Department of Experimental Plant Biology, Charles University, Prague, 12844, Czech Republic.
Laboratory of Hormonal Regulations in Plants, Institute of Experimental Botany of the Czech Academy of Sciences, Prague, 16502, Czech Republic.
New Phytol. 2024 Mar;241(6):2448-2463. doi: 10.1111/nph.19557. Epub 2024 Feb 2.
The nuclear TIR1/AFB-Aux/IAA auxin pathway plays a crucial role in regulating plant growth and development. Specifically, the IAA17/AXR3 protein participates in Arabidopsis thaliana root development, response to auxin and gravitropism. However, the mechanism by which AXR3 regulates cell elongation is not fully understood. We combined genetical and cell biological tools with transcriptomics and determination of auxin levels and employed live cell imaging and image analysis to address how the auxin response pathways influence the dynamics of root growth. We revealed that manipulations of the TIR1/AFB-Aux/IAA pathway rapidly modulate root cell elongation. While inducible overexpression of the AXR3-1 transcriptional inhibitor accelerated growth, overexpression of the dominant activator form of ARF5/MONOPTEROS inhibited growth. In parallel, AXR3-1 expression caused loss of auxin sensitivity, leading to transcriptional reprogramming, phytohormone signaling imbalance and increased levels of auxin. Furthermore, we demonstrated that AXR3-1 specifically perturbs nuclear auxin signaling, while the rapid auxin response remains functional. Our results shed light on the interplay between the nuclear and cytoplasmic auxin pathways in roots, revealing their partial independence but also the dominant role of the nuclear auxin pathway during the gravitropic response of Arabidopsis thaliana roots.
核 TIR1/AFB-Aux/IAA 生长素途径在调节植物生长和发育中起着至关重要的作用。具体来说,IAA17/AXR3 蛋白参与拟南芥根的发育、对生长素的响应和向重力性。然而,AXR3 调节细胞伸长的机制尚未完全阐明。我们结合遗传学和细胞生物学工具、转录组学以及生长素水平的测定,并采用活细胞成像和图像分析来研究生长素响应途径如何影响根生长的动态。我们揭示了 TIR1/AFB-Aux/IAA 途径的操纵可迅速调节根细胞伸长。虽然诱导过表达转录抑制剂 AXR3-1 会加速生长,但过表达显性激活形式的 ARF5/MONOPTEROS 会抑制生长。平行地,AXR3-1 的表达导致生长素敏感性丧失,导致转录重编程、植物激素信号失衡和生长素水平增加。此外,我们证明 AXR3-1 特异性破坏核内生长素信号,而快速的生长素响应仍然是功能性的。我们的结果阐明了核内和细胞质生长素途径在根中的相互作用,揭示了它们的部分独立性,但也揭示了核内生长素途径在拟南芥根向重力性响应中的主导作用。