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Updated: Jul 31, 2026

Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
CFTR modulates programmed cell death by decreasing intracellular pH in Chinese hamster lung fibroblasts
H Barrière1, C Poujeol, M Tauc
1Unité Mixte de Recherche-Centre National de la Recherche Scientifique 6548, Université de Nice-Sophia Antipolis, 06108 Nice Cedex 2, France.
Abstract:
To study the potential influence of cystic fibrosis conductance regulator (CFTR) on intracellular pH regulation during apoptosis induction, we used PS120 Chinese hamster lung fibroblasts devoid of the Na(+)/H(+) exchanger (NHE1 isoform) transfected with constructs, allowing the expression of CFTR and/or NHE1. Kinetics of lovastatin-induced apoptosis were measured by orcein staining, double staining with Hoechst-33258, propidium iodide, DNA fragmentation, and annexin V labeling. In PS120 control cells, the percentage of apoptotic cells after 40 h of lovastatin treatment was 23 +/- 3%, whereas in PS120 CFTR-transfected cells, this percentage was 40 +/- 4%. In PS120 NHE1 cells, the transfection with CFTR did not modify the percentage of apoptotic cells after 40 h (control: 19 +/- 3%, n = 8; CFTR: 17 +/- 1%, n = 8), indicating that blocking intracellular acidification by overexpressing the Na(+)/H(+) exchanger inhibited the enhancement of apoptosis induced by CFTR. In all cell lines, the initial pH values were identical (pH = 7.46 +/- 0.04, n = 9), and treatment with lovastatin led to intracellular acidification. However, the pH value after 40 h was lower in PS120 CFTR-transfected cells (pH = 6.85 +/- 0.02, n = 10) than in PS120 cells (pH = 7.15 +/- 0.03, n = 10). To further investigate the origin of this increased intracellular acidification observed in CFTR-transfected cells, the activity of the DIDS-inhibitable Cl(-)/HCO exchanger was studied. 8-Bromoadenosine 3',5'-cyclic monophosphate incubation resulted in Cl(-)/HCO exchanger activation in PS120 CFTR-transfected cells but had no effect on PS120 cells. Together, our results suggest that CFTR can enhance apoptosis in Chinese hamster lung fibroblasts, probably due to the modulation of the Cl(-)/HCO exchanger, resulting in a more efficient intracellular acidification.
Insights
Cystic fibrosis conductance regulator (CFTR) enhances apoptosis in lung fibroblasts by increasing intracellular acidification, likely through modulating the chloride/bicarbonate exchanger. Overexpressing the sodium/hydrogen exchanger inhibits this CFTR-induced apoptosis.
Area of Science:
- Cell Biology
- Molecular Biology
- Physiology
Background:
- Apoptosis, or programmed cell death, is a crucial biological process.
- Intracellular pH (pHi) plays a significant role in regulating cellular functions, including apoptosis.
- The cystic fibrosis conductance regulator (CFTR) is an ion channel primarily known for its role in ion transport.
Purpose of the Study:
- To investigate the influence of CFTR on intracellular pH regulation during apoptosis.
- To determine if CFTR expression affects the rate of apoptosis induction.
- To elucidate the mechanisms by which CFTR might modulate apoptosis and pHi.
Main Methods:
- Utilized PS120 Chinese hamster lung fibroblasts lacking the Na+/H+ exchanger (NHE1).
- Transfected cells with constructs for CFTR and/or NHE1 expression.
- Quantified lovastatin-induced apoptosis using orcein staining, DNA fragmentation, and annexin V labeling.
- Measured intracellular pH using pH-sensitive dyes and assessed Cl-/HCO3- exchanger activity.
Main Results:
- CFTR expression in PS120 cells significantly increased lovastatin-induced apoptosis (40% vs. 23%).
- Overexpression of NHE1 inhibited the CFTR-mediated enhancement of apoptosis, suggesting a role for pHi.
- CFTR-transfected cells exhibited greater intracellular acidification after lovastatin treatment (pH 6.85 vs. 7.15).
- CFTR expression activated a DIDS-inhibitable Cl-/HCO3- exchanger, which was further enhanced by 8-bromoadenosine 3',5'-cyclic monophosphate.
Conclusions:
- CFTR expression enhances apoptosis in lung fibroblasts.
- This enhancement is likely mediated by CFTR's ability to promote intracellular acidification.
- CFTR may modulate apoptosis through its influence on Cl-/HCO3- exchanger activity, impacting pHi regulation.
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