Sharma Roohi, Kumar Deepak, Parkirti Parkirti, Singh Anchita, Sharma Alisha, Langeh Kamini, Singh Amandeep, Sharma Manu, Mir Nahida Rehman, Khajuria Anjali, Kapoor Nitika, Bhardwaj Renu, Ohri Puja
Department of Zoology, Guru Nanak Dev University, Amritsar, Punjab, 143005, India.
Department of Botanical and Environmental Sciences, Guru Nanak Dev University, Amritsar, Punjab, 143005, India.
Plant Physiol Biochem. 2025 Oct;227:110084. doi: 10.1016/j.plaphy.2025.110084. Epub 2025 May 26.
Various abiotic and biotic stressors, including water extremes, temperature fluctuations, salinity, and heavy metals, pathogens and diseases significantly reduce global crop yields. Rapid plant responses are essential for adapting and minimizing metabolic losses. In this context, plant transporters (PTs) are essential for modulating stress responses by enabling the passage of diverse molecules and ions through the plasma membrane. Plant transporters play a pivotal role in regulating water and facilitating nutrient uptake, maintaining cellular equilibrium including osmotic regulation, detoxification, biofortification and orchestrating source-to-sink dynamics across different environmental stages in plants. In this review, we delved into recent discoveries concerning diverse transporter families such as ABC, MATE, NRAMP, SWEET, Symporters, STP, KUP, COPT/Ctr, NPF, NRT, PHT, YSL, ZIP and STP. Understanding the functions of these transporters is paramount for elucidating stress tolerance mechanisms and enhancing crop resilience through breeding and gene editing. These specialized plant membrane transporters play a crucial role in securing sustainable economic yields and maintaining high-quality produce, particularly in challenging growth conditions. We explored their contributions to plant robust growth via their crucial role in NPK and secondary metabolite transport. Through an integrated analysis of transporter dynamics during stress, we unveiled the nexus between nutrient management and stress resilience. We also clustered promising techniques that has been achieved to identify PTs such as function-driven screens, phenotype-driven screens and in silico-based approaches and provide a comprehensive overview of these transporters, offering valuable insights for the research community. This review also discusses future prospects for the use of bioinformatic computational tools in constructing signaling networks to improve our understanding of the behavior of transporters under abiotic and biotic stress. In this review, we highlight examples with case studies that illustrated how new technology and computational tools has been utilized in advanced identification and characterization of PTs functions. By strategically manipulating these transporters, we can pave the way for the development of "Plants for the Future."
各种非生物和生物胁迫因素,包括极端水分、温度波动、盐分、重金属、病原体和疾病,显著降低了全球作物产量。植物的快速反应对于适应胁迫并将代谢损失降至最低至关重要。在这种情况下,植物转运蛋白(PTs)通过使各种分子和离子穿过质膜来调节胁迫反应,这一点至关重要。植物转运蛋白在调节水分、促进养分吸收、维持细胞平衡(包括渗透调节、解毒、生物强化)以及协调植物在不同环境阶段的源库动态方面发挥着关键作用。在本综述中,我们深入探讨了有关不同转运蛋白家族的最新发现,如ABC、MATE、NRAMP、SWEET、同向转运体、STP、KUP、COPT/Ctr、NPF、NRT、PHT、YSL、ZIP和STP。了解这些转运蛋白的功能对于阐明胁迫耐受机制以及通过育种和基因编辑提高作物抗逆性至关重要。这些特殊的植物膜转运蛋白在确保可持续的经济产量和维持高品质农产品方面发挥着关键作用,尤其是在具有挑战性的生长条件下。我们通过它们在氮磷钾和次生代谢物运输中的关键作用,探讨了它们对植物稳健生长的贡献。通过对胁迫期间转运蛋白动态的综合分析,我们揭示了养分管理与胁迫恢复力之间的联系。我们还对已实现的用于鉴定植物转运蛋白的有前景的技术进行了分类,如功能驱动筛选、表型驱动筛选和基于计算机的方法,并对这些转运蛋白进行了全面概述,为研究界提供了有价值的见解。本综述还讨论了使用生物信息学计算工具构建信号网络以增进我们对非生物和生物胁迫下转运蛋白行为理解的未来前景。在本综述中,我们通过案例研究突出了一些例子,这些例子说明了新技术和计算工具如何被用于植物转运蛋白功能的高级鉴定和表征。通过策略性地操纵这些转运蛋白,我们可以为“未来植物”的发展铺平道路。