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Lentiviral Vector Preparation for Efficient Gene and MicroRNA Modulation of Peritoneal Cavity Tissue-Resident Macrophages In Vivo in Mice
Published on: February 16, 2024
Lentiviral transduction of microglial cells
Stephanie Balcaitis1, Jonathan R Weinstein, Sheng Li
1Department of Neurology, University of Washington, Seattle, Washington 98195, USA.
Abstract:
Microglial cells are the resident immune cells of the central nervous system. Their function resembles that of tissue macrophages and, as such, they share many properties with both peripheral macrophages and monocytes. One striking similarity is the difficulty with which these cells can be genetically manipulated via transfection or transduction. We have sought to overcome this challenge and generate stably transduced microglial cell lines. Based on encouraging results from macrophages, we hypothesized that lentiviral vectors might provide a valuable tool in the transduction of microglial cells. Using a lentiviral-based vector system expressing enhanced green fluorescent protein (eGFP) under the control of the murine stem cell virus promoter (MSCV), we found that multiplicities of infection (MOIs) of 1, 10, and 100 transduce >70%, >88%, and >95% of the cells, respectively. From the pool of transduced cells, we established lines of N9 and BV-2 microglial cells with distinct fluorescence intensities. Using real time-polymerase chain reaction (PCR), we correlated the integrated eGFP copy numbers to eGFP fluorescence measured by flow cytometry. When mixed, up to three lines with different eGFP intensities could be separated by flow cytometry and fluorescence microscopy. Neither infection nor transgene expression influenced microglial activation as assessed by nitric oxide (NO) production, cytokine release, and surface antigen expression. Our findings that microglial cells are easily transduced by lentiviral based vectors will facilitate research depending on genetic manipulation and help generate transgenic cell lines. In addition, the availability of microglial cell lines with defined fluorescence properties could replace elaborate staining procedures for microglial identification in co-culture experiments.
Insights
Lentiviral vectors efficiently transduce microglial cells, enabling the creation of genetically modified cell lines. These stable cell lines with distinct fluorescence are valuable tools for central nervous system research.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells are central nervous system immune cells, similar to macrophages.
- Genetic manipulation of microglial cells is challenging.
- Developing methods for stable microglial cell transduction is crucial for research.
Purpose of the Study:
- To establish stably transduced microglial cell lines using lentiviral vectors.
- To assess the efficiency of lentiviral transduction in microglial cells.
- To characterize the resulting cell lines for research applications.
Main Methods:
- Utilized a lentiviral vector system with enhanced green fluorescent protein (eGFP).
- Transduced N9 and BV-2 microglial cell lines at various multiplicities of infection (MOIs).
- Analyzed transduction efficiency via flow cytometry and real-time PCR; assessed microglial activation markers.
Main Results:
- Lentiviral vectors achieved high transduction rates (>95% at MOI 100).
- Established stable microglial cell lines (N9, BV-2) with distinct eGFP fluorescence levels.
- Transduction did not alter microglial activation, nitric oxide production, or cytokine release.
Conclusions:
- Lentiviral transduction is an effective method for genetically modifying microglial cells.
- Generated fluorescently labeled microglial cell lines facilitate identification in co-cultures.
- These tools will advance research requiring genetic manipulation of microglia.