Modular Pathway Engineering
of Diterpenoid Synthases
and the Mevalonic Acid Pathway for Miltiradiene Production
Posted on 2012-02-15 - 00:00
Microbial production can be advantageous over the extraction
of
phytoterpenoids from natural plant sources, but it remains challenging
to rationally and rapidly access efficient pathway variants. Previous
engineering attempts mainly focused on the mevalonic acid (MVA) or
methyl-d-erythritol phosphate (MEP) pathways responsible
for the generation of precursors for terpenoids biosynthesis, and
potential interactions between diterpenoids synthases were unexplored.
Miltiradiene, the product of the stepwise conversion of (E,E,E)-geranylgeranyl diphosphate
(GGPP) catalyzed by diterpene synthases SmCPS and SmKSL, has recently
been identified as the precursor to tanshionones, a group of abietane-type
norditerpenoids rich in the Chinese medicinal herb Salvia miltiorrhiza. Here, we present the modular
pathway engineering (MOPE) strategy and its application for rapid
assembling synthetic miltiradiene pathways in the yeast Saccharomyces cerevisiae. We predicted and analyzed
the molecular interactions between SmCPS and SmKSL, and engineered
their active sites into close proximity for enhanced metabolic flux
channeling to miltiradiene biosynthesis by constructing protein fusions.
We show that the fusion of SmCPS and SmKSL, as well as the fusion
of BTS1 (GGPP synthase) and ERG20 (farnesyl diphosphate synthase),
led to significantly improved miltiradiene production and reduced
byproduct accumulation. The MOPE strategy facilitated a comprehensive
evaluation of pathway variants involving multiple genes, and, as a
result, our best pathway with the diploid strain YJ2X reached miltiradiene
titer of 365 mg/L in a 15-L bioreactor culture. These results suggest
that terpenoids synthases and the precursor supplying enzymes should
be engineered systematically to enable an efficient microbial production
of phytoterpenoids.
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Zhou, Yongjin
J.; Gao, Wei; Rong, Qixian; Jin, Guojie; Chu, Huiying; Liu, Wujun; et al. (2016). Modular Pathway Engineering
of Diterpenoid Synthases
and the Mevalonic Acid Pathway for Miltiradiene Production. ACS Publications. Collection. https://doi.org/10.1021/ja2114486Â