Lake Cathleen M, Teeter Kathy, Page Scott L, Nielsen Rachel, Hawley R Scott
Stowers Institute for Medical Research, 1000 E. 50th Street, Kansas City, MO 64110, USA.
Genetics. 2007 Aug;176(4):2151-63. doi: 10.1534/genetics.107.073551. Epub 2007 Jun 11.
Members of the minichromosome maintenance (MCM) family have pivotal roles in many biological processes. Although originally studied for their role in DNA replication, it is becoming increasingly apparent that certain members of this family are multifunctional and also play roles in transcription, cohesion, condensation, and recombination. Here we provide a genetic dissection of the mcm5 gene in Drosophila that demonstrates an unexpected function for this protein. First, we show that homozygotes for a null allele of mcm5 die as third instar larvae, apparently as a result of blocking those replication events that lead to mitotic divisions without impairing endo-reduplication. However, we have also recovered a viable and fertile allele of mcm5 (denoted mcm5(A7)) that specifically impairs the meiotic recombination process. We demonstrate that the decrease in recombination observed in females homozygous for mcm5(A7) is not due to a failure to create or repair meiotically induced double strand breaks (DSBs), but rather to a failure to resolve those DSBs into meiotic crossovers. Consistent with their ability to repair meiotically induced DSBs, flies homozygous for mcm5(A7) are fully proficient in somatic DNA repair. These results strengthen the observation that members of the prereplicative complex have multiple functions and provide evidence that mcm5 plays a critical role in the meiotic recombination pathway.
微小染色体维持(MCM)家族成员在许多生物学过程中发挥着关键作用。尽管最初是因其在DNA复制中的作用而被研究,但越来越明显的是,该家族的某些成员具有多种功能,并且在转录、黏连、凝聚和重组中也发挥作用。在这里,我们对果蝇中的mcm5基因进行了遗传学剖析,揭示了该蛋白意想不到的功能。首先,我们表明,mcm5无效等位基因的纯合子在三龄幼虫期死亡,显然是由于阻断了那些导致有丝分裂的复制事件,而不影响内复制。然而,我们也获得了一个可行且可育的mcm5等位基因(记为mcm5(A7)),它特异性地损害减数分裂重组过程。我们证明,在mcm5(A7)纯合雌性中观察到的重组减少并非由于未能产生或修复减数分裂诱导的双链断裂(DSB),而是由于未能将这些DSB解析为减数分裂交叉。与它们修复减数分裂诱导的DSB的能力一致,mcm5(A7)纯合的果蝇在体细胞DNA修复方面完全熟练。这些结果强化了复制前复合体成员具有多种功能的观察,并提供了证据表明mcm5在减数分裂重组途径中起关键作用。