The dyad gene is required for progression through female meiosis in Arabidopsis

大孢子 生物 胚珠 减数分裂 减数分裂细胞 配子体 卵细胞 小孢子 细胞分裂 遗传学 配子发生 细胞生物学 胚胎 植物 胚胎发生 雄蕊 基因 细胞 花粉
作者
Imran Siddiqi,Ganesh Gopal,Ueli Grossniklaus,Veeraputhiran Subbiah
出处
期刊:Development [The Company of Biologists]
卷期号:127 (1): 197-207 被引量:148
标识
DOI:10.1242/dev.127.1.197
摘要

In higher plants the gametophyte consists of a gamete in association with a small number of haploid cells, specialized for sexual reproduction. The female gametophyte or embryo sac, is contained within the ovule and develops from a single cell, the megaspore which is formed by meiosis of the megaspore mother cell. The dyad mutant of Arabidopsis, described herein, represents a novel class among female sterile mutants in plants. dyad ovules contain two large cells in place of an embryo sac. The two cells represent the products of a single division of the megaspore mother cell followed by an arrest in further development of the megaspore. We addressed the question of whether the division of the megaspore mother cell in the mutant was meiotic or mitotic by examining the expression of two markers that are normally expressed in the megaspore mother cell during meiosis. Our observations indicate that in dyad, the megaspore mother cell enters but fails to complete meiosis, arresting at the end of meiosis 1 in the majority of ovules. This was corroborated by a direct observation of chromosome segregation during division of the megaspore mother cell, showing that the division is a reductional and not an equational one. In a minority of dyad ovules, the megaspore mother cell does not divide. Pollen development and male fertility in the mutant is normal, as is the rest of the ovule that surrounds the female gametophyte. The embryo sac is also shown to have an influence on the nucellus in wild type. The dyad mutation therefore specifically affects a function that is required in the female germ cell precursor for meiosis. The identification and analysis of mutants specifically affecting female meiosis is an initial step in understanding the molecular mechanisms underlying early events in the pathway of female reproductive development.
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