Literature DB >> 20426663

Mitochondrial gene expression changes in normal and mitochondrial mutant cells after exposure to ionizing radiation.

Rohan Kulkarni1, Brian Marples, Mamtha Balasubramaniam, Robert A Thomas, James D Tucker.   

Abstract

Mitochondrial DNA (mtDNA) contains 13 genes that encode proteins of the oxidative phosphorylation complex that are involved in ATP generation. Leber's optic atrophy and Leigh's syndrome are diseases that are caused by point mutations in the mitochondrial genome and that have phenotypes associated with energy deprivation. We hypothesized that energy deficiency from mitochondrial mutations in these cells leads to radiation hypersensitivity. Here we compared mitochondrial gene expression for the 13 mitochondrial protein-coding genes in two mitochondrial mutant cell lines, GM13740 (Leigh's syndrome) and GM10744 (Leber's optic atrophy) and a normal human lymphoblastoid cell line (GM15036) after X irradiation (0-4 Gy) 0 to 24 h postirradiation. Changes in gene expression were compared with cellular radiosensitivity. Statistically significant differences between Leigh's syndrome and normal cells were found in mitochondrial gene expression for all radiation doses and times that were commensurate with changes in radiation sensitivity. The data suggest that Leigh's syndrome cells have an impaired ability to repair radiation-induced DNA damage that results in radiation hypersensitivity. This may be attributable to mitochondrial dysfunction from reductions in mitochondrial gene expression and ATP generation, since Leigh's optic atrophy cells exhibit a mutation in the ATPase6 gene, which is an important component of Complex V of ATP synthase. In contrast, the mutation of the Leber's cells conferred radioresistance, which might be attributed to the mutation in the ND4 gene in the mitochondrial genome. The altered sensitivity of mitochondrial mutant cells to ionizing radiation can lead to decreased DNA repair, which may put individuals with mtDNA mutations at greater risk for cancer and other diseases.

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Year:  2010        PMID: 20426663     DOI: 10.1667/RR1737.1

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  15 in total

1.  Transcriptional changes of mitochondrial genes in irradiated cells proficient or deficient in p53.

Authors:  M Ahmad Chaudhry; Romaica A Omaruddin
Journal:  J Genet       Date:  2012       Impact factor: 1.166

2.  Green fluorescent protein alters the transcriptional regulation of human mitochondrial genes after gamma irradiation.

Authors:  Winnie Wai-Ying Kam; Ryan Middleton; Vanessa Lake; Richard B Banati
Journal:  J Fluoresc       Date:  2013-03-09       Impact factor: 2.217

3.  ATM-mediated mitochondrial damage response triggered by nuclear DNA damage in normal human lung fibroblasts.

Authors:  Tsutomu Shimura; Megumi Sasatani; Hidehiko Kawai; Kenji Kamiya; Junya Kobayashi; Kenshi Komatsu; Naoki Kunugita
Journal:  Cell Cycle       Date:  2017-11-29       Impact factor: 4.534

4.  Loss of C/EBPδ enhances IR-induced cell death by promoting oxidative stress and mitochondrial dysfunction.

Authors:  Sudip Banerjee; Nukhet Aykin-Burns; Kimberly J Krager; Sumit K Shah; Stepan B Melnyk; Martin Hauer-Jensen; Snehalata A Pawar
Journal:  Free Radic Biol Med       Date:  2016-08-20       Impact factor: 7.376

5.  A comparison of radiation-induced mitochondrial damage between neural progenitor stem cells and differentiated cells.

Authors:  Tsutomu Shimura; Megumi Sasatani; Hidehiko Kawai; Kenji Kamiya; Junya Kobayashi; Kenshi Komatsu; Naoki Kunugita
Journal:  Cell Cycle       Date:  2017-01-24       Impact factor: 4.534

6.  Radon induced mitochondrial dysfunction in human bronchial epithelial cells and epithelial-mesenchymal transition with long-term exposure.

Authors:  Qian Xu; Lijun Fang; Bin Chen; Hong Zhang; Qianqian Wu; Hongbo Zhang; Aiqing Wang; Jian Tong; Shasha Tao; Hailin Tian
Journal:  Toxicol Res (Camb)       Date:  2018-10-31       Impact factor: 2.680

7.  Severe mitochondrial damage associated with low-dose radiation sensitivity in ATM- and NBS1-deficient cells.

Authors:  Tsutomu Shimura; Junya Kobayashi; Kenshi Komatsu; Naoki Kunugita
Journal:  Cell Cycle       Date:  2016       Impact factor: 4.534

Review 8.  Mitochondrial reactive oxygen species-mediated genomic instability in low-dose irradiated human cells through nuclear retention of cyclin D1.

Authors:  Tsutomu Shimura; Naoki Kunugita
Journal:  Cell Cycle       Date:  2016-04-14       Impact factor: 4.534

9.  Homozygous mutation of MTPAP causes cellular radiosensitivity and persistent DNA double-strand breaks.

Authors:  N T Martin; K Nakamura; U Paila; J Woo; C Brown; J A Wright; S N Teraoka; S Haghayegh; D McCurdy; M Schneider; H Hu; A R Quinlan; R A Gatti; P Concannon
Journal:  Cell Death Dis       Date:  2014-03-20       Impact factor: 8.469

10.  Apparent polyploidization after gamma irradiation: pitfalls in the use of quantitative polymerase chain reaction (qPCR) for the estimation of mitochondrial and nuclear DNA gene copy numbers.

Authors:  Winnie W Y Kam; Vanessa Lake; Connie Banos; Justin Davies; Richard Banati
Journal:  Int J Mol Sci       Date:  2013-05-30       Impact factor: 5.923

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