Manipulating flux through plant metabolic pathways

scientific article

Manipulating flux through plant metabolic pathways is …
instance of (P31):
review articleQ7318358
scholarly articleQ13442814

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P356DOI10.1016/S1369-5266(98)80021-6
P698PubMed publication ID10066577

P2093author name stringKinney AJ
P2860cites workTransgenic canola and soybean seeds with increased lysine.Q54610772
Modification of seed oil content and acyl composition in the brassicaceae by expression of a yeast sn-2 acyltransferase geneQ27936776
Taxol biosynthesis: an updateQ38556559
Manipulating metabolic partitioning in transgenic plantsQ41004980
Metabolic engineering: prospects for crop improvement through the genetic manipulation of phenylpropanoid biosynthesis and defense responses--a reviewQ41256915
Finite change analysis of glycolytic intermediates in tuber tissue of lines of transgenic potato (Solanum tuberosum) overexpressing phosphofructokinaseQ41817683
Accumulation of ricinoleic, lesquerolic, and densipolic acids in seeds of transgenic Arabidopsis plants that express a fatty acyl hydroxylase cDNA from castor beanQ46170266
P433issue2
P921main subjectmetabolic pathwayQ68685
P304page(s)173-178
P577publication date1998-04-01
P1433published inCurrent Opinion in Plant BiologyQ15756095
P1476titleManipulating flux through plant metabolic pathways
P478volume1

Reverse relations

cites work (P2860)
Q37270375Application of metabolic engineering to the production of scopolamine.
Q52036399Assuring the safety of genetically modified (GM) foods: the importance of an holistic, integrative approach.
Q43735666Carbon partitioning to cellulose synthesis
Q37988475Current approaches toward production of secondary plant metabolites
Q33935000Enhanced synthesis of choline and glycine betaine in transgenic tobacco plants that overexpress phosphoethanolamine N-methyltransferase
Q43905220Expressing creatine kinase in transgenic tobacco--a first step towards introducing an energy buffering system in plants
Q44102655Expression of a heterologous S-adenosylmethionine decarboxylase cDNA in plants demonstrates that changes in S-adenosyl-L-methionine decarboxylase activity determine levels of the higher polyamines spermidine and spermine
Q40738496Genetic manipulation of the metabolism of polyamines in poplar cells. The regulation of putrescine catabolism
Q44767303High-oleate peanut mutants result from a MITE insertion into the FAD2 gene
Q28141924Production of novel oils in plants
Q28362478Transgenic manipulation of the metabolism of polyamines in poplar cells