Mitochondrial ferritin, a new target for inhibiting neuronal tumor cell proliferation.

Cell Mol Life Sci

Key Laboratory of Animal Physiology, Biochemistry and Molecular Biology of Hebei Province, College of Life Science, Hebei Normal University, Shijiazhuang, 050024, Hebei, China,

Published: March 2015

AI Article Synopsis

  • Mitochondrial ferritin (FtMt) regulates iron levels in cells, but its role in cancer is not fully understood due to a lack of specific gene elements.
  • Research shows FtMt inhibits the growth of neuronal tumor cells while not affecting normal fly development; higher FtMt levels are found in healthy brain tissue compared to neuroblastoma.
  • FtMt disrupts iron balance in tumor cells, leading to cell cycle arrest and increased expression of tumor suppressors, suggesting it may be a valuable target for developing therapies against neuronal cancers.

Article Abstract

Mitochondrial ferritin (FtMt) has a significant effect on the regulation of cytosolic and mitochondrial iron levels. However, because of the deficiency of iron regulatory elements (IRE) in FtMt's gene sequence, the exact function of FtMt remains unclear. In the present study, we found that FtMt dramatically inhibited SH-SY5Y cell proliferation and tumor growth in nude mice. Interestingly, excess FtMt did not adversely affect the development of drosophila. Additionally, we found that the expression of FtMt in human normal brain tissue was significantly higher than that of neuroblastoma, but not higher than that of neurospongioma. However, the expression of transferrin receptor 1 is completely opposite. We therefore hypothesized that increased expression of FtMt may negatively affect the vitality of neuronal tumor cells. Therefore, we further investigated the underlying mechanisms of FtMt's inhibitory effects on neuronal tumor cell proliferation. As expected, FtMt overexpression disturbed the iron homeostasis of tumor cells and significantly downregulated the expression of proliferating cell nuclear antigen. Moreover, FtMt affected cell cycle, causing G1/S arrest by modifying the expression of cyclinD1, cyclinE, Cdk2, Cdk4 and p21. Remarkably, FtMt strongly upregulated the expression of the tumor suppressors, p53 and N-myc downstream-regulated gene-1 (NDRG1), but dramatically decreased C-myc, N-myc and p-Rb levels. This study demonstrates for the first time a new role and mechanism for FtMt in the regulation of cell cycle. We thus propose FtMt as a new candidate target for inhibiting neuronal tumor cell proliferation. Appropriate regulation of FtMt expression may prevent tumor cell growth. Our study may provide a new strategy for neuronal cancer therapy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4323545PMC
http://dx.doi.org/10.1007/s00018-014-1730-0DOI Listing

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