produces not only -kaurene, which is an intermediate of gibberellin (GA) biosynthesis in flowering plants, but also 16α-hydroxy--kaurane, whose physiological role has not been characterized. The two compounds are biosynthesized from the universal diterpenoid precursor (,,)-geranylgeranyl diphosphate (GGPP) by diterpene synthases, which have been discovered and functionally characterized in . Here, we described the functional characterization of four cytochrome P450 reductases (TwCPR) and one -kaurene oxidase (TwKO). Four s were found to have relatively ubiquitous expression in root, stem, leaf, and flower tissues. Co-expression of both a TwCPR and TwKO in yeast showed that TwCPR3 has a slightly better activity for providing the electrons required for these reactions, indicating that TwCPR3 is more suitable for use in the functional analysis of other cytochrome P450 monooxygenases. TwKO catalyzed the three-step oxidation of the C4α methyl of the tetracyclic diterpene intermediate -kaurene to form -kaurenoic acid as an early step in GA biosynthesis. Notably, TwKO could also convert 16α-hydroxy--kaurane to 16α-hydroxy--kaurenoic acid, indicating an important function of 16α-hydroxy--kaurane in the anti-HIV principle tripterifordin biosynthetic pathway . Homology modeling and molecular docking were used to investigate the unknown crucial active amino acid residue involved in the catalytic reaction of TwKO, and one key residue (Leu387) contributed to the formation of 16α-hydroxy--kaurenoic acid, most likely by forming hydrogen bonds with the hydroxyl group (-OH) of 16α-hydroxy--kaurane, which laid the basis for further investigation of the multifunctional nature of KO catalysis. Also, our findings paved the way for the complete biosynthesis of the anti-HIV principle tripterifordin.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5645531PMC
http://dx.doi.org/10.3389/fpls.2017.01756DOI Listing

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