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NAC 转录因子促进胚乳细胞死亡,从而促进拟南芥胚胎的入侵。

Endosperm cell death promoted by NAC transcription factors facilitates embryo invasion in Arabidopsis.

机构信息

Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Ghent, Belgium; VIB-UGENT Center of Plant Systems Biology, 9052 Ghent, Belgium.

Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Ghent, Belgium; VIB-UGENT Center of Plant Systems Biology, 9052 Ghent, Belgium.

出版信息

Curr Biol. 2023 Sep 11;33(17):3785-3795.e6. doi: 10.1016/j.cub.2023.08.003. Epub 2023 Aug 25.

Abstract

In flowering plants, two fertilization products develop within the limited space of the seed: the embryo and the surrounding nutritive endosperm. The final size of the endosperm is modulated by the degree of embryo growth. In Arabidopsis thaliana, the endosperm expands rapidly after fertilization, but later gets invaded by the embryo that occupies most of the seed volume at maturity, surrounded by a single remaining aleurone-like endosperm layer. Embryo invasion is facilitated by the endosperm-expressed bHLH-type transcription factor ZHOUPI, which promotes weakening of endosperm cell walls. Endosperm elimination in zou mutants is delayed, and embryo growth is severely affected; the endosperm finally collapses around the dwarf embryo, causing the shriveled appearance of mature zou seeds. However, whether ZHOUPI facilitates mechanical endosperm destruction by the invading embryo or whether an active programmed cell death (PCD) process causes endosperm elimination has been subject to debate. Here we show that developmental PCD controlled by multiple NAC transcription factors in the embryo-adjacent endosperm promotes gradual endosperm elimination. Misexpressing the NAC transcription factor KIRA1 in the entire endosperm caused total endosperm elimination, generating aleurone-less mature seeds. Conversely, dominant and recessive higher-order NAC mutants led to delayed endosperm elimination and impaired cell corpse clearance. Promoting PCD in the zhoupi mutant partially rescued its embryo growth defects, while the endosperm in a zhoupi nac higher-order mutant persisted until seed desiccation. These data suggest that a combination of cell wall weakening and PCD jointly facilitates embryo invasion by an active auto-elimination of endosperm cells.

摘要

在开花植物中,两个受精产物在种子的有限空间内发育:胚胎和周围的营养胚乳。胚乳的最终大小受胚胎生长程度的调节。在拟南芥中,胚乳在受精后迅速扩张,但后来被占据种子大部分体积的胚胎入侵,周围只有一层剩余的糊粉层状胚乳。胚胎的入侵是由胚乳表达的 bHLH 型转录因子 ZHOUPI 促进的,它促进胚乳细胞壁的弱化。在 zou 突变体中,胚乳消除延迟,胚胎生长受到严重影响;胚乳最终在矮小的胚胎周围崩溃,导致成熟 zou 种子的干瘪外观。然而,ZHOUPI 是否通过入侵的胚胎促进机械性胚乳破坏,或者是否存在主动程序性细胞死亡(PCD)过程导致胚乳消除,一直存在争议。在这里,我们表明,由多个 NAC 转录因子控制的胚胎相邻胚乳中的发育性 PCD 促进了逐渐的胚乳消除。在整个胚乳中异位表达 NAC 转录因子 KIRA1 会导致全部胚乳消除,产生无糊粉层的成熟种子。相反,显性和隐性高次 NAC 突变体导致胚乳消除延迟和细胞尸体清除受损。在 zhoupi 突变体中促进 PCD 部分挽救了其胚胎生长缺陷,而在 zhoupi nac 高次突变体中的胚乳则持续到种子干燥。这些数据表明,细胞壁弱化和 PCD 的结合共同促进了胚乳细胞的主动自我消除,从而使胚胎入侵。

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