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Formaldehyde (HCHO) is highly toxic to all living organisms. In this study, the toxic effects of HCHO exposure on Arabidopsis thaliana were analyzed at the physiological and transcriptional levels. Exposure to 2 mM HCHO led to a significant decrease in plant growth and a massive increase in anthocyanin content. A remarkable increase in H₂O₂ content and elevation in the levels of protein carbonyl and DNA–protein crosslinks were detected in Arabidopsis plants exposed to 2 mM HCHO for a period of 17 h. In contrast, the malondialdehyde content decreased during this period. These results suggested that HCHO stress caused significant oxidative damage to proteins but not membrane lipids during this period. The Affymetrix ATH1 Genome Array was used to evaluate changes in the global gene expression in Arabidopsis plants exposed to 2 mM HCHO over the 17-h period. A total of 620 transcripts were shown to be regulated significantly (at least twofold). The number of down-regulated genes (467) was approximately threefold greater than the number of up-regulated genes (154). Down-regulation in a large number of genes encoding cell surface receptors, cell wall proteins, enzymes related to toxin metabolism, peroxidase, disease resistance protein, multidrug and toxin extrusion and ATP-binding cassette transporters might be an important part of the toxic effects of HCHO exposure on Arabidopsis at the transcriptional level. Up-regulation in many genes encoding heat shock proteins was suggested to be an important protective mechanism for Arabidopsis plants in response to the oxidative damage of proteins. Verification of microarray data by reverse transcription polymerase chain reaction analysis identified typical HCHO-induced and -repressed genes.
It has been suggested that Bax translocation to the mitochondria is related to apoptosis, and that cytosol acidification contributes to apoptosis events. However, the mechanisms remain obscure. We investigated the effect of acidification on Bax translocation and on ultraviolet (UV) light-induced apoptosis. The Bax translocation assay in vitro showed that Bax translocated to the mitochondria at pH 6.5, whereas no Bax translocation was observed at pH 7.4. VHDBB cells expressing the GFP-Bax fusion protein were treated for 12 h with a pH 6.5 DMEM medium, nigericin (5 μg/ml) and UV light (50 J/cm2), separately or in combination, and Bax translocation to the mitochondria was determined by SDS-PAGE and Western blot, and apoptotic cell death was detected by flow cytometry. The results showed that some of the Bax translocated to the mitochondria in the cells treated with the normal medium, nigericin and UV in combination, whereas all of the Bax translocated to the mitochondria in the cells treated with the pH 6.5 medium, nigericin and UV in combination. In VHDBB cells treated for 12 h with nigericin, UV alone, and UV and nigericin in combination, the respective rates of apoptotic cell death were 25.08%, 33.25% and 52.88%. In cells treated with pH 6.5 medium and nigericin, pH 6.5 medium and UV, and pH 6.5 medium, nigericin and UV in combination, the respective rates of apoptotic cell death increased to 37.19%, 41.42% and 89.44%. Our results indicated that acidification induces Bax translocation from the cytosol to the mitochondria, and promotes UV lightmediated apoptosis. This suggests that there is a possibility of improving cancer treatment by combining acidification with irradiation or chemotherapeutic drugs.
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