Error-prone PCR mutation of Ls-EPSPS gene from Liriope spicata conferring to its enhanced glyphosate-resistance

Pestic Biochem Physiol. 2017 Sep:141:90-95. doi: 10.1016/j.pestbp.2016.12.004. Epub 2017 Jan 13.

Abstract

Liriope spicata (Thunb.) Lour has a unique LsEPSPS structure contributing to the highest-ever-recognized natural glyphosate tolerance. The transformed LsEPSPS confers increased glyphosate resistance to E. coli and A. thaliana. However, the increased glyphosate-resistance level is not high enough to be of commercial value. Therefore, LsEPSPS was subjected to error-prone PCR to screen mutant EPSPS genes capable of endowing higher resistance levels. A mutant designated as ELs-EPSPS having five mutated amino acids (37Val, 67Asn, 277Ser, 351Gly and 422Gly) was selected for its ability to confer improved resistance to glyphosate. Expression of ELs-EPSPS in recombinant E. coli BL21 (DE3) strains enhanced resistance to glyphosate in comparison to both the LsEPSPS-transformed and -untransformed controls. Furthermore, transgenic ELs-EPSPS A. thaliana was about 5.4 fold and 2-fold resistance to glyphosate compared with the wild-type and the Ls-EPSPS-transgenic plants, respectively. Therefore, the mutated ELs-EPSPS gene has potential value for has potential for the development of glyphosate-resistant crops.

Keywords: 3D structure; Crop transformation; EPSPS; Error-prone PCR; Plant-sourced.

MeSH terms

  • Glycine / analogs & derivatives*
  • Glycine / pharmacology
  • Glyphosate
  • Herbicide Resistance / genetics
  • Liriope Plant / drug effects
  • Liriope Plant / genetics*
  • Mutation
  • Plant Proteins / genetics
  • Plants, Genetically Modified / drug effects
  • Plants, Genetically Modified / genetics
  • Polymerase Chain Reaction / methods*

Substances

  • Plant Proteins
  • Glycine