MOE Key Laboratory of Bioinformatics, Tsinghua-Peking Joint Center for Life Sciences, and School of Life Sciences, Tsinghua University, Beijing 100084, China.
MOE Key Laboratory of Bioinformatics, Tsinghua-Peking Joint Center for Life Sciences, and School of Life Sciences, Tsinghua University, Beijing 100084, China; Beijing Advanced Innovation Center for Structural Biology & Frontier Research Center for Biological Structure, Beijing 100084, China.
Mol Plant. 2023 Jun 5;16(6):1016-1030. doi: 10.1016/j.molp.2023.04.008. Epub 2023 Apr 18.
The nuclear pore complex (NPC), the sole exchange channel between the nucleus and cytoplasm, is composed of several subcomplexes, among which the central barrier determines the permeability/selectivity of the NPC to dominate the nucleocytoplasmic trafficking essential for many important signaling events in yeast and mammals. How plant NPC central barrier controls selective transport is a crucial question remaining to be elucidated. In this study, we uncovered that phase separation of the central barrier is critical for the permeability and selectivity of plant NPC in the regulation of various biotic stresses. Phenotypic assays of nup62 mutants and complementary lines showed that NUP62 positively regulates plant defense against Botrytis cinerea, one of the world's most disastrous plant pathogens. Furthermore, in vivo imaging and in vitro biochemical evidence revealed that plant NPC central barrier undergoes phase separation to regulate selective nucleocytoplasmic transport of immune regulators, as exemplified by MPK3, essential for plant resistance to B. cinerea. Moreover, genetic analysis demonstrated that NPC phase separation plays an important role in plant defense against fungal and bacterial infection as well as insect attack. These findings reveal that phase separation of the NPC central barrier serves as an important mechanism to mediate nucleocytoplasmic transport of immune regulators and activate plant defense against a broad range of biotic stresses.
核孔复合体(NPC)是细胞核和细胞质之间唯一的交换通道,由几个亚复合物组成,其中中央屏障决定 NPC 的通透性/选择性,从而主导核质运输,这对酵母和哺乳动物中的许多重要信号事件至关重要。植物 NPC 中央屏障如何控制选择性运输是一个亟待阐明的关键问题。在这项研究中,我们揭示了中央屏障的液-液相分离对于植物 NPC 的通透性和选择性在各种生物胁迫调控中的重要性。nup62 突变体和互补系的表型分析表明,NUP62 正向调控植物对 Botrytis cinerea 的防御,后者是世界上最具灾难性的植物病原体之一。此外,体内成像和体外生化证据表明,植物 NPC 中央屏障发生液-液相分离,以调节免疫调节剂的选择性核质运输,以 MPK3 为例,这对于植物抵抗 B. cinerea 是必需的。此外,遗传分析表明,NPC 相分离在植物抵御真菌和细菌感染以及昆虫侵袭中也起着重要作用。这些发现表明,NPC 中央屏障的液-液相分离是一种重要的机制,可介导免疫调节剂的核质运输,并激活植物对广泛的生物胁迫的防御。