小孢子
生物
悬液
配子体
细胞生物学
植物
细胞分裂
胚胎
胚胎发生
大孢子
胚胎发生
细胞命运测定
老茧
胚珠
多叶的
花粉
雄蕊
细胞
遗传学
基因
转录因子
作者
Charlotte Siemons,Sven Jonkers,Redmar C. Vlieg,Patricia Corral‐Martínez,John van Noort,Kim Boutilier
摘要
SUMMARY Microspore embryogenesis is a type of in vitro totipotency in which the immature male gametophyte (pollen) develops into a haploid embryo after an abiotic stress treatment. In Brassica napus , heat‐stress treatment of male gametophytes induces the development of different types of multicellular embryogenic structures, each with different cellular characteristics and the capacity to form a differentiated embryo. The origin and early development of these different embryogenic structures have not been determined. We used two‐photon excitation fluorescence microscopy and time‐lapse imaging of cells expressing either a LEAFY COTYLEDON1 ( LEC1 ) embryo identity reporter or a DR5v2 auxin response reporter to follow the development of embryogenic structures starting at the single‐ to few‐cell stage. We show for the first time that the developmental fate of embryogenic structures is defined by the symmetry of the first embryogenic division and that the division plane also predicts the timing of subsequent pollen wall (exine) rupture: suspensorless embryos develop after a symmetric division and undergo late exine rupture, while suspensor‐bearing embryos and embryogenic callus develop after an asymmetric division and undergo early exine rupture. Live imaging also captured previously unknown dynamic LEC1 and DR5v2 expression patterns that are associated with changes in exine integrity. This study highlights the developmental plasticity of cultured pollen and uncovers new roles for the first embryogenic cell division plane and the exine in defining and maintaining cell fate during microspore embryogenesis.
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