McKee A H, Kleckner N
Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts 02138, USA.
Genetics. 1997 Jul;146(3):817-34. doi: 10.1093/genetics/146.3.817.
Two new meiosis-specific genes, SAE1 and SAE3, have been identified in a screen for mutations that confer an intermediate block in meiotic prophase. Such mutations confer a block to spore formation that is circumvented by addition of a mutation that eliminates meiotic recombination initiation and other aspects of chromosome metabolism, i.e., spo11. We show that sae1-1 and sae3-1 mutations each confer a distinct defect in meiotic recombination. sae1-1 produces recombinants but very slowly and ultimately to less than half the wild-type level; sae3-1 makes persistent hyper-resected meiotic double-strand breaks and has a severe defect in formation of recombinants. Both mutants arrest at the pachytene stage of meiotic prophase, sae1-1 temporarily and sae3-1 permanently. The phenotypes conferred by sae3-1 are similar to those conferred by mutation of the yeast RecA homologue DMC1, suggesting that SAE3 and DMC1 act at the same step(s) of chromosome metabolism. These results provide further evidence that intermediate blocks to prophase chromosome metabolism cause cell-cycle arrest. SAE1 encodes a 208-residue protein homologous to vertebrate mRNA cap-binding protein 20. SAE3 corresponds to a meiosis-specific RNA encoding an unusually short open reading frame of 50 codons.
在一项针对减数分裂前期中间阻滞突变的筛选中,鉴定出了两个新的减数分裂特异性基因SAE1和SAE3。这些突变导致孢子形成受阻,而通过添加消除减数分裂重组起始和染色体代谢其他方面(即spo11)的突变可绕过这种阻滞。我们发现,sae1-1和sae3-1突变在减数分裂重组中各自导致了不同的缺陷。sae1-1产生重组体,但速度非常缓慢,最终产量不到野生型水平的一半;sae3-1产生持续过度切除的减数分裂双链断裂,在重组体形成方面存在严重缺陷。两个突变体都在减数分裂前期的粗线期停滞,sae1-1是暂时停滞,sae3-1是永久停滞。sae3-1赋予的表型与酵母RecA同源物DMC1突变赋予的表型相似,这表明SAE3和DMC1在染色体代谢的相同步骤中起作用。这些结果进一步证明,前期染色体代谢的中间阻滞会导致细胞周期停滞。SAE1编码一种与脊椎动物mRNA帽结合蛋白20同源的208个氨基酸的蛋白质。SAE3对应于一种减数分裂特异性RNA,其编码一个异常短的50个密码子的开放阅读框。