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1.
Plant Biotechnol J ; 14(1): 169-76, 2016 Jan.
Article in English | MEDLINE | ID: mdl-25846201

ABSTRACT

Cold storage of potato tubers is commonly used to reduce sprouting and extend postharvest shelf life. However, cold temperature stimulates the accumulation of reducing sugars in potato tubers. Upon high-temperature processing, these reducing sugars react with free amino acids, resulting in brown, bitter-tasting products and elevated levels of acrylamide--a potential carcinogen. To minimize the accumulation of reducing sugars, RNA interference (RNAi) technology was used to silence the vacuolar invertase gene (VInv), which encodes a protein that breaks down sucrose to glucose and fructose. Because RNAi often results in incomplete gene silencing and requires the plant to be transgenic, here we used transcription activator-like effector nucleases (TALENs) to knockout VInv within the commercial potato variety, Ranger Russet. We isolated 18 plants containing mutations in at least one VInv allele, and five of these plants had mutations in all VInv alleles. Tubers from full VInv-knockout plants had undetectable levels of reducing sugars, and processed chips contained reduced levels of acrylamide and were lightly coloured. Furthermore, seven of the 18 modified plant lines appeared to contain no TALEN DNA insertions in the potato genome. These results provide a framework for using TALENs to quickly improve traits in commercially relevant autotetraploid potato lines.


Subject(s)
Cold Temperature , Cryopreservation/methods , Gene Knockout Techniques , Gene Targeting , Solanum tuberosum/genetics , Acrylamide/analysis , Base Sequence , Carbohydrates/analysis , Genes, Plant , Mutation/genetics , Plants, Genetically Modified , Transcription Activator-Like Effector Nucleases/metabolism , Vacuoles/enzymology , beta-Fructofuranosidase/genetics
2.
Plant Biotechnol J ; 14(2): 533-42, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26011187

ABSTRACT

Biopharmaceutical glycoproteins produced in plants carry N-glycans with plant-specific residues core α(1,3)-fucose and ß(1,2)-xylose, which can significantly impact the activity, stability and immunogenicity of biopharmaceuticals. In this study, we have employed sequence-specific transcription activator-like effector nucleases (TALENs) to knock out two α(1,3)-fucosyltransferase (FucT) and the two ß(1,2)-xylosyltransferase (XylT) genes within Nicotiana benthamiana to generate plants with improved capacity to produce glycoproteins devoid of plant-specific residues. Among plants regenerated from N. benthamiana protoplasts transformed with TALENs targeting either the FucT or XylT genes, 50% (80 of 160) and 73% (94 of 129) had mutations in at least one FucT or XylT allele, respectively. Among plants regenerated from protoplasts transformed with both TALEN pairs, 17% (18 of 105) had mutations in all four gene targets, and 3% (3 of 105) plants had mutations in all eight alleles comprising both gene families; these mutations were transmitted to the next generation. Endogenous proteins expressed in the complete knockout line had N-glycans that lacked ß(1,2)-xylose and had a significant reduction in core α(1,3)-fucose levels (40% of wild type). A similar phenotype was observed in the N-glycans of a recombinant rituximab antibody transiently expressed in the homozygous mutant plants. More importantly, the most desirable glycoform, one lacking both core α(1,3)-fucose and ß(1,2)-xylose residues, increased in the antibody from 2% when produced in the wild-type line to 55% in the mutant line. These results demonstrate the power of TALENs for multiplexed gene editing. Furthermore, the mutant N. benthamiana lines provide a valuable platform for producing highly potent biopharmaceutical products.


Subject(s)
Antibodies, Monoclonal/biosynthesis , Gene Editing/methods , Genetic Engineering/methods , Nicotiana/genetics , Polysaccharides/metabolism , Base Sequence , Fucose/metabolism , Glycosylation , Mutation/genetics , Plant Proteins/metabolism , Plants, Genetically Modified , Polysaccharides/chemistry , Protoplasts/metabolism , Rituximab/biosynthesis , Transcription Activator-Like Effector Nucleases/metabolism , Transformation, Genetic , Xylose/metabolism
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