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Updated: Aug 10, 2026

An Efficient and High Yield Method for Isolation of Mouse Dendritic Cell Subsets
Published on: April 18, 2016
Follicular dendritic cells and B cell costimulation
G F Burton1, D H Conrad, A K Szakal
1Department of Microbiology and Immunology, Medical College of Virginia, Richmond 23298-0678.
Insights
Follicular dendritic cells (FDC) provide crucial costimulatory signals that significantly enhance B cell proliferation and survival in germinal centers. These interactions are vital for an effective immune response.
Area of Science:
- Immunology
- Cell Biology
- Lymphocyte Function
Background:
- Follicular dendritic cells (FDC) are located in lymphoid tissues, closely associated with proliferating B lymphocytes.
- It is hypothesized that FDC provide costimulatory signals essential for antigen-driven B cell proliferation.
Purpose of the Study:
- To investigate the role of FDC in costimulating B cell proliferation.
- To determine if FDC enhance B cell responses to activation signals.
Main Methods:
- Culturing FDC with B cells activated by slg-dependent or -independent pathways.
- Measuring B cell proliferation using [3H]thymidine incorporation.
- Depleting FDC and using highly purified FDC to assess their accessory activity.
Main Results:
- FDC addition significantly augmented B cell proliferation in a dose-dependent manner.
- FDC depletion abrogated the increased proliferation, confirming their essential role.
- Purified FDC provided costimulation, while other sorted cells did not.
- FDC enhanced B cell viability and proliferation over the entire culture period.
Conclusions:
- FDC provide essential costimulatory signals that facilitate B cell proliferation and survival.
- These interactions contribute to the favorable microenvironment of the germinal center for B cells.
- FDC activity is independent of T cell help in this model.
Abstract:
Ag-bearing follicular dendritic cells (FDC) are found throughout secondary lymphoid tissues in close association with rapidly proliferating germinal center B lymphocytes. We reasoned that FDC might provide costimulatory signals that would enhance the ability of Ag to stimulate B cell proliferation in the germinal centers. To test this, FDC were cultured with B cells activated by a slg-dependent (goat anti-mouse mu conjugated to dextran (anti-mu-dex)) or -independent (LPS) pathway and their proliferation was measured by using [3H]thymidine incorporation. The addition of FDC markedly augmented B cell proliferation in a dose-dependent fashion. Depletion of FDC from cultures abrogated the increased proliferation. Addition of highly purified FDC obtained from cell sorting resulted in B cell costimulation, whereas addition of other sorted cells was without effect. The FDC accessory activity was apparent over the entire culture period and over a wide range of either polyclonal B cell activator. When B cells and activators were cultured in the absence of FDC, only about one fourth of the cells remained viable after 3 days. In contrast, virtually all cells in cultures containing FDC, B cells, and activator were viable. Cultures containing FDC and B cells from nude mice proliferated normally in the presence of anti-mu-dex plus rIL-4, implying that IL-4 provides adequate T cell help in this system. The costimulatory activity of the FDC could not replace either the anti-mu-dex or IL-4 in this system and was not MHC restricted. These data support the concept that FDC not only provide Ag but also facilitate B cell proliferation by means of other costimulatory interactions that contribute to make the microenvironment in the germinal center favorable for B cells to proliferate.
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