Department of Cell and Developmental Biology, School of Biological Sciences, University of California San Diego, San Diego, California, United States of America.
PLoS Biol. 2023 Jun 14;21(6):e3002163. doi: 10.1371/journal.pbio.3002163. eCollection 2023 Jun.
Auxin response factors (ARFs) are a family of transcription factors that are responsible for regulating gene expression in response to changes in auxin level. The analysis of ARF sequence and activity indicates that there are 2 major groups: activators and repressors. One clade of ARFs, clade-D, is sister to clade-A activating ARFs, but are unique in that they lack a DNA-binding domain. Clade-D ARFs are present in lycophytes and bryophytes but absent in other plant lineages. The transcriptional activity of clade-D ARFs, as well as how they regulate gene expression, is not well understood. Here, we report that clade-D ARFs are transcriptional activators in the model bryophyte Physcomitrium patens and have a major role in the development of this species. Δarfddub protonemata exhibit a delay in filament branching, as well as a delay in the chloronema to caulonema transition. Additionally, leafy gametophore development in Δarfddub lines lags behind wild type. We present evidence that ARFd1 interacts with activating ARFs via their PB1 domains, but not with repressing ARFs. Based on these results, we propose a model in which clade-D ARFs enhance gene expression by interacting with DNA bound clade-A ARFs. Further, we show that ARFd1 must form oligomers for full activity.
生长素响应因子 (ARFs) 是一类转录因子,负责调节生长素水平变化时的基因表达。ARF 序列和活性分析表明,存在 2 个主要亚群:激活子和阻遏子。ARF 的一个分支,clade-D,与激活子 ARF 的 clade-A 分支姐妹关系,但它们的独特之处在于缺乏 DNA 结合域。clade-D ARFs 存在于石松类植物和苔藓植物中,但在其他植物谱系中不存在。clade-D ARFs 的转录活性以及它们如何调节基因表达尚不清楚。在这里,我们报告 clade-D ARFs 是模式苔藓植物 Physcomitrium patens 的转录激活子,并在该物种的发育中起主要作用。Δarfddub 原丝体表现出丝状体分支延迟,以及从绿丝体到黄丝体的转变延迟。此外,Δarfddub 系的叶状配子体发育滞后于野生型。我们提供的证据表明,ARFd1 通过其 PB1 结构域与激活子 ARFs 相互作用,但不与阻遏子 ARFs 相互作用。基于这些结果,我们提出了一个模型,即 clade-D ARFs 通过与 DNA 结合的 clade-A ARFs 相互作用来增强基因表达。此外,我们表明 ARFd1 必须形成寡聚体才能发挥完全活性。