Hi Fidelity Genetics, Durham, NC USA.
Duke University, Department of Biology, Durham, NC, USA and Howard Hughes Medical Institute (HHMI).
Plant Physiol. 2021 Nov 3;187(3):1117-1130. doi: 10.1093/plphys/kiab352.
Optimizing root system architecture offers a promising approach to developing stress tolerant cultivars in the face of climate change, as root systems are critical for water and nutrient uptake as well as mechanical stability. However, breeding for optimal root system architecture has been hindered by the difficulty in measuring root growth in the field. Here, we describe the RootTracker, a technology that employs impedance touch sensors to monitor in-field root growth over time. Configured in a cylindrical, window shutter-like fashion around a planted seed, 264 electrodes are individually charged multiple times over the course of an experiment. Signature changes in the measured capacitance and resistance readings indicate when a root has touched or grown close to an electrode. Using the RootTracker, we have measured root system dynamics of commercial maize (Zea mays) hybrids growing in both typical Midwest field conditions and under different irrigation regimes. We observed rapid responses of root growth to water deficits and found evidence for a "priming response" in which an early water deficit causes more and deeper roots to grow at later time periods. Genotypic variation among hybrid maize lines in their root growth in response to drought indicated a potential to breed for root systems adapted for different environments. Thus, the RootTracker is able to capture changes in root growth over time in response to environmental perturbations.
优化根系结构为应对气候变化培育具有抗逆性品种提供了一种很有前景的方法,因为根系对于水分和养分的吸收以及机械稳定性至关重要。然而,由于在田间测量根系生长的难度,培育最佳根系结构的工作受到了阻碍。在这里,我们描述了 RootTracker,这是一种利用阻抗式触摸传感器来监测田间根系随时间生长的技术。该技术以圆柱形、百叶窗式的方式围绕种植的种子配置,264 个电极在实验过程中多次单独充电。测量电容和电阻读数的特征变化表明,当根系触及或靠近电极时。使用 RootTracker,我们已经测量了在典型的中西部田间条件下和不同灌溉制度下生长的商业玉米(Zea mays)杂交种的根系系统动态。我们观察到根系生长对水分亏缺的快速响应,并发现了一种“启动响应”的证据,即在早期水分亏缺导致更多和更深的根系在后期生长。不同杂交玉米品种在应对干旱时的根系生长的基因型变异表明,有可能培育出适应不同环境的根系系统。因此,RootTracker 能够捕捉到根系生长随时间对环境干扰的变化。