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EIN3 的双重且相反的作用揭示了种子生长过程中的代际冲突。

Dual and opposing roles of EIN3 reveal a generation conflict during seed growth.

机构信息

University of Bremen, Centre for Biomolecular Interactions Bremen (CBIB), Leobenerstrasse 5, 28359 Bremen, Germany.

ZMBP, University of Tübingen, Auf der Morgenstelle 32 72076 Tübingen, Germany.

出版信息

Mol Plant. 2022 Feb 7;15(2):363-371. doi: 10.1016/j.molp.2021.11.015. Epub 2021 Nov 27.

Abstract

Seed size critically affects grain yield of crops and hence represents a key breeding target. The development of embryo-nourishing endosperm is a key driver of seed expansion. We here report unexpected dual roles of the transcription factor EIN3 in regulating seed size. These EIN3 functions have remained largely undiscovered because they oppose each other. Capitalizing on the analysis of multiple ethylene biosynthesis mutants, we demonstrate that EIN3 represses endosperm and seed development in a pathway regulated by ethylene. We, in addition, provide evidence that EIN3-mediated synergid nucleus disintegration promotes endosperm expansion. Interestingly, synergid nucleus disintegration is not affected in various ethylene biosynthesis mutants, suggesting that this promoting function of EIN3 is independent of ethylene. Whereas the growth-inhibitory ethylene-dependent EIN3 action appears to be encoded by sporophytic tissue, the growth-promoting role of EIN3 is induced by fertilization, revealing a generation conflict that converges toward the key signaling component EIN3.

摘要

种子大小对作物的谷物产量有至关重要的影响,因此代表了一个主要的培育目标。胚胎营养胚乳的发育是种子扩张的关键驱动因素。在这里,我们报告了转录因子 EIN3 调控种子大小的意外双重作用。这些 EIN3 功能在很大程度上未被发现,因为它们相互矛盾。我们利用对多个乙烯生物合成突变体的分析,证明 EIN3 抑制了由乙烯调节的胚乳和种子发育途径。此外,我们提供了证据表明,EIN3 介导的助细胞核解体促进了胚乳的扩张。有趣的是,在各种乙烯生物合成突变体中,助细胞核解体不受影响,这表明 EIN3 的这种促进作用独立于乙烯。虽然生长抑制的依赖乙烯的 EIN3 作用似乎由孢子组织编码,但 EIN3 的生长促进作用是由受精诱导的,这揭示了一种代际冲突,其汇聚到关键信号成分 EIN3。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa90/8837274/3c83ea0f3492/gr1.jpg

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