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Mechanisms for Ribotoxin-induced Ribosomal RNA Cleavage

Overview
Specialties Pharmacology
Toxicology
Date 2012 Oct 2
PMID 23022514
Citations 18
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Abstract

The Type B trichothecene deoxynivalenol (DON), a ribotoxic mycotoxin known to contaminate cereal-based foods, induces ribosomal RNA (rRNA) cleavage in the macrophage via p38-directed activation of caspases. Here we employed the RAW 264.7 murine macrophage model to test the hypothesis that this rRNA cleavage pathway is similarly induced by other ribotoxins. Capillary electrophoresis confirmed that the antibiotic anisomycin (≥25ng/ml), the macrocylic trichothecene satratoxin G (SG) (≥10ng/ml) and ribosome-inactivating protein ricin (≥300ng/ml) induced 18s and 28s rRNA fragmentation patterns identical to that observed for DON. Also, as found for DON, inhibition of p38, double-stranded RNA-activated kinase (PKR) and hematopoietic cell kinase (Hck) suppressed MAPK anisomycin-induced rRNA cleavage, while, in contrast, their inhibition did not affect SG- and ricin-induced rRNA fragmentation. The p53 inhibitor pifithrin-μ and pan caspase inhibitor Z-VAD-FMK suppressed rRNA cleavage induced by anisomycin, SG and ricin, indicating that these ribotoxins shared with DON a conserved downstream pathway. Activation of caspases 8, 9 and 3 concurrently with apoptosis further suggested that rRNA cleavage occurred in parallel with both extrinsic and intrinsic pathways of programmed cell death. When specific inhibitors of cathepsins L and B (lysosomal cysteine cathepsins active at cytosolic neutral pH) were tested, only the former impaired anisomycin-, SG-, ricin- and DON-induced rRNA cleavage. Taken together, the data suggest that (1) all four ribotoxins induced p53-dependent rRNA cleavage via activation of cathepsin L and caspase 3, and (2) activation of p53 by DON and anisomycin involved p38 whereas SG and ricin activated p53 by an alternative mechanism.

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References
1.
Iordanov M, Pribnow D, Magun J, Dinh T, Pearson J, Chen S . Ribotoxic stress response: activation of the stress-activated protein kinase JNK1 by inhibitors of the peptidyl transferase reaction and by sequence-specific RNA damage to the alpha-sarcin/ricin loop in the 28S rRNA. Mol Cell Biol. 1997; 17(6):3373-81. PMC: 232190. DOI: 10.1128/MCB.17.6.3373. View

2.
Zhou H, Jia Q, Pestka J . Ribotoxic stress response to the trichothecene deoxynivalenol in the macrophage involves the SRC family kinase Hck. Toxicol Sci. 2005; 85(2):916-26. DOI: 10.1093/toxsci/kfi146. View

3.
Ehrhardt H, Hacker S, Wittmann S, Maurer M, Borkhardt A, Toloczko A . Cytotoxic drug-induced, p53-mediated upregulation of caspase-8 in tumor cells. Oncogene. 2007; 27(6):783-93. DOI: 10.1038/sj.onc.1210666. View

4.
Pestka J, Yike I, Dearborn D, Ward M, Harkema J . Stachybotrys chartarum, trichothecene mycotoxins, and damp building-related illness: new insights into a public health enigma. Toxicol Sci. 2007; 104(1):4-26. DOI: 10.1093/toxsci/kfm284. View

5.
Johansson A, Appelqvist H, Nilsson C, Kagedal K, Roberg K, Ollinger K . Regulation of apoptosis-associated lysosomal membrane permeabilization. Apoptosis. 2010; 15(5):527-40. PMC: 2850995. DOI: 10.1007/s10495-009-0452-5. View