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Updated: Aug 8, 2026

Lymphocyte Isolation from Human Skin for Phenotypic Analysis and Ex Vivo Cell Culture
Published on: April 8, 2016
Characterization of dermal dendritic cells obtained from normal human skin reveals phenotypic and functionally
F O Nestle1, X G Zheng, C B Thompson
1Department of Pathology, University of Michigan, Ann Arbor 48109.
Insights
Researchers developed a new method to isolate pure dermal dendritic cells (DDC), revealing three distinct subsets with unique immune functions in the skin. These findings advance our understanding of skin immunity and antigen presentation.
Area of Science:
- Immunology
- Dermatology
- Cell Biology
Background:
- Studying skin's immune response is crucial for understanding skin health and disease.
- Isolating immunocompetent cells from the dermis, like dermal dendritic cells (DDC), has been challenging.
- DDC play a vital role in skin immunity, but their distinct subtypes and functions are not fully understood.
Purpose of the Study:
- To establish a reliable method for purifying dermal dendritic cells (DDC).
- To characterize the phenotype and function of different DDC subsets.
- To investigate the role of DDC subsets in T cell activation and immune responses.
Main Methods:
- Developed a purification schema for isolating highly pure DDC populations.
- Performed extensive phenotypic analysis using 45 antibodies and triple-color cell staining.
- Assessed DDC subsets' ability to stimulate allogeneic mixed lymphocyte reactions and autologous T cell proliferation.
Main Results:
- Successfully isolated pure DDC populations expressing class II MHC antigens and factor XIIIa.
- Identified three distinct DDC subsets based on CD1a and CD14 expression: subset 1 (65-70%), subset 2 (15-20%), and subset 3 (10-15%).
- Demonstrated that CD14-negative DDC subsets are potent stimulators of T cell responses, with subsets 1 and 2 being more effective antigen-presenting cells than subset 3.
Conclusions:
- Normal skin harbors at least three distinct populations of dermal dendritic cells (DDC).
- These DDC subsets possess unique phenotypic markers and varying immunologic capabilities.
- The findings provide a foundation for further research into DDC subsets' roles in skin immunity and disease.
Abstract:
The relative contribution of dermal-derived immunocompetent cells to the overall immunologic response in skin has been hampered by the lack of appropriate isolation techniques. In this report, we provide a purification schema that reliably yields highly purified populations of dermal dendritic cells (DDC). These cells are motile, express high levels of class II MHC antigens that decorate their cytoplasmic dendritic processes, and lack numerous B cell, T cell, and natural killer cell antigens. Using a broad panel of 45 different antibodies, an extensive phenotypic analysis was completed, revealing distinctive profiles for subsets of DDC. Despite homogeneous light scatter profile and cytologic appearance, three subsets of DDC could be distinguished by phenotypic and functional criteria. All DDC, but not epidermal Langerhans cells, express factor XIIIa. By triple color cell staining the relative distribution of factor XIIIa positive DDC is as follows: subset 1, 65% to 70% of total DDC express neither CD1a nor CD14; subset 2, 15% to 20% of total DDC express CD1a but not CD14; and subset 3, 10% to 15% of total DDC express CD14 but not CD1a. The CD14-negative subset of DDC were shown to be as potent stimulators of allogeneic mixed lymphocyte reactions as Langerhans cells or blood-derived dendritic cells. However, DDC subsets differed in their ability to support autologous T cell proliferation in response to the mitogenic lectin PHA or bacterial-derived superantigen. In these assays, subsets 1 and 2 were significantly more potent as antigen-presenting cells compared with subset 3. Thus, normal skin contains at least three separate populations of DDC, which have distinctive phenotypic markers and immunologic capabilities.
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