We have established a technique for the isolation, phenotypic characterization and functional analysis of immune cells from murine gingiva.
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Method Article
* These authors contributed equally
We have established a technique for the isolation, phenotypic characterization and functional analysis of immune cells from murine gingiva.
Immune cell networks in tissues play a vital role in mediating local immunity and maintaining tissue homeostasis, yet little is known of the resident immune cell populations in the oral mucosa and gingiva. We have established a technique for the isolation and study of immune cells from murine gingival tissues, an area of constant microbial exposure and a vulnerable site to a common inflammatory disease, periodontitis. Our protocol allows for a detailed phenotypic characterization of the immune cell populations resident in the gingiva, even at steady state. Our procedure also yields sufficient cells with high viability for use in functional studies, such as the assessment of cytokine secretion ex vivo. This combination of phenotypic and functional characterization of the gingival immune cell network should aid towards investigating the mechanisms involved in oral immunity and periodontal homeostasis, but will also advance our understanding of the mechanisms involved in local immunopathology.
Gingival tissues surround the human and murine dentition and are constantly exposed to the complex biofilm of the tooth 1. The immune cell network policing the gingival barrier is vital to maintaining tissue integrity, ensuring homeostasis with the local commensal microbes and, at the same time, providing effective immunity against pathogenic challenge 2. To achieve homeostasis, the immune system is carefully tailored to the gingival environment creating a highly-specialized immune cell network, yet little detail is known of the gingival immune cell populations and their role in maintaining tissue immunity 2.
When immune homeostasis is disrupted at the gingiva, either through increased host susceptibility and/or presence of dysbiotic microbial communities, an inflammatory condition, periodontitis arises 34. Periodontitis is a common inflammatory disease, leading to loss of tooth supporting structures. In its severe forms it is seen in approximately 10% of the general population 5. Dissecting the key factors involved in periodontitis susceptibility and progression has proven difficult 6. However, animal models have been extremely useful in understanding the mechanisms of periodontitis initiation and progression 7. Models can be employed to define the key cell populations and molecular mediators that are vital for maintaining immune homeostasis and drive development of periodontitis. Such insight will transform our understanding of gingiva-specific control of immune homeostasis and further our current understanding of disease pathogenesis.
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All experimental procedures described in this protocol followed required guidelines and were approved by the Institutional Animal Care and Use Committee, NIDCR/NIH.
1. Prepare in Advance
2. Isolation, Dissection, and Cell Isolation from Gingival Blocks
3. Stimulation and FACS Staining of Gingival Cells
4. Flow Cytometry Analysis
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To illustrate application of the protocol, we show representative results examining the immune cell network in the gingiva of mice with and without periodontitis (WT vs. LFA-/-, Figure 2A-C). Representative FACS plots show live CD45+ hematopoietic cells in the gingiva (Figure 2A, 2C). Isolation and processing of immune cells with this protocol yields sufficient cells to perform ex vivo stimu...
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The current technique successfully yields a large number of immune cells (from a single mouse) suitable, not only for phenotypic characterization, but also for functional studies ex vivo. Another group had previously published a protocol to isolate and characterize murine gingival immune cells and introduced the value of using multicolor flow cytometry in the study of periodontitis in animal models 9. Following considerable troubleshooting the key modification in this protocol was to include dissectio...
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Authors have nothing to disclose
Authors were funded in part by the intramural program of NIDCR (N.M.M) and supported by a Wellcome Trust Stepping Stones Fellowship (097820/Z/11/B to J.E.K) and by a Manchester Collaborative Centre for Inflammation Research grant (to J.E.K). The authors thank Teresa Wild for critically reviewing the manuscript.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| Fine Scissors | Fine science tools | 14058-11 | |
| Scalpel Handle #3 | Fine science tools | 10003-12 | |
| Scalpel Blades #10 | Fine science tools | 10010-00 | Sterile |
| Splinter Forceps | Integra Miltex | 6-304 | |
| Needles with regular bevel | BD Medical | 305109 | 27 G, 12.7 mm length |
| Monoject syringes | Covidien | 8881513934 | Luer-lock tip, 3 ml |
| PBS, pH 7.4 | Life Technologies | 10010-049 | Without Calcium and Magnesium |
| RPMI 1640 | Lonza | 12-167F | Without L-glutamine |
| DNase I from bovine pancreas | Sigma-Aldrich | DN25-1G | |
| Collagenase type IV | Gibco (by Life technologies) | 17104-019 | |
| Fetal Bovine Serum | Gemini Bio-products | 100-106 | |
| Gentamicin 50 mg/ml | Quality biological | 120-098-661EA | |
| Pen Strep | Gibco (by Life technologies) | 15140-122 | |
| L-Glutamine | Gibco (by Life technologies) | 25030-081 | |
| 0.5 M EDTA pH 8.0 | Quality biological | 351-027-721EA | |
| 50 ml tubes | Corning | 352070 | Polypropylene, sterile |
| 70 μM Cell Strainers | Corning | 352350 | |
| Petri dishes | Corning | 351029 | Sterile |
| 5 ml FACS tubes | Corning | 352052 | Sterile |
| BD GolgiPlug | BD Biosciences | 555029 | Contains brefeldin A solution |
| Phorbol 12-Myristate 13-Acetate (PMA) | Sigma-Aldrich | P8139 | |
| Ionomycin Calcium Salt | Sigma-Aldrich | 13909 | |
| Saponin from quillaja bark | Sigma-Aldrich | S4521 | |
| LIVE/DEAD Fixable Aqua Dead Cell Stain Kit | Life Technologies | L34957 | |
| Anti-Mouse CD45 Alexa Fluor 700 | eBioscience | 56-0451-82 | |
| Anti-Mouse CD4 eFluor 450 | eBioscience | 48-0042-82 | |
| Anti-Mouse TCR beta APC eFluor 780 | eBioscience | 47-5961-82 | |
| Anti-Mouse gamma delta TCR FITC | eBioscience | 11-5711-82 | |
| Anti-Mouse IL-17A APC | eBioscience | 12-7311-82 | |
| Anti-Mouse IFN-γ PE | eBioscience | 11-5931-82 | |
| Anti-Mouse NK1.1 PE-Cy7 | eBioscience | 25-5941-82 | |
| Anti-Mouse CD90.2 APC eFluor 780 | eBioscience | 47-0902-82 | |
| Anti-Mouse CD3e FITC | eBioscience | 11-0031-82 | |
| Anti-Mouse CD19 FITC | eBioscience | 11-0193-82 | |
| Anti-Mouse CD11b FITC | eBioscience | 11-0112-82 | |
| Anti-Mouse CD11c FITC | eBioscience | 11-0114-82 | |
| Anti-Mouse TCR beta FITC | eBioscience | 11-5961-82 | |
| Anti-Mouse Ly-6G FITC | eBioscience | 11-5931-82 | |
| Anti-Mouse Ly-6C FITC | BD Pharmingen | 553104 |
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