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Calmodulin, poly(ADP-ribose)polymerase and p53 are targets for modulating the effects of sulfur mustard
D S Rosenthal1, C M Simbulan-Rosenthal, S Iyer
1Department of Biochemistry and Molecular Biology, Georgetown University School of Medicine, Washington, DC 20007, USA.
Abstract:
We describe two pathways by which the vesicating agent sulfur mustard (HD) may cause basal cell death and detachment: induction of terminal differentiation and apoptosis. Following treatment of normal human epidermal keratinocytes (NHEK) with 10 or 100 microM HD, the differentiation-specific keratin pair K1/K10 was induced and the cornified envelope precursor protein, involucrin, was cross-linked by epidermal transglutaminase. Fibronectin levels were reduced in a time- and dose-dependent manner. The rapid increase in p53 and decrease in Bcl-2 levels was consistent not only with epidermal differentiation but with apoptosis as well. Further examination of biochemical markers of apoptosis following treatment of either NHEK or human papillomavirus (HPV)-immortalized keratinocytes revealed a burst of poly(ADP-ribose) synthesis, specific cleavage of poly(ADP-ribose)polymerase (PARP) in vivo and in vitro into characteristic 89 and 24 kDa fragments, processing of caspase-3 into its active form and the formation of DNA ladders. The intracellular calcium chelator BAPTA suppressed the differentiation markers, whereas antisense oligonucleotides and chemical inhibitors specific for calmodulin blocked both markers of differentiation and apoptosis. Modulation of p53 levels utilizing retroviral constructs expressing the E6, E7 or E6 + E7 genes of HPV-16 revealed that HD-induced apoptosis was partially p53-dependent. Finally, immortalized fibroblasts derived from PARP -/- 'knockout mice' were exquisitely sensitive to HD-induced apoptosis. These cells became HD resistant when wild-type PARP was stably expressed in these cells. These results indicate that HD exerts its effects via calmodulin, 3 and PARP-sensitive pathways.
Insights
Sulfur mustard (HD) induces skin cell death through terminal differentiation and apoptosis. These pathways involve calmodulin and poly(ADP-ribose) polymerase (PARP), highlighting key mechanisms of HD toxicity.
Area of Science:
- Toxicology
- Dermatology
- Molecular Biology
Background:
- Sulfur mustard (HD) is a potent vesicating agent causing significant tissue damage.
- Understanding the molecular mechanisms of HD-induced cell death is crucial for developing effective countermeasures.
Purpose of the Study:
- To elucidate the pathways by which sulfur mustard (HD) induces basal cell death and detachment in human epidermal keratinocytes.
- To investigate the roles of differentiation, apoptosis, calmodulin, p53, and poly(ADP-ribose) polymerase (PARP) in HD toxicity.
Main Methods:
- Treatment of normal human epidermal keratinocytes (NHEK) and HPV-immortalized keratinocytes with HD.
- Analysis of differentiation markers (K1/K10, involucrin), apoptosis markers (p53, Bcl-2, PARP cleavage, caspase-3, DNA laddering).
- Investigation using calcium chelators, antisense oligonucleotides, chemical inhibitors, HPV-16 E6/E7 gene modulation, and PARP knockout fibroblasts.
Main Results:
- HD induced keratinocyte terminal differentiation and apoptosis.
- HD treatment led to increased p53, decreased Bcl-2, PARP cleavage, caspase-3 activation, and DNA fragmentation.
- Calmodulin and PARP were identified as critical mediators of HD-induced differentiation and apoptosis.
- HD-induced apoptosis was partially dependent on p53, and PARP deficiency rendered cells highly sensitive to HD.
Conclusions:
- Sulfur mustard (HD) triggers basal cell death via both terminal differentiation and apoptosis.
- Calmodulin and PARP-dependent signaling pathways are central to HD's cytotoxic effects.
- Targeting these pathways may offer strategies to mitigate sulfur mustard-induced skin injury.
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