PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 21, 2026Journal of Biotechnology4 citationsOpen Access

Production of the anticancer drug intermediate strictosidinic acid in engineered yeast

View Full Paper
BSBenedikt SeligmannSLShenyu LiuMHMai Huynh

Key Points

  • The aim is to produce strictosidinic acid as an anticancer drug intermediate through metabolic engineering of yeast.
  • Created a basic yeast strain that produces strictosidine from glucose and tryptophan.
  • Optimized the strain by adding steroid binding protein and a second copy of a key gene, increasing strictosidine yield.
  • Reprogrammed the strain through genomic modifications to produce strictosidinic acid.
  • Conducted fed-batch cultivation in shake flasks to maximize acid production.
  • Achieved a maximum production of strictosidine at 843 mg/L in yeast.
  • Produced strictosidinic acid at levels of 548 mg/L after 168 hours.
  • Identified a new monoterpene shunt product that affects the pathway flux.

Abstract

Strictosidinic acid is a key intermediate in the biosynthetic pathway of camptothecin, a plant alkaloid that serves as a precursor for semisynthetic anticancer drugs. At the moment, camptothecin is mainly sourced from trees, causing limited supply and high costs. Improving access to strictosidinic acid would help to elucidate yet unknown biosynthetic steps downstream of this intermediate and in the long term enable sustainable production of camptothecin in heterologous hosts. While structurally similar to the common monoterpene indole alkaloid precursor strictosidine, strictosidinic acid has not been the target of metabolic engineering efforts before. Here, we present a strategy to produce strictosidinic acid from glucose and tryptophan in engineered yeast. First, we create a basic strain that generates 75 mg/L strictosidine. We further optimise this strain by introducing a membrane steroid binding protein and a second copy of the farnesyl pyrophosphate synthase mutant gene ERG20 WW , boosting strictosidine levels by 5.5-fold to 398 mg/L. At these higher titres, a previously overlooked shunt product, (2 E ,6 E )-2,6-dimethylocta-2,6-dienedioic acid (DOA), was identified that diverts flux from the pathway. Lastly, we reprogrammed our strictosidine strain to strictosidinic acid production by four genomic modifications. Final fed-batch cultivation in shake flasks resulted in 843 mg/L strictosidine or 548 mg/L strictosidinic acid, respectively, after 168 hours. Taken together, our work now grants access to strictosidinic acid by metabolic engineering, while revealing strategies to further enhance the production of strictosidine and related monoterpene indole alkaloids. These findings will help to produce plant alkaloids in microbial cell factories in the future at scale. • Improved production of the common alkaloid strictosidine up to 843 mg/L • Identified a previously unknown monoterpene shunt product • First production of anticancer drug intermediate strictosidinic acid in yeast

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Seligmann et al. (2026) studied this question.

synapsesocial.com/papers/69be34886e48c4981c672b25https://doi.org/10.1016/j.jbiotec.2026.03.017
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Complete biosynthesis of QS-21 in engineered yeast2024 · 137 citations
  2. 2Irinotecan, a key chemotherapeutic drug for metastatic colorectal cancer2015 · 325 citations
  3. 3High-efficiency yeast transformation using the LiAc/SS carrier DNA/PEG method2007 · 3,004 citations
  4. 4The alcohol dehydrogenases ofSaccharomyces cerevisiae: a comprehensive review2008 · 277 citations
  5. 5An alternative route to cyclic terpenes by reductive cyclization in iridoid biosynthesis2012 · 338 citations