Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 4 de 4
Filter
Add more filters











Language
Publication year range
1.
Genet Mol Biol ; 33(4): 703-13, 2010 Oct.
Article in English | MEDLINE | ID: mdl-21637580

ABSTRACT

Cannabinoids, flavonoids, and stilbenoids have been identified in the annual dioecious plant Cannabis sativa L. Of these, the cannabinoids are the best known group of this plant's natural products. Polyketide synthases (PKSs) are responsible for the biosynthesis of diverse secondary metabolites, including flavonoids and stilbenoids. Biosynthetically, the cannabinoids are polyketide substituted with terpenoid moiety. Using an RT-PCR homology search, PKS cDNAs were isolated from cannabis plants. The deduced amino acid sequences showed 51%-73% identity to other CHS/STS type sequences of the PKS family. Further, phylogenetic analysis revealed that these PKS cDNAs grouped with other non-chalcone-producing PKSs. Homology modeling analysis of these cannabis PKSs predicts a 3D overall fold, similar to alfalfa CHS2, with small steric differences on the residues that shape the active site of the cannabis PKSs.

2.
Genet. mol. biol ; Genet. mol. biol;33(4): 633-636, 2010. ilus, tab
Article in English | LILACS | ID: lil-571517

ABSTRACT

Cannabinoids, flavonoids, and stilbenoids have been identified in the annual dioecious plant Cannabis sativa L. Of these, the cannabinoids are the best known group of this plant's natural products. Polyketide synthases (PKSs) are responsible for the biosynthesis of diverse secondary metabolites, including flavonoids and stilbenoids. Biosynthetically, the cannabinoids are polyketide substituted with terpenoid moiety. Using an RT-PCR homology search, PKS cDNAs were isolated from cannabis plants. The deduced amino acid sequences showed 51 percent-73 percent identity to other CHS/STS type sequences of the PKS family. Further, phylogenetic analysis revealed that these PKS cDNAs grouped with other non-chalcone-producing PKSs. Homology modeling analysis of these cannabis PKSs predicts a 3D overall fold, similar to alfalfa CHS2, with small steric differences on the residues that shape the active site of the cannabis PKSs.

3.
Plant Physiol Biochem ; 47(3): 167-74, 2009 Mar.
Article in English | MEDLINE | ID: mdl-19071029

ABSTRACT

The polyketide synthases (PKSs) are condensing enzymes which form a myriad of polyketide compounds. Several PKSs have been identified and studied in plants. This mini-review summarizes what is known about plant PKSs and some of their aspects such as specificity, reaction mechanisms, structure, as well as their possible evolution are highlighted.


Subject(s)
Plants/enzymology , Polyketide Synthases/metabolism , Polyketide Synthases/chemistry , Protein Conformation
4.
Plant Cell Physiol ; 43(12): 1502-9, 2002 Dec.
Article in English | MEDLINE | ID: mdl-12514247

ABSTRACT

Pectin administered to Uncaria tomentosa cell suspension cultures, was found to increase the production of triterpene acids (ursolic and oleanolic acid), however, neither growth nor sterol accumulation were affected. Cell cultures showed that pectin treatment caused a rapid threefold increase in the activities of enzymes involved in the biosynthesis of C(5) and C(30 )isoprenoid, such as isopentenyl diphosphate isomerase and squalene synthase. The activity of a farnesyl diphosphatase, which could divert the flux of farnesyl diphosphate to farnesol, was two times lower in elicited than in control cells. Elicited cells also transformed more rapidly a higher percentage of [5-(3)H]mevalonic acid into triterpene acids. Interestingly, addition of terbinafine, an inhibitor of squalene epoxidase, to elicited cell cultures inhibited sterol accumulation while triterpene production was not inhibited. These results suggest that in U. tomentosa cells, both the previously mentioned enzymes and those involved in squalene 2,3-oxide formation play an important regulatory role in the biosynthesis of sterols and triterpenes.


Subject(s)
Cat's Claw/metabolism , Phytosterols/biosynthesis , Triterpenes/metabolism , Carbon-Carbon Double Bond Isomerases/drug effects , Carbon-Carbon Double Bond Isomerases/metabolism , Cat's Claw/cytology , Cat's Claw/drug effects , Cells, Cultured , Enzyme Inhibitors/pharmacology , Farnesyl-Diphosphate Farnesyltransferase/drug effects , Farnesyl-Diphosphate Farnesyltransferase/metabolism , Hemiterpenes , Mevalonic Acid/metabolism , Naphthalenes/pharmacology , Oleanolic Acid/metabolism , Oxygenases/drug effects , Pectins/pharmacology , Phosphoric Monoester Hydrolases/drug effects , Phosphoric Monoester Hydrolases/metabolism , Sitosterols/antagonists & inhibitors , Squalene/antagonists & inhibitors , Squalene Monooxygenase , Terbinafine , Tritium/metabolism , Ursolic Acid
SELECTION OF CITATIONS
SEARCH DETAIL