Institute of Biology, Biotechnology and Environmental Protection, University of Silesia in Katowice, Katowice, Poland.
Center for Plant Molecular Biology, University of Tübingen, Tübingen, Germany.
Nat Plants. 2022 Mar;8(3):269-280. doi: 10.1038/s41477-022-01111-3. Epub 2022 Mar 22.
Developmental boundaries play an important role in coordinating the growth and patterning of lateral organs. In plants, specification of dorsiventrality is critical to leaf morphogenesis. Despite its central importance, the mechanism by which leaf primordia acquire adaxial versus abaxial cell fates to establish dorsiventrality remains a topic of much debate. Here, by combining time-lapse confocal imaging, cell lineage tracing and molecular genetic analyses, we demonstrate that a stable boundary between adaxial and abaxial cell fates is specified several plastochrons before primordium emergence when high auxin levels accumulate on a meristem prepattern formed by the AS2 and KAN1 transcription factors. This occurrence triggers a transient induction of ARF3 and an auxin transcriptional response in AS2-marked progenitors that distinguishes adaxial from abaxial identity. As the primordium emerges, dynamic shifts in auxin distribution and auxin-related gene expression gradually resolve this initial polarity into the stable regulatory network known to maintain adaxial-abaxial polarity within the developing organ. Our data show that spatial information from an AS2-KAN1 meristem prepattern governs the conversion of a uniform auxin input into an ARF-dependent binary auxin response output to specify adaxial-abaxial polarity. Auxin thus serves as a single morphogenic signal that orchestrates distinct, spatially separated responses to coordinate the positioning and emergence of a new organ with its patterning.
发育边界在协调侧生器官的生长和模式形成中起着重要作用。在植物中,背腹性的特化对于叶片形态发生至关重要。尽管其具有核心重要性,但叶原基获得背-腹细胞命运以建立背腹性的机制仍然是一个争论的话题。在这里,通过结合时程共聚焦成像、细胞谱系追踪和分子遗传分析,我们证明了当高生长素水平在由 AS2 和 KAN1 转录因子形成的分生组织前体模式上积累时,在原基出现前几个韧皮素中就已经确定了背-腹细胞命运之间的稳定边界。这种情况触发了 ARF3 的短暂诱导和 AS2 标记的祖细胞中的生长素转录反应,将其与背-腹身份区分开来。随着原基的出现,生长素分布和生长素相关基因表达的动态变化逐渐将这种初始极性转化为已知在发育器官中维持背-腹极性的稳定调控网络。我们的数据表明,来自 AS2-KAN1 分生组织前体的空间信息控制着将均匀的生长素输入转化为 ARF 依赖的二元生长素反应输出,以特化背-腹极性。因此,生长素作为一个单一的形态发生信号,协调了不同的、空间分离的反应,以协调新器官的定位和出现与其模式形成。