Institute of Plant and Microbial Biology, Academia Sinica, Taipei, 115, Taiwan.
Department of Life Sciences, National Central University, Taoyuan, 320, Taiwan.
Plant J. 2021 Mar;105(5):1293-1308. doi: 10.1111/tpj.15111. Epub 2021 Jan 5.
ETHYLENE OVERPRODUCER1 (ETO1), ETO1-LIKE1 (EOL1), and EOL2 are members of the Broad complex, Tramtrack, Bric-a-brac (BTB) protein family that collectively regulate type-2 1-aminocyclopropane-1-carboxylic acid synthase (ACS) activity in Arabidopsis thaliana. Although ETO1 and EOL1/EOL2 encode structurally related proteins, genetic studies suggest that they do not play an equivalent role in regulating ethylene biosynthesis. The mechanistic details underlying the genetic analysis remain elusive. In this study, we reveal that ETO1 collaborates with EOL1/2 to play a key role in the regulation of type-2 ACS activity via protein-protein interactions. ETO1, EOL1, and EOL2 exhibit overlapping but distinct tissue-specific expression patterns. Nevertheless, neither EOL1 nor EOL2 can fully complement the eto1 phenotype under control of the ETO1 promoter, which suggests differential functions of ETO1 and EOL1/EOL2. ETO1 forms homodimers with itself and heterodimers with EOLs. Furthermore, CULLIN3 (CUL3) interacts preferentially with ETO1. The BTB domain of ETO1 is sufficient for interaction with CUL3 and is required for homodimerization. However, domain-swapping analysis in transgenic Arabidopsis suggests that the BTB domain of ETO1 is essential but not sufficient for a full spectrum of ETO1 function. The missense mutation in eto1-5 generates a substitution of phenylalanine with an isoleucine in ETO1 that impairs its dimerization and interaction with EOLs but does not affect binding to CUL3 or ACS5. Overexpression of ETO1 in Arabidopsis results in a constitutive triple response phenotype in dark-grown seedlings. Our findings reveal the mechanistic role of protein-protein interactions of ETO1 and EOL1/EOL2 that is crucial for their biological function in ethylene biosynthesis.
乙烯过表达 1(ETO1)、ETO1 样 1(EOL1)和 EOL2 是 Broad complex、Tramtrack、Bric-a-brac(BTB)蛋白家族的成员,它们共同调节拟南芥中的 2 型 1-氨基环丙烷-1-羧酸合酶(ACS)活性。尽管 ETO1 和 EOL1/EOL2 编码结构上相关的蛋白,但遗传研究表明它们在调节乙烯生物合成中不起等效作用。遗传分析背后的机制细节仍然难以捉摸。在这项研究中,我们揭示了 ETO1 通过蛋白-蛋白相互作用与 EOL1/2 协作,在调节 2 型 ACS 活性中发挥关键作用。ETO1、EOL1 和 EOL2 表现出重叠但不同的组织特异性表达模式。然而,EOL1 或 EOL2 都不能在 ETO1 启动子的控制下完全补充 eto1 表型,这表明 ETO1 和 EOL1/EOL2 的功能不同。ETO1 自身形成同源二聚体,与 EOL 形成异源二聚体。此外,CULLIN3(CUL3)优先与 ETO1 相互作用。ETO1 的 BTB 结构域足以与 CUL3 相互作用,并且是同源二聚化所必需的。然而,在转基因拟南芥中的结构域交换分析表明,ETO1 的 BTB 结构域是必需的,但不足以发挥 ETO1 功能的全部谱。eto1-5 中的错义突变导致 ETO1 中的苯丙氨酸被异亮氨酸取代,这会损害其二聚化和与 EOL 的相互作用,但不会影响与 CUL3 或 ACS5 的结合。在拟南芥中过表达 ETO1 会导致黑暗生长的幼苗中出现组成型三重反应表型。我们的发现揭示了 ETO1 和 EOL1/EOL2 之间蛋白-蛋白相互作用的机制作用,这对于它们在乙烯生物合成中的生物学功能至关重要。