Division of Plant and Crop Sciences, School of Biosciences, University of Nottingham, Sutton Bonington Campus, Loughborough, LE12 5RD, UK.
Department of Biology, University of Fribourg, Fribourg CH-1700, Switzerland.
Plant Cell. 2022 May 24;34(6):2309-2327. doi: 10.1093/plcell/koac086.
Members of the B family of membrane-bound ATP-binding cassette (ABC) transporters represent key components of the auxin efflux machinery in plants. Over the last two decades, experimental studies have shown that modifying ATP-binding cassette sub-family B (ABCB) expression affects auxin distribution and plant phenotypes. However, precisely how ABCB proteins transport auxin in conjunction with the more widely studied family of PIN-formed (PIN) auxin efflux transporters is unclear, and studies using heterologous systems have produced conflicting results. Here, we integrate ABCB localization data into a multicellular model of auxin transport in the Arabidopsis thaliana root tip to predict how ABCB-mediated auxin transport impacts organ-scale auxin distribution. We use our model to test five potential ABCB-PIN regulatory interactions, simulating the auxin dynamics for each interaction and quantitatively comparing the predictions with experimental images of the DII-VENUS auxin reporter in wild-type and abcb single and double loss-of-function mutants. Only specific ABCB-PIN regulatory interactions result in predictions that recreate the experimentally observed DII-VENUS distributions and long-distance auxin transport. Our results suggest that ABCBs enable auxin efflux independently of PINs; however, PIN-mediated auxin efflux is predominantly through a co-dependent efflux where co-localized with ABCBs.
膜结合 ATP 结合盒(ABC)转运蛋白家族 B 的成员是植物中生长素外排机制的关键组成部分。在过去的二十年中,实验研究表明,改变 ABCB 表达会影响生长素的分布和植物表型。然而,ABCB 蛋白如何与研究更为广泛的 PIN 形成(PIN)生长素外排转运蛋白一起运输生长素尚不清楚,并且使用异源系统的研究产生了相互矛盾的结果。在这里,我们将 ABCB 定位数据整合到拟南芥根尖生长素运输的多细胞模型中,以预测 ABCB 介导的生长素运输如何影响器官尺度上的生长素分布。我们使用我们的模型来测试五个潜在的 ABCB-PIN 调节相互作用,模拟每个相互作用的生长素动力学,并将预测与野生型和 abcb 单和双功能丧失突变体中 DII-VENUS 生长素报告基因的实验图像进行定量比较。只有特定的 ABCB-PIN 调节相互作用才能产生与实验观察到的 DII-VENUS 分布和长距离生长素运输相吻合的预测。我们的结果表明,ABCB 能够独立于 PIN 进行生长素外排;然而,PIN 介导的生长素外排主要是通过共依赖性外排来实现的,与 ABCB 共定位。