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Integrated systems for biopolymers and bioenergy production from organic waste and by-products: a review of microbial processes

机译:从有机废物和副产物生产生物聚合物和生物能源的集成系统:微生物过程综述

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摘要

Recently, issues concerning the sustainable and harmless disposal of organic solid waste have generated interest in microbial biotechnologies aimed at converting waste materials into bioenergy and biomaterials, thus contributing to a reduction in economic dependence on fossil fuels. To valorize biomass, waste materials derived from agriculture, food processing factories, and municipal organic waste can be used to produce biopolymers, such as biohydrogen and biogas, through different microbial processes. In fact, different bacterial strains can synthesize biopolymers to convert waste materials into valuable intracellular (e.g., polyhydroxyalkanoates) and extracellular (e.g., exopolysaccharides) bioproducts, which are useful for biochemical production. In particular, large numbers of bacteria, including Alcaligenes eutrophus, Alcaligenes latus, Azotobacter vinelandii, Azotobacter chroococcum, Azotobacter beijerincki, methylotrophs, Pseudomonas spp., Bacillus spp., Rhizobium spp., Nocardia spp., and recombinant Escherichia coli, have been successfully used to produce polyhydroxyalkanoates on an industrial scale from different types of organic by-products. Therefore, the development of high-performance microbial strains and the use of by-products and waste as substrates could reasonably make the production costs of biodegradable polymers comparable to those required by petrochemical-derived plastics and promote their use. Many studies have reported use of the same organic substrates as alternative energy sources to produce biogas and biohydrogen through anaerobic digestion as well as dark and photofermentation processes under anaerobic conditions. Therefore, concurrently obtaining bioenergy and biopolymers at a reasonable cost through an integrated system is becoming feasible using by-products and waste as organic carbon sources. An overview of the suitable substrates and microbial strains used in low-cost polyhydroxyalkanoates for biohydrogen and biogas production is given. The possibility of creating a unique integrated system is discussed because it represents a new approach for simultaneously producing energy and biopolymers for the plastic industry using by-products and waste as organic carbon sources.
机译:最近,有关可持续性和无害处理有机固体废物的问题引起了人们对微生物生物技术的关注,这些技术旨在将废物转化为生物能源和生物材料,从而有助于减少对化石燃料的经济依赖。为了使生物质增值,可以使用农业,食品加工厂和城市有机废物产生的废料,通过不同的微生物工艺生产生物聚合物,例如生物氢和沼气。实际上,不同的细菌菌株可以合成生物聚合物以将废料转化为可用于生化生产的有价值的细胞内(例如,多羟基链烷酸酯)和细胞外(例如,外多糖)生物产物。尤其是,成功地获得了包括嗜碱产碱杆菌,产碱杆菌,葡萄固氮菌,嗜铬固氮菌,嗜氮固氮菌,甲基营养菌,假单胞菌属,芽孢杆菌属,根瘤菌属,诺卡氏菌属和重组大肠杆菌在内的大量细菌。用于从不同类型的有机副产物以工业规模生产聚羟基链烷酸酯。因此,开发高性能微生物菌株以及使用副产物和废物作为底物可以合理地使生物可降解聚合物的生产成本与石化衍生塑料所需的成本相媲美,并促进其使用。许多研究报告了使用相同的有机底物作为替代能源,通过厌氧消化以及在厌氧条件下的暗发酵和光发酵过程生产沼气和生物氢。因此,使用副产物和废物作为有机碳源,通过集成系统以合理的成本同时获得生物能源和生物聚合物正变得可行。概述了用于低成本聚羟基链烷酸酯以生产生物氢和沼气的合适底物和微生物菌株。讨论了创建一个独特的集成系统的可能性,因为它代表了一种利用副产品和废物作为有机碳源同时为塑料工业生产能源和生物聚合物的新方法。

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