An improved ternary vector system for Agrobacterium-mediated rapid maize transformation

Plant Mol Biol. 2018 May;97(1-2):187-200. doi: 10.1007/s11103-018-0732-y. Epub 2018 Apr 23.

Abstract

A simple and versatile ternary vector system that utilizes improved accessory plasmids for rapid maize transformation is described. This system facilitates high-throughput vector construction and plant transformation. The super binary plasmid pSB1 is a mainstay of maize transformation. However, the large size of the base vector makes it challenging to clone, the process of co-integration is cumbersome and inefficient, and some Agrobacterium strains are known to give rise to spontaneous mutants resistant to tetracycline. These limitations present substantial barriers to high throughput vector construction. Here we describe a smaller, simpler and versatile ternary vector system for maize transformation that utilizes improved accessory plasmids requiring no co-integration step. In addition, the newly described accessory plasmids have restored virulence genes found to be defective in pSB1, as well as added virulence genes. Testing of different configurations of the accessory plasmids in combination with T-DNA binary vector as ternary vectors nearly doubles both the raw transformation frequency and the number of transformation events of usable quality in difficult-to-transform maize inbreds. The newly described ternary vectors enabled the development of a rapid maize transformation method for elite inbreds. This vector system facilitated screening different origins of replication on the accessory plasmid and T-DNA vector, and four combinations were identified that have high (86-103%) raw transformation frequency in an elite maize inbred.

Keywords: Accessory plasmids; Agrobacterium; Babyboom; Origins of replication; Rapid maize transformation; Ternary vector; Wuschel; pVIR plasmids.

MeSH terms

  • Agrobacterium tumefaciens / genetics
  • DNA, Bacterial
  • DNA, Plant
  • Genetic Vectors*
  • Plasmids
  • Replication Origin
  • Transformation, Genetic*
  • Zea mays / genetics*

Substances

  • DNA, Bacterial
  • DNA, Plant
  • T-DNA