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Mioko Ohzeki

Publications and source records attributed to Mioko Ohzeki.

4 recordsLinked to original sources

Functional interplay between BRCA2/FancD1 and FancC in DNA repair.

A rare hereditary disorder, Fanconi anemia (FA), is caused by mutations in an array of genes, which interact in a common FA pathway/network. These genes encode components of the FA "core" complex, a key factor FancD2, the familial breast cancer suppressor BRCA2/FancD1, and Brip1/FancJ helicase. Although BRCA2 is known to play a pivotal role in homologous recombination repair by regulating Rad51 recombinase, the precise functional relationship between BRCA2 and the other FA genes is unclear. Here we show that BRCA2-dependent chromatin loading of Rad51 after mitomycin C treatment was not compromised by disruption of FANCC or FANCD2. Rad51 and FancD2 form colocalizing subnuclear foci independently of each other. Furthermore, we created a conditional BRCA2 truncating mutation lacking the C-terminal conserved domain (CTD) (brca2DeltaCTD), and disrupted the FANCC gene in this background. The fancc/brca2DeltaCTD double mutant revealed an epistatic relationship between FANCC and BRCA2 CTD in terms of x-ray sensitivity. In contrast, levels of cisplatin sensitivity and mitomycin C-induced chromosomal aberrations were increased in fancc/brca2DeltaCTD cells relative to either single mutant. Taken together, these results indicate that FA proteins work together with BRCA2/Rad51-mediated homologous recombination in double strand break repair, whereas the FA pathway plays a role that is independent of the CTD of BRCA2 in interstrand cross-link repair. These results provide insights into the functional interplay between the classical FA pathway and BRCA2.

Animals↗

Multiple repair pathways mediate tolerance to chemotherapeutic cross-linking agents in vertebrate cells.

Cross-linking agents that induce DNA interstrand cross-links (ICL) are widely used in anticancer chemotherapy. Yeast genetic studies show that nucleotide excision repair (NER), Rad6/Rad18-dependent postreplication repair, homologous recombination, and cell cycle checkpoint pathway are involved in ICL repair. To study the contribution of DNA damage response pathways in tolerance to cross-linking agents in vertebrates, we made a panel of gene-disrupted clones from chicken DT40 cells, each defective in a particular DNA repair or checkpoint pathway, and measured the sensitivities to cross-linking agents, including cis-diamminedichloroplatinum (II) (cisplatin), mitomycin C, and melphalan. We found that cells harboring defects in translesion DNA synthesis (TLS), Fanconi anemia complementation groups (FANC), or homologous recombination displayed marked hypersensitivity to all the cross-linking agents, whereas NER seemed to play only a minor role. This effect of replication-dependent repair pathways is distinctively different from the situation in yeast, where NER seems to play a major role in dealing with ICL. Cells deficient in Rev3, the catalytic subunit of TLS polymerase Polzeta, showed the highest sensitivity to cisplatin followed by fanc-c. Furthermore, epistasis analysis revealed that these two mutants work in the same pathway. Our genetic comprehensive study reveals a critical role for DNA repair pathways that release DNA replication block at ICLs in cellular tolerance to cross-linking agents and could be directly exploited in designing an effective chemotherapy.

Animals↗

[Case of uremic platelet dysfunction].

The present case was a 59-year-old woman who underwent a right nephrectomy at 30 years of age, and in whom renal dysfunction occurred at 51 years of age. In November 199X, when her creatinine level reached 7 mg/dl, renal replacement therapy was recommended. She refused this therapy and began her own diet therapy, which consisted of taking only supplement beverage, but no food. Afterwards she became unable to do daily work, and entered our hospital in July of the next year. On admission, her bleeding time was over 10 minutes, but coagulation function tests showed normal values. Platelet function tests showed that coagulation with the addition of ADP was mildly decreased and that coagulation with the addition of aggregation was severely decreased. These data and her bleeding tendency improved with hemodialysis. Therefore, a diagnosis of aggregation non-responsive uremic platelet dysfunction was made. On admission, we were not able to insert a catheter for hemodialysis because of her severe bleeding tendency. A platelet transfusion was made so that we could insert the catheter without severe bleeding. However, this hemostatic effect lapsed after about five to six hours. Six hours after insertion of the catheter, oozing from the orifice of the catheter was seen and a red blood transfusion was necessary. Three days after beginning hemodialysis, the bleeding tendency was no longer seen. Her platelet function and coagulation test results also improved. We can make two conclusions regarding this case. The first is when the physician's medical strategy cannot be carried out due to uremic platelet dysfunction, a platelet transfusion can temporarily eliminate the bleeding tendency. The second is that the pathophysiology of uremic platelet dysfunction involves suppression of the primary step of platelet aggregation with collagen. Experience with the present case revealed the appropriate therapeutic strategy for the pathophysiology of uremic platelet dysfunction.

Blood Platelet Disorders↗

Functional relationships of FANCC to homologous recombination, translesion synthesis, and BLM.

Some of the restarting events of stalled replication forks lead to sister chromatid exchange (SCE) as a result of homologous recombination (HR) repair with crossing over. The rate of SCE is elevated by the loss of BLM helicase or by a defect in translesion synthesis (TLS). We found that spontaneous SCE levels were elevated approximately 2-fold in chicken DT40 cells deficient in Fanconi anemia (FA) gene FANCC. To investigate the mechanism of the elevated SCE, we deleted FANCC in cells lacking Rad51 paralog XRCC3, TLS factor RAD18, or BLM. The increased SCE in fancc cells required Xrcc3, whereas the fancc/rad18 double mutant exhibited higher SCE than either single mutant. Unexpectedly, SCE in the fancc/blm mutant was similar to that in blm cells, indicating functional linkage between FANCC and BLM. Furthermore, MMC-induced formation of GFP-BLM nuclear foci was severely compromised in both human and chicken fancc or fancd2 cells. Our cell survival data suggest that the FA proteins serve to facilitate HR, but not global TLS, during crosslink repair.

Adenosine Triphosphatases↗