Halomonas is demonstrated as a competitive non-sterilized platform to produce poly(3-hydroxybutyrate) (PHB) presenting a potential biomanufacturing scenario for the transformation of severely damaged agricultural debris.
Abstract
The elevated biomanufacturing costs, stemming from raw material expenditures and cumbersome processes, constrain the industrial application of poly(3-hydroxybutyrate) (PHB). Valorization of biowaste in an unsterile fermentation model represents a sustainable strategy. In this study, an excellent halophile was identified and utilized for converting moldy corn to synthesize PHB. The distinguished fermentation performance and comprehensive metabolic pathways of Halomonas sp. DYZ-4 were established. Subsequently, nutrient supply and physicochemical parameters were systematically tuned to strengthen PHB accumulation. The optimal biopolymer outputs in the conventional model and the open process were accordingly 6.81 and 6.83 g L–1; a straightforward production system was thus constructed. Furthermore, moldy corn pretreated with α-amylase yielded 10.72 g L–1 reducing sugar, which could serve as a novel generation feedstock for DYZ-4 proliferation. The maximum PHB concentration reached 6.83 g L–1 with a proportion of 61%, facilitating the resource conversion of waste. This study demonstrates Halomonas as a competitive non-sterilized platform to produce PHB, presenting a potential biomanufacturing scenario for the transformation of severely damaged agricultural debris.
2-Pyrone-4,6-dicarboxylic acid (PDC) is a promising pseudo-aromatic bio-based monomer for the production of biodegradable polyesters. Here, we combined metabolic engineering with fermentation process optimization to establish efficient de novo PDC biosynthesis in Corynebacterium glutamicum. To enhance the availability...
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The present study demonstrates the potential of the haloarchaeal strain for converting carbon- and nitrogen-rich waste streams into biodegradable PHB, aligning with circular bioeconomy principles.
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Poly(β-L-malic acid) (PMLA) is a water-soluble, biodegradable aliphatic polyester whose pendant carboxyl groups support chemical functionalization for biomedical, packaging, and materials applications. Microbial fermentation can use pure sugars and biomass-derived carbon sources under mild conditions, but industrial tr...
The increasing accumulation of plastic waste has intensified efforts to identify sustainable biodegradable alternatives. Polyhydroxyalkanoates (PHAs) are microbial polyesters with properties similar to conventional plastics; however, their commercial feasibility is limited by high production costs. This study investiga...
Sumintra Chaimongkol, T. Sriyapai, Pichapak Sriyapai· Current Applied Science and...· 0 citations
Lignocellulosic residues are non-cost, non-edible, renewable feedstocks that can be used in polyhydroxybutyrate (PHB) production. PHB is a bioplastic synthetized by microorganisms, formed intracellularly under stressful growth conditions; however, its production costs are high, representing the major drawback for fossi...
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n-Butanol is a promising advanced biofuel and versatile platform chemical. However, its fermentative production by solventogenic clostridial strains remains economically limited by reliance on costly edible feedstocks of corn and sugarcane. Lignocellulosic biomass provides an abundant, non-food alternative, but its eff...
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