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Cellular sources of interleukin 16 in benign and malignant pleural effusions
Jian-Jun Li1, Wei Wei, Huan-Zhong Shi
1First Affiliated Hospital, Guangxi Medical University, Nanning, Guangxi 530021, China.
Insights
Interleukin 16 (IL-16) in pleural effusion is primarily secreted by T lymphocytes. Other immune cells like B cells and monocytes also contribute, while pleural mesothelial cells show minimal IL-16 secretion.
Area of Science:
- Immunology
- Cell Biology
- Respiratory Medicine
Background:
- Interleukin 16 (IL-16) is detectable in pleural effusion (PE) at higher concentrations than in serum.
- The cellular origins of IL-16 within the pleural space remain incompletely understood.
Purpose of the Study:
- To investigate the cellular sources of Interleukin 16 (IL-16) in pleural effusion (PE).
- To quantify the contribution of different cell types to IL-16 production in PE.
Main Methods:
- Collected PE samples from 34 patients.
- Utilized cell culture, Wright staining, immunocytochemistry, flow cytometry (FCM), and magnetic cell sorting (MCAS).
- Quantified IL-16 concentration in cell culture supernatants using ELISA and detected protein expression via immunohistochemistry and double immunofluorescence staining.
Main Results:
- T lymphocytes (CD3(+)CD8(-) and CD3(+)CD8(+) cells) showed the highest percentages of IL-16 secretion (74.27% and 69.86%, respectively).
- B cells (CD19(+)) and monocytes/macrophages (CD14(+)) also secreted IL-16, albeit at lower percentages (45.30% and 16.91%, respectively).
- Pleural mesothelial cells (PMC) exhibited very low IL-16 secretion (2.05%).
Conclusions:
- T lymphocytes are the primary source of IL-16 in pleural effusion.
- B cells and monocytes/macrophages contribute to IL-16 levels in PE.
- Pleural mesothelial cells play a minimal role in IL-16 production within the pleural space.
Background:
Interleukin 16 (IL-16) can be detected by ELISA in pleural effusion (PE) and its concentration is higher than in serum. This study investigated the cellular sources of IL-16 in PE.
Methods:
The samples of PE were collected from 34 patients who were newly diagnosed having PE in the pleural cavity. We performed cell culture to purify the pleural mesothelial cells (PMC), Wright staining to count the purity and immunocytochemical stain to identify the cultured cells. The intracellular IL-16 expression was detected by flow cytometry (FCM). The different cells in PE were first separated by magnetic cell sorting (MCAS) then the separated cells were cultured in RPMI1640 with 10% fetal calf serum (FCS). We extracted the supernatant and detected IL-16 concentration by ELISA. The IL-16 protein was detected by immunohistochemistry and double immunofluorescence staining.
Results:
The percentages of cells which secreted IL-16 were: CD3(+)CD8(-) cells ((74.27 ± 15.56)%, n = 34); CD3(+)CD8(+) cells ((69.86 ± 18.55)%, n = 34); CD19(+) cells ((45.30 ± 18.77)%, n = 15); CD14(+) cells ((16.91 ± 16.69)%, n = 15); and PMC ((2.05 ± 1.85)%, n = 7). The concentrations of IL-16 in the supernatant from cultured cells were: CD4(+) cells ((102.50 ± 42.51) ng/L, n = 5); CD8(+) cells ((92.58 ± 18.34) ng/L, n = 5); CD19(+) cells ((79.85 ± 5.62) ng/L, n = 5); CD14(+) cells ((58.51 ± 25.38) ng/L, n = 5); and PMC ((18.14 ± 8.37) ng/L, n = 5). In lymphocytes, monocytes/macrophages and PMC, we could observe the cells that expressed IL-16 protein. In paraffin-embedded sections, we also could observe by immunohistochemistry the CD4(+)IL-16(+) cells, CD8(+)IL-16(+) cells, CD19(+)IL-16(+) cells, and CD14(+)IL-16(+) cells.
Conclusions:
IL-16 in PE is mainly secreted by T lymphocytes, including CD3(+)CD8(-) cells and CD3(+)CD8(+) cells. CD19(+) cells and CD14(+) cells can also secrete IL-16, but the percentage of PMC that can secrete IL-16 is very low.
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