Application of Gene Targeting to Designed Mutation Breeding of High-Tryptophan Rice

Author:

Saika Hiroaki1,Oikawa Akira1,Matsuda Fumio1,Onodera Haruko1,Saito Kazuki1,Toki Seiichi1

Affiliation:

1. Plant Genome Engineering Research Unit, Agrogenomics Research Center, National Institute of Agrobiological Sciences, Tsukuba, Ibaraki 305–8602, Japan (H.S., H.O., S.T.); RIKEN Plant Science Center, Yokohama, Kanagawa 230–0045, Japan (A.O., F.M., K.S.); Graduate School of Pharmaceutical Sciences, Chiba University, Inage-ku, Chiba 263–8522, Japan (K.S.); Kihara Institute of Biological Research, Yok

Abstract

Abstract Site-directed mutagenesis via gene targeting (GT) based on homologous recombination is the ultimate mutation breeding technology because it enables useful information acquired from structural- and computational-based protein engineering to be applied directly to molecular breeding, including metabolic engineering, of crops. Here, we employed this rationale to introduce precise mutations in OASA2—an α-subunit of anthranilate synthase that is a key enzyme of tryptophan (Trp) biosynthesis in rice (Oryza sativa)—via GT, with subsequent selection of GT cells using a Trp analog. The expression level of OASA2 in plants homozygous and heterozygous for modified OASA2 was similar to that of nontransformants, suggesting that OASA2 transcription in GT plants was controlled in the same manner as endogenous OASA2, and that GT could lead to a lower risk of gene silencing than in conventional overexpression approaches. Moreover, we showed that enzymatic properties deduced from protein engineering or in vitro analysis could be reproduced in GT plants as evidenced by Trp accumulation levels. Interestingly, mature seeds of homozygous GT plants accumulated Trp levels 230-fold higher than in nontransformants without any apparent morphological or developmental changes. Thus, we have succeeded in producing a novel rice plant of great potential nutritional benefit for both man and livestock that could not have been selected using conventional mutagenesis approaches. Our results demonstrate the effectiveness of directed crop improvement by combining precision mutagenesis via GT with a knowledge of protein engineering.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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