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Abstract Diatoms are promising microorganisms to provide sustainable routes for photosynthetic terpenoid production from CO₂, yet their potential for compartmentalized engineering remains largely unexplored. Here, we systematically profiled the biosynthetic capacity of Phaeodactylum tricornutum by targeting representative synthases for hemi, mono, sesqui, and tetraterpenoids to the cytosol, chloroplast, and periplastidial compartment (PPC). This comprehensive analysis revealed that all major prenyl phosphate precursors, DMAPP, GPP, FPP, and GGPP, are accessible in all compartments, including in the PPC and can sustain heterologous flux without major physiological penalties, although production efficiency varies across compartments and product classes. By determining precursor availability, we propose the diatom PPC as a minimal engineerable organelle directly interfaced with a eukaryotic chloroplast. Moreover, we highlight its utility as a unique interface to investigate metabolic exchange between the MVA and MEP pathways. These findings provide a systematic framework for compartment-specific terpenoid engineering in diatoms and open new opportunities for modular pathway assembly and synthetic biology in photosynthetic eukaryotes.
Patwari et al. (Fri,) studied this question.