Noble Research Institute, LLC, Ardmore, OK, 73401, USA.
Department of Plant and Microbial Biology, University of Minnesota, St. Paul, MN, 55108, USA.
Nat Commun. 2022 May 11;13(1):2581. doi: 10.1038/s41467-022-30180-3.
Agrobacterium-mediated plant transformation (AMT) is the basis of modern-day plant biotechnology. One major drawback of this technology is the recalcitrance of many plant species/varieties to Agrobacterium infection, most likely caused by elicitation of plant defense responses. Here, we develop a strategy to increase AMT by engineering Agrobacterium tumefaciens to express a type III secretion system (T3SS) from Pseudomonas syringae and individually deliver the P. syringae effectors AvrPto, AvrPtoB, or HopAO1 to suppress host defense responses. Using the engineered Agrobacterium, we demonstrate increase in AMT of wheat, alfalfa and switchgrass by ~250%-400%. We also show that engineered A. tumefaciens expressing a T3SS can deliver a plant protein, histone H2A-1, to enhance AMT. This strategy is of great significance to both basic research and agricultural biotechnology for transient and stable transformation of recalcitrant plant species/varieties and to deliver proteins into plant cells in a non-transgenic manner.
农杆菌介导的植物转化(AMT)是现代植物生物技术的基础。该技术的一个主要缺点是许多植物物种/品种对农杆菌感染的抗性,这很可能是由于植物防御反应的激发。在这里,我们通过工程化根癌农杆菌表达来自丁香假单胞菌的 III 型分泌系统(T3SS)并单独递呈丁香假单胞菌效应物 AvrPto、AvrPtoB 或 HopAO1 来抑制宿主防御反应,从而开发了一种提高 AMT 的策略。使用工程化的根癌农杆菌,我们证明了小麦、紫花苜蓿和柳枝稷的 AMT 增加了约 250%-400%。我们还表明,表达 T3SS 的工程化根癌农杆菌可以递呈植物蛋白组蛋白 H2A-1 以增强 AMT。该策略对于基础研究和农业生物技术都具有重要意义,可用于转化抗性植物物种/品种的瞬时和稳定转化,并以非转基因方式将蛋白质递送到植物细胞中。