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Zhiqiang Liu

Publications and source records attributed to Zhiqiang Liu.

2 recordsLinked to original sources

Key enzyme optimization and multi-node metabolic flux regulation drive l-arginine production in Escherichia coli.

Microbial production of l-arginine is often constrained by tight metabolic regulation and insufficient precursor supply. Here a plasmid-free, non-auxotrophic Escherichia coli strain for high-level production of l-arginine was rationally engineered, based on our previous constructed strain G0 with 12.4 g/L l-arginine production in flask. Glucose metabolism and glutamate/aspartate uptake were initially enhanced, with subsequent semi-rational engineering of key enzymes, ornithine acetyltransferase (OAT) and argininosuccinate synthase (ASS), to promote ATP synthesis. OAT was firstly rational engineered by introducing amide group for the residues near substrate-binding pocket to stabilize oxyanion transition states, with achieving that variant Y386Q showed Km/kcat at 6.58 mM-1 min-1, 2 times higher than that of wild type. Variant Y332L of ASS was novelty fused with argininosuccinate lyase via GGGGS linker for ASS activity measurement, which helped improve l-arginine titer to 17.5 g/L. With further studies by screening of rate-limiting nodes on the genome-scale level based on sRNA strategy, aspartate and glutamate pathways were synergistically enhanced, along with utilizing carbon dioxide recycling for carbamoyl phosphate synthesis to drive ammonia donor supply. The obtained final plasmid-free and non-auxotrophic strain G16 produced 21.1 g/L l-arginine in flask, 76.6% higher than that of original strain G0. In 5 L fermenter, 125.6 g/L l-arginine was produced by fed-batch fermentation, with a yield of 0.53 g/g glucose. This study underscores that the convergence of mechanistic enzyme redesign and systems-level pathway optimization is critical to unlocking high-efficient amino acid production, offering a transferable blueprint for rational strain engineering in industrial biotechnology.

Argininosuccinate synthase

Modulation of Mettl5 alleviates airway allergy by regulating the epigenetic profile of M2 macrophages.

M2 macrophages (M2 cells) are known to be involved in both Th2 responses and immune regulation. However, the underlying mechanisms remain unclear. Functional abnormalities in macrophages are associated with airway allergy (AA). The objective of this study was to investigate the role of methyltransferase-like 5 (Mettl5) in macrophages and its potential to alleviate AA. In this study, an airway allergy (AA) mouse model was established using dust mite extracts (DME) as the specific antigen. M2 cells were collected from mice with and without AA. The role of Mettl5 in modulating the immune activities of M2 cells was assessed using both epigenetic and immunological approaches. We found that Mettl5 levels were elevated in airway M2 cells from mice with AA. The presence of Mettl5 in airway M2 cells was positively correlated with airway Th2 polarization in these mice. Airway M2 cells from AA mice exhibited impaired immune-suppressive function, which was resolved by ablating the Mettl5 gene in macrophages. Mettl5 was responsible for the hypermethylation of the Il10 promoter in airway M2 cells of AA mice. Exposure to DME induced Mettl5, which in turn recruited USP21 to deubiquitinate GATA3, thereby boosting IL-4 expression in M2 cells. Inhibiting Mettl5 restored the immune-suppressive capacity of airway M2 cells and mitigated experimental AA. In conclusion, Mettl5 plays a critical role in subverting the immune-regulatory capacity and enhancing IL-4 expression in M2 cells. Inhibition of Mettl5 can mitigate experimental AA by restoring the immune-regulatory functions of M2 cells.

Animals