The global emergence of vancomycin-resistant Gram-positive pathogens underscores the urgent need for efficient production of novel lipoglycopeptide antibiotics. Dalbavancin, a last-resort therapeutic agent, relies on its key biosynthetic precursor A40926B0, whose industrial manufacture is severely limited by the low yield of wild-type Nonomuraea gerenzanensis and inefficient genetic tools for this rare actinomycete. Here, we developed a high-efficiency CRISPR/AsCas12f1 genome editing system and applied systematic metabolic engineering to boost A40926B0 biosynthesis. First, conjugation conditions were optimized to elevate the transfer efficiency in N. gerenzanensis D11. The hypercompact AsCas12f1 nuclease showed markedly lower cytotoxicity than SpCas9 and enabled 100% gene deletion efficiency with preferred PAMs (TTTG, CTTG, GTTG). Second, we strengthened the shikimate pathway via multiple genetic strategies: overexpressing feedback-resistant DAHP synthase (aroGfbr) and chorismate mutase/prephenate dehydrogenase (tyrAfbr), as well as knocking out pheA. This manipulation blocks the phenylalanine synthetic branch and redirects metabolic flux toward the l-tyrosine branch. Third, we engineered the branched-chain fatty acid (BCFA) pathway via promoter replacement of bkdA2B2C2, LipAB, fabF and deletion of acdH to enhance isododecanoyl side-chain supply. The combinatorial engineering yielded strain B-13, which produced 1740 mg/L A40926B0 in shake flasks. Finally, 50-L fed-batch fermentation with continuous maltodextrin feeding further increased the titer to 1817 mg/L, the highest reported titer to date. This work establishes a robust CRISPR editing tool for N. gerenzanensis and provides valuable engineering references for precursor-oriented strain improvement targeting lipoglycopeptide antibiotics, offering insights for the industrial scale production of A40926B0.
Xiao-Ru Wang, Hong-Mei Zhai, Dan-Dan Gu et al.· Synthetic and Systems Biotec...· 0 citations
Aging is associated with the accumulation of oxidative damage. Isoliquiritigenin (ISL), a natural flavonoid, exhibits antioxidant properties, but its effect on lifespan and the underlying mechanisms remains incompletely understood. This study aimed to investigate whether ISL extends lifespan in Caenorhabditis elegans through the transcription factor DAF-16 and the aquaporin AQP-2. We employed lifespan assays, stress resistance tests, intracellular ROS measurement, osmotic water permeability assays in Xenopus oocytes, genetic manipulation (using mutants and RNAi), quantitative real-time PCR, and fluorescence microscopy to assess DAF-16 localization and target gene expression. ISL extended the mean lifespan of wild-type C. elegans by 15.35% at 20 μM (P<0.01). It enhanced resistance to oxidative stress (36.54% higher survival under paraquat) and heat shock (20.56% higher survival at 37°C), and reduced intracellular ROS levels. Mechanistically, ISL increased DAF-16 nuclear translocation by 44.3% (P=0.003), and upregulated the expression of its target genes, including sod-3 (3.2-fold, P=0.008) and aqp-2 (2.9-fold, P=0.012). ISL also increased the osmotic water permeability of Xenopus oocytes by 1.7-fold (P=0.007), and the effect was abolished by the aquaporin inhibitor HgCl2. Genetic ablation of aqp-2 nullified ISL-induced lifespan extension (P=0.65 vs control) and ROS reduction. Crucially, aqp-2 RNAi suppressed ISL-driven DAF-16 nuclear accumulation and sod-3 expression, establishing a feedforward loop. ISL extended lifespan and enhanced stress resistance in C. elegans by activating a DAF-16/AQP-2 regulatory module, thereby linking water homeostasis to the transcriptional control of aging.
Xuan Zhao, Limei Ren, Dandan Gu et al.· Brazilian journal of medical...· 0 citations
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