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Apoptosis in chronic rejection of human cardiac allografts
B Xu1, L I Sakkas, C A Slachta
1Department of Microbiology and Immunology, Fels Institute for Cancer Research and Molecular Biology, and Temple University School of Medicine, Philadelphia, PA 19140, USA.
Background:
We investigated the role of apoptosis (programed cell death) in the pathogenesis of chronic rejection.
Methods:
Epicardial coronary arteries from cardiac allografts with chronic rejection were examined for apoptosis by the TUNEL assay. Double labeling was carried out using anti-CD3, anti-CD68, and anti-von Willenbrand factor (vWF) monoclonal antibodies. Additional immunostaining was carried using anti-Fas, anti-Fas-L, and anti-Bcl-2 monoclonal antibodies. Apoptosis-associated oligonucleosomal DNA degradation was assessed by DNA agarose gel electrophoresis. The transcription level of apoptosis-related caspase genes were determined using microarrays.
Results:
Apoptotic cells (TUNEL+) were detected within the arterial wall and in perivascular areas. Double labeling demonstrated that apoptotic cells included T cells (CD3+), monocyte/macrophages (CD68+), and vascular endothelial cells (VWF+). Numbers and densities of TUNEL+ cells did not correlate with the degree of arterial stenosis. Apoptosis-associated oligonucleosomal DNA degradation was assessed by agarose gel electrophoresis of DNA, which showed DNA fragments of approximately 180 bp and multimers thereof (DNA laddering gel), which are characteristic for DNA fragmentation in apoptotic cells. Microarray analysis demonstrated that the apoptosis related caspases 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, were all transcribed (caspases 8, 9, and 10 were highly up-regulated). These results are consistent with the involvement of apoptosis in chronic rejection. Immunoreactivity for Fas/Fas-L was present at the sites of apoptotic cells. Immunoreactivity for Bcl-2 was present in areas with very few apoptotic cells.
Conclusions:
Apoptotic cells include T cells, monocyte/macrophages, and endothelial cells. Apoptosis, likely through the Fas/Fas-L system, is involved in the pathogenesis of chronic rejection in cardiac allografts.
Insights
Programmed cell death (apoptosis) plays a role in chronic rejection of cardiac transplants. Apoptotic cells, including immune and endothelial cells, are found in rejected arteries, suggesting the Fas/Fas-L pathway is involved.
Area of Science:
- Immunology
- Pathology
- Cardiovascular Research
Background:
- Chronic rejection is a major cause of cardiac allograft failure.
- The precise mechanisms underlying chronic rejection remain incompletely understood.
Purpose of the Study:
- To investigate the role of programmed cell death (apoptosis) in the pathogenesis of chronic rejection.
- To identify the cell types undergoing apoptosis in rejected cardiac allografts.
Main Methods:
- TUNEL assay and double-labeling with specific cell markers (CD3, CD68, vWF) to detect apoptotic cells.
- DNA agarose gel electrophoresis to assess DNA fragmentation characteristic of apoptosis.
- Microarray analysis to determine the transcription levels of apoptosis-related caspase genes.
- Immunostaining for Fas, Fas-L, and Bcl-2 to investigate their involvement.
Main Results:
- Apoptotic cells, including T cells, monocyte/macrophages, and vascular endothelial cells, were identified within the arterial walls and perivascular areas of rejected allografts.
- Apoptosis-associated DNA fragmentation (DNA laddering) and transcription of multiple caspases (notably caspases 8, 9, and 10) were observed.
- Fas/Fas-L expression was detected at sites of apoptosis, while Bcl-2 expression was inversely correlated with apoptotic cell presence.
Conclusions:
- Apoptosis is a significant feature in the pathogenesis of chronic cardiac allograft rejection.
- The Fas/Fas-L signaling pathway is likely a key mediator of apoptosis in this context.
- Targeting apoptotic pathways may offer therapeutic strategies for preventing chronic rejection.
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