Portin Petter
Laboratory of Genetics, Department of Biology, University of Turku, Finland.
Genet Res. 2005 Dec;86(3):185-91. doi: 10.1017/S0016672305007883.
The effect was investigated of the hypomorphic DNA double-strand break repair, notably synthesis-dependent strand annealing, deficient mutation mus309 on the third chromosome of Drosophila melanogaster on intergenic and intragenic meiotic recombination in the X chromosome. The results showed that the mutation significantly increases the frequency of intergenic crossing over in two of three gene intervals of the X chromosome studied. Interestingly the increase was most prevalent in the tip of the X chromosome where crossovers normally are least frequent per physical map unit length. In particular crossing over interference was also affected, indicating that the effect of the mus309 mutation involves preconditions of crossing over but not the event of crossing over itself. On the other hand, the results also show that most probably the mutation does not have any effect on intragenic recombination, i.e. gene conversion. These results are fully consistent with the present molecular models of meiotic crossing over initiated by double-strand breaks of DNA followed by formation of a single-end-invasion intermediate, or D-loop, which is subsequently processed to generate either crossover or non-crossover products involving formation of a double Holliday junction. In particular the results suggest that the mus309 gene is involved in resolution of the D-loop, thereby affecting the choice between double-strand-break repair (DSBR) and synthesis-dependent strand annealing (SDSA) pathways of meiotic recombination.
研究了果蝇黑腹果蝇第三条染色体上低表达的DNA双链断裂修复,特别是合成依赖链退火,缺陷突变体mus309对X染色体上基因间和基因内减数分裂重组的影响。结果表明,该突变显著增加了所研究的X染色体三个基因间隔中两个基因间隔的基因间交叉频率。有趣的是,这种增加在X染色体末端最为普遍,在该区域,按物理图谱单位长度计算,交叉通常是最不频繁的。特别是交叉干扰也受到影响,这表明mus309突变的影响涉及交叉的前提条件,而不是交叉本身的事件。另一方面,结果还表明,该突变很可能对基因内重组即基因转换没有任何影响。这些结果与目前由DNA双链断裂引发减数分裂交叉的分子模型完全一致,随后形成单端侵入中间体或D环,该中间体随后被加工以产生涉及双Holliday连接形成的交叉或非交叉产物。特别是结果表明,mus309基因参与D环的分辨率,从而影响减数分裂重组的双链断裂修复(DSBR)和合成依赖链退火(SDSA)途径之间的选择。