cre. Using genomic methods, we show correct positioning of the transgene and intact microglia homeostasis in Fcrls-2A-Cre mice. Crossing Fcrls-2A-Cre mice to four different reporters, we demonstrate highly efficient recombination in microglia across differentially sensitive loxP alleles in different genomic contexts, indicating robust applicability of the line. Further, we show that microglia recombine a loxP reporter during early embryonic development, supporting the use of the line for developmental studies. Finally, using immunofluorescence and flow cytometry, we reveal that most border-associated macrophages are also targeted whereas only few liver and spleen macrophages and virtually no white blood cell subsets exhibit Cre activity, distinguishing this line from another publicly available Cre line, Cx3cr1-Cre Fcrls-2A-Cre mice are immediately available (JAX #036591) and serve as a valuable addition to the community's microglia toolbox by providing highly efficient constitutive Cre activity with excellent specificity, particularly for studies where tamoxifen administration is undesirable.
Insights
Researchers developed a new tool, Fcrls-2A-Cre mice, for precise genetic modification of microglia, the brain's immune cells. This offers highly efficient and specific manipulation for studying brain health and disease.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Microglia are crucial brain macrophages involved in health and disease.
- Existing tools for microglia genetic modification have limitations, necessitating improved methods.
- There is a need for constitutive Cre lines with high efficiency and specificity, especially when tamoxifen is contraindicated.
Purpose of the Study:
- To generate and validate a novel microglia-specific Cre mouse line for genetic manipulation.
- To assess the efficiency, specificity, and applicability of the new Cre line in various contexts.
- To provide a valuable tool for studying microglia function in neurological research.
Main Methods:
- Leveraged the microglia-specific Fcrls gene to create Fcrls-2A-Cre mice.
- Utilized genomic methods to confirm transgene integration and assess microglia homeostasis.
- Crossed Fcrls-2A-Cre mice with reporter lines to evaluate recombination efficiency and specificity.
- Employed immunofluorescence and flow cytometry to analyze Cre activity in different cell populations.
Main Results:
- Fcrls-2A-Cre mice exhibit correct transgene positioning and maintain microglia homeostasis.
- Demonstrated highly efficient Cre-mediated recombination in microglia across various reporter alleles.
- Showed recombination during early embryonic development, enabling developmental studies.
- Confirmed specific targeting of microglia and border-associated macrophages, with minimal activity in other myeloid cells.
Conclusions:
- Fcrls-2A-Cre mice provide a powerful tool for constitutive and specific genetic manipulation of microglia.
- This new line offers high recombination efficiency, making it suitable for studies requiring precise genetic modification.
- The availability of Fcrls-2A-Cre mice addresses a critical need in the neuroscience community for advanced microglia research tools.

