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1.
Nature ; 459(7245): 437-41, 2009 May 21.
Article in English | MEDLINE | ID: mdl-19404259

ABSTRACT

Agricultural biotechnology is limited by the inefficiencies of conventional random mutagenesis and transgenesis. Because targeted genome modification in plants has been intractable, plant trait engineering remains a laborious, time-consuming and unpredictable undertaking. Here we report a broadly applicable, versatile solution to this problem: the use of designed zinc-finger nucleases (ZFNs) that induce a double-stranded break at their target locus. We describe the use of ZFNs to modify endogenous loci in plants of the crop species Zea mays. We show that simultaneous expression of ZFNs and delivery of a simple heterologous donor molecule leads to precise targeted addition of an herbicide-tolerance gene at the intended locus in a significant number of isolated events. ZFN-modified maize plants faithfully transmit these genetic changes to the next generation. Insertional disruption of one target locus, IPK1, results in both herbicide tolerance and the expected alteration of the inositol phosphate profile in developing seeds. ZFNs can be used in any plant species amenable to DNA delivery; our results therefore establish a new strategy for plant genetic manipulation in basic science and agricultural applications.


Subject(s)
Biotechnology/methods , Deoxyribonucleases/chemistry , Deoxyribonucleases/metabolism , Gene Targeting/methods , Genome, Plant/genetics , Zea mays/genetics , Zinc Fingers , Deoxyribonucleases/genetics , Food, Genetically Modified , Genes, Plant/genetics , Herbicide Resistance/genetics , Herbicides/pharmacology , Heredity , Inositol Phosphates/metabolism , Mutagenesis, Site-Directed/methods , Plants, Genetically Modified , Recombination, Genetic/genetics , Reproducibility of Results
2.
Plant Physiol ; 144(3): 1278-91, 2007 Jul.
Article in English | MEDLINE | ID: mdl-17535825

ABSTRACT

Inositol 1,3,4,5,6-pentakisphosphate 2-kinase, an enzyme encoded by the gene IPK1, catalyzes the terminal step in the phytic acid biosynthetic pathway. We report here the isolation and characterization of IPK1 cDNA and genomic clones from maize (Zea mays). DNA Southern-blot analysis revealed that ZmIPK1 in the maize genome constitutes a small gene family with two members. Two nearly identical ZmIPK1 paralogs, designated as ZmIPK1A and ZmIPK1B, were identified. The transcripts of ZmIPK1A were detected in various maize tissues, including leaves, silks, immature ears, seeds at 12 d after pollination, midstage endosperm, and maturing embryos. However, the transcripts of ZmIPK1B were exclusively detected in roots. A variety of alternative splicing products of ZmIPK1A were discovered in maize leaves and seeds. These products are derived from alternative acceptor sites, alternative donor sites, and retained introns in the transcripts. Consequently, up to 50% of the ZmIPK1A transcripts in maize seeds and leaves have an interrupted open reading frame. In contrast, only one type of splicing product of ZmIPK1B was detected in roots. When expressed in Escherichia coli and subsequently purified, the ZmIPK1 enzyme catalyzes the conversion of myo-inositol 1,3,4,5,6-pentakisphosphate to phytic acid. In addition, it is also capable of catalyzing the phosphorylation of myo-inositol 1,4,6-trisphosphate, myo-inositol 1,4,5,6-tetrakisphosphate, and myo-inositol 3,4,5,6-tetrakisphosphate. Nuclear magnetic resonance spectroscopy analysis indicates that the phosphorylation product of myo-inositol 1,4,6-trisphosphate is inositol 1,2,4,6-tetrakisphosphate. Kinetic studies showed that the K(m) for ZmIPK1 using myo-inositol 1,3,4,5,6-pentakisphosphate as a substrate is 119 microm with a V(max) at 625 nmol/min/mg. These data describing the tissue-specific accumulation and alternative splicing of the transcripts from two nearly identical ZmIPK1 paralogs suggest that maize has a highly sophisticated regulatory mechanism controlling phytic acid biosynthesis.


Subject(s)
Phosphotransferases (Alcohol Group Acceptor)/metabolism , Phytic Acid/biosynthesis , Plant Leaves/enzymology , Seeds/enzymology , Zea mays/enzymology , Alternative Splicing , Amino Acid Sequence , Base Sequence , Kinetics , Magnetic Resonance Spectroscopy , Molecular Sequence Data , Phosphotransferases (Alcohol Group Acceptor)/genetics , Plant Roots/enzymology , Sequence Analysis, DNA , Substrate Specificity , Zea mays/genetics
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