Related Experiment Videos
Vanadate-induced gene expression in mouse C127 cells: roles of oxygen derived active species
X Yin1, A J Davison, S S Tsang
1Bioenergetics Research Laboratory, Faculty of Applied Sciences, Simon Fraser University, Burnaby, British Columbia, Canada.
Abstract:
An underinvestigated aspect of the mitogenic and cell regulatory actions of vanadium is the regulation of gene expression. Among the fifteen cellular genes studied in cultured mouse C127 cells, vanadium (as 10 microM sodium vanadate) increased levels of mRNA of the actin and c-Ha-ras to four times control values. These increases represented de novo synthesis of mRNA, since they were inhibited by actinomycin D. Vanadate did not increase mRNA corresponding to c-src, c-mos, c-myc, p53, HSP70, pODC or RB genes, and expression of c-erb A, c-erb B, c-sis and c-fes genes was undetectable whether vanadium was present or not. Expression of a third gene affected by vanadium, c-jun, was augmented by addition of a reductant or oxidant together with the vanadate. Addition of NADH (marginally effective on its own) or H2O2 (effective alone) dramatically enhanced the effect of vanadate on c-jun gene expression. Catalase inhibited the effect of NADH partly. The vanadate-stimulated expression of actin and c-Ha-ras mRNA were unaffected by oxidants, reductants, metal chelators, or anti-oxidant enzymes. Evidently vanadate acts by two separate mechanisms on these two categories of genes. The alternate hypothesis that the actions of vanadate on actin and c-Ha-ras were mediated by a protein kinase cascade was inconsistent with the following observations. Neither insulin nor epidermal growth factor increased mRNA levels of c-Ha-ras or actin gene. Neither genistein (a tyrosine kinase inhibitor) nor pretreatment with 12-O-tetradecanoylphorbol-13-acetate blocked the actions of vanadate on these genes. Clearly the biological actions of vanadium depend in part on altered expression of genes. Since two of the genes are proto-oncogenes, this mechanism is potentially relevant to the mitogenic responses of cells to vanadium.
Insights
Vanadium (sodium vanadate) significantly increases mRNA levels for actin and c-Ha-ras genes in mouse cells, indicating altered gene expression. These effects occur through distinct mechanisms, potentially influencing cell growth and regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Vanadium compounds exhibit mitogenic and cell regulatory effects.
- The impact of vanadium on gene expression remains under-investigated.
- Understanding vanadium's molecular mechanisms is crucial for its therapeutic applications.
Purpose of the Study:
- To investigate the effect of vanadium on the expression of specific cellular genes.
- To elucidate the mechanisms by which vanadium influences gene regulation.
- To determine the relevance of vanadium-induced gene expression changes to its known biological activities.
Main Methods:
- Cultured mouse C127 cells were treated with sodium vanadate.
- Messenger RNA (mRNA) levels of fifteen cellular genes were quantified.
- Effects of oxidants, reductants, and enzyme inhibitors were assessed.
- Inhibition studies with actinomycin D confirmed de novo mRNA synthesis.
Main Results:
- Sodium vanadate significantly increased mRNA levels of actin and c-Ha-ras genes.
- Vanadium did not affect mRNA levels of several other studied genes, including proto-oncogenes and growth factor receptors.
- Vanadium's effect on c-jun gene expression was modulated by oxidants and reductants.
- The mechanisms regulating actin and c-Ha-ras expression differed from those affecting c-jun.
Conclusions:
- Vanadium alters cellular gene expression, impacting genes like actin and c-Ha-ras.
- Distinct molecular pathways mediate vanadium's effects on different gene categories.
- Vanadium-induced changes in proto-oncogene expression may contribute to its mitogenic effects.
- Further research is warranted to explore vanadium's role in cell regulation and potential therapeutic uses.