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Spatial compartmentalization in eukaryotic cell factories often constrains the efficiency of metabolic pathways. Here, we systematically mapped the subcellular localization of nine core enzymes in the α-santalene biosynthetic pathway of Saccharomyces cerevisiae, identifying metabolic bottlenecks associated with nuclear and endoplasmic reticulum (ER) localization. Through rational spatial engineering, including bioinformatically guided HMG1 truncation to achieve ER release and nuclear export signal (NES) tagging of key enzymes, we successfully rewired enzyme localization to enhance pathway flux. Coupled with promoter engineering to downregulate ERG9, addition-copy integration for IDI1 and ERG20 overexpression, and targeted medium optimization to improve cellular osmotolerance, we achieved substantial synergistic effects on production, leading to a 132-fold increase in α-santalene titer, reaching 568.59 mg/L in fed-batch fermentation. Our results demonstrate that combining subcellular localization engineering with classic metabolic and process optimization offers a robust and generalizable strategy for high-level terpenoid biosynthesis in S. cerevisiae. This approach not only advances the performance of S. cerevisiae cell factories but also holds promise for broader application across other yeast species and eukaryotic microbial hosts.
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http://dx.doi.org/10.1016/j.biortech.2025.133027 | DOI Listing |
Small Methods
September 2025
State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.
Electrocatalytic reactions play a pivotal role in advancing sustainable energy technologies, particularly in the conversion of renewable resources into clean fuels. Achieving high-efficiency and durable electrocatalysts is essential for overcoming kinetic barriers in key processes. In this context, fullerenes have emerged as promising building blocks for catalyst design, owing to their unique structural and electronic characteristics.
View Article and Find Full Text PDFSmall
September 2025
Beijing Key Laboratory for Bioengineering and Sensing Technology, School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing, 100083, China.
Engineered bionanomaterials, natural or engineered nano-scale biomaterials used in biomedical applications such as liposomes and polymer nanoparticles, have emerged as transformative platforms for targeted nucleic acid drug delivery, addressing critical challenges in precision therapeutics. These advanced biomaterials leverage their inherent biocompatibility, tunable surface chemistry, and nano-scale dimensions to overcome biological barriers while protecting nucleic acid payloads from enzymatic degradation. Recent breakthroughs in material functionalization strategies have enabled unprecedented spatial control, allowing precise targeting of specific tissues, cellular compartments, and even subcellular organelles.
View Article and Find Full Text PDFInterdiscip Sci
September 2025
State Key Laboratory of Microbial Metabolism, Shanghai-Islamabad-Belgrade Joint Innovation Center on Antibacterial Resistances, Joint International Research Laboratory of Metabolic & Developmental Sciences, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, 200240, C
Protein-protein interactions (PPIs) are essential therapeutic targets, yet their large and relatively flat interfaces hinder the development of small-molecule inhibitors. Traditional computational approaches rely heavily on existing chemical libraries or expert heuristics, restricting exploration of novel chemical space. To address these challenges, we present Hot2Mol, a generative deep learning framework for the de novo design of target-specific and drug-like PPI inhibitors.
View Article and Find Full Text PDFNat Commun
September 2025
Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, Sendai, Miyagi, Japan.
Strain-induced crystallisation in elastomers markedly increases their elastic moduli and rupture resistance. However, the mechanisms underlying this self-reinforcement in filled elastomers remain unclear owing to the nanoscale nature of the involved processes. Herein, isoprene rubber with/without silica nanoparticles is stretched to strains of >5 and concomitantly imaged via in situ transmission electron microscopy.
View Article and Find Full Text PDFActa Pharm Sin B
August 2025
State Key Laboratory of Natural Medicines, China Pharmaceutical University, Nanjing 211198, China.
Over the past few decades, tumor immunotherapy has revolutionized the landscape of cancer clinical treatment. There is a flourishing development of combination strategies to improve the anti-tumor efficacy of mono-immunotherapy. However, instead of a straightforward combination of multiple therapeutics, it is more preferable to pursue a synergistic effect by designing rational combinations as well as administration strategies, which are based on a comprehensive understanding of the physiological and pathological features.
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