Roscovitine and Trichostatin A promote DNA damage repair during porcine oocyte maturation
REPRODUCTION FERTILITY AND DEVELOPMENT
Authors: Zhang, Bingyue; Niu, Huiran; Cai, Qingqing; Liao, Mengqin; Chen, Keren; Chen, Yaosheng; Cong, Peiqing
Abstract
Faithful repair of DNA double-strand breaks in mammalian oocytes is essential for meiotic maturation and embryonic development. In the present study we investigated the roles of Roscovitine and Trichostatin A (TSA) in DNA damage recovery during invitro maturation of porcine oocytes. Etoposide was used to trigger DNA damage in oocytes. When these DNA-damaged oocytes were treated with 2M Roscovitine, 50nM TSA or both for 22h, first polar body extrusion and blastocyst formation in all treated groups were significantly improved compared with the etoposide-only group. The most significant improvement was observed when Roscovitine was present. Further immunofluorescent analysis of H2A.X, an indicator of DNA damage, indicated that DNA damage was significantly decreased in all treated groups. This observation was further supported by analysing the relative mRNA abundance of DNA repair-related genes, including meiotic recombination 11 homolog A (MRE11A), breast cancer type 1 susceptibility protein (BRCA1), Recombinant DNA Repair Protein 51 (RAD51), DNA-dependent protein kinase catalytic subunit (PRKDC) and X-ray cross complementing gene 4 (XRCC4). Compared with the etoposide-only group, the experimental group with combined treatment of Roscovitine and TSA showed a significant decrease of all genes at germinal vesicle and MII stages. The Roscovitine-only treatment group revealed a similar tendency. Together, these results suggest that Roscovitine and TSA treatments could increase the capacity of oocytes to recover from DNA damage by enlisting DNA repair processes.
DNA-PKcs: a T-cell tumour suppressor encoded at the mouse scid locus
NATURE GENETICS
Authors: Jhappan, C; Morse, HC; Fleischmann, RD; Gottesman, MM; Merlino, G
Abstract
Severe combined immunodeficiency (SCID) mice(1) are defective in their ability to rearrange their variable (V), diversity (D) and joining (J) genetic elements to generate functional immuno-globulin tig) and T-cell receptor (TCR) molecules; as a result, they lack mature B and T cells(2). These mice are highly sensitive to ionizing radiation, suggesting that the product of the scid gene plays a critical role in both V(D)I recombination and DNA double-strand break repair(3-5). Recent studies suggest that the SCID defect lies in the gene encoding the catalytic subunit of DNA-dependent protein kinase (DNA-PK; refs 6-8), a nuclear protein made up of the Ku 70 and Ku 86 subunits as well as the large catalytic subunit, DNA-PKcs(9,10). Other reports have implied that the SCID phenotype correlates with nonsense mutations at the extreme 3' end of Prkdc, the DNA-PKcs gene(11-14). The identity of the gene remains in doubt, however, because the consequences of genetic inactivation of Prkdc have not been determined. This study shows that complete inactivation of Prkdc in a novel insertional mouse mutant recapitulates the SCID phenotype and that Prkdc and scid are allelic, Significantly, DNA-PKcs null mice demonstrate complete penetrance of thymic lymphoblastic lymphomas, strongly suggesting that Prkdc functions in mice as a T-cell tumour suppressor and, by virtue of its association with DNA repair and recombination, belongs to the 'caretaker' class of tumour-suppressor genes that includes ATM, BRCA1 and BRCA2 (ref. 15).