Glucan Synthase-like 2 is Required for Seed Initiation and Filling as Well as Pollen Fertility in Rice

胚乳 胼胝质 胚珠 配子体 生物 花粉管 胚胎 蔗糖合成酶 花粉 小孢子 植物 突变体 细胞生物学 发芽 基因 雄蕊 蔗糖 遗传学 细胞壁 生物化学 授粉 转化酶
作者
Ronghua Qiu,Yang Liu,Zhengzheng Cai,Jieqiong Li,Chunyan Wu,Gang Wang,Chenchen Lin,Yulin Peng,Zhanlin Deng,Weiqi Tang,Weiren Wu,Yuanlin Duan
出处
期刊:Rice [Springer Nature]
卷期号:16 (1) 被引量:2
标识
DOI:10.1186/s12284-023-00662-z
摘要

Abstract Background The Glucan synthase-like ( GSL ) genes are indispensable for some important highly-specialized developmental and cellular processes involving callose synthesis and deposition in plants. At present, the best-characterized reproductive functions of GSL genes are those for pollen formation and ovary expansion, but their role in seed initiation remains unknown. Results We identified a rice seed mutant, watery seed 1-1 ( ws1-1 ), which contained a mutation in the OsGSL2 gene. The mutant produced seeds lacking embryo and endosperm but filled with transparent and sucrose-rich liquid. In a ws1-1 spikelet, the ovule development was normal, but the microsporogenesis and male gametophyte development were compromised, resulting in the reduction of fertile pollen. After fertilization, while the seed coat normally developed, the embryo failed to differentiate normally. In addition, the divided endosperm-free nuclei did not migrate to the periphery of the embryo sac but aggregated so that their proliferation and cellularization were arrested. Moreover, the degeneration of nucellus cells was delayed in ws1-1 . OsGSL2 is highly expressed in reproductive organs and developing seeds. Disrupting OsGSL2 reduced callose deposition on the outer walls of the microspores and impaired the formation of the annular callose sheath in developing caryopsis, leading to pollen defect and seed abortion. Conclusions Our findings revealed that OsGSL2 is essential for rice fertility and is required for embryo differentiation and endosperm-free nucleus positioning, indicating a distinct role of OsGSL2 , a callose synthase gene, in seed initiation, which provides new insight into the regulation of seed development in cereals.
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