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Biomediated production of structurally diverse poly(hydroxyalkanoates) from surplus streams of the animal processing industry

机译:从动物加工工业的剩余物流中生物介导生产结构多样的聚(羟基链烷酸酯)

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For commercial success, enhanced poly(hydroxyalkanoate) (PHA) production must address both material performance and economic aspects. Conventional PHA production consumes expensive feedstocks dedicated to nutrition. Switching to carbon-rich (agro)industrial side-streams alleviates industrial disposal problems, preserves food resources, and can be economically superior. Processes developed in the recently performed EU-FP7 project ANIMPOL resort to lipid-rich surplus streams from slaughterhouses and the rendering industry; these materials undergo chemical transformation to crude glycerol phase (CGP) and biodiesel. The saturated biodiesel share (SFAE) counteracts its applicability as a biofuel but, in addition to CGP, can be converted biotechnologically to PHAs. Depending on the applied microbial production strain and the selected carbon source (SFAE or CGP), thermoplastic short chain length PHA (scl-PHA), as well as elastomeric to latex-like medium chain length PHA (mcl-PHA), can be produced from these inexpensive feed stocks. The article illustrates the biotechnological conversion of animal-based CGP and SFAE towards poly(3-hydroxybutyrate) (PHB) and poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV), respectively, by Cupriavidus necator strain DSM 545. SFAE conversion towards mcl-PHAs consisting of various saturated and unsaturated building blocks by two pseudomonades, Ps. citronellolis DSM 50332 and Ps. chlororaphis DSM 50083, are also shown. Together with the kinetics of the bioprocesses, the results from the characterization of isolated samples of these structurally diverse biopolyesters are compared; data demonstrate the high versatility of biopolymer properties making them applicable in various fields of the plastic market. In addition to the need for inexpensive carbon feed stocks, the article points to further hot spots of the PHA-production chain that must be considered in order to lower the overall PHA production costs, and to enhance product quality. The benefits arising from multistage continuous cultivation production set-ups, namely high-throughput production of PHA of predefined composition and constant quality, are especially discussed. Finally, contemporary approaches towards environmentally and ecologically sustainable PHA recovery from biomass are summarized.
机译:为了获得商业上的成功,增强的聚(羟基链烷酸酯)(PHA)生产必须同时解决材料性能和经济方面的问题。传统的PHA生产消耗了专门用于营养的昂贵原料。改用富含碳的(农业)工业支流可减轻工业处置问题,节省粮食资源,并在经济上优越。在最近执行的EU-FP7项目ANIMPOL中开发的工艺,诉诸于来自屠宰场和提炼业的富含脂质的剩余物流;这些材料经历化学转化为粗甘油相(CGP)和生物柴油。饱和生物柴油份额(SFAE)抵消了其作为生物燃料的适用性,但是除了CGP之外,还可以通过生物技术转化为PHA。根据所应用的微生物生产菌株和所选的碳源(SFAE或CGP),可以生产热塑性短链长PHA(scl-PHA)以及弹性体到乳胶状中链长PHA(mcl-PHA)这些廉价的饲料原料。这篇文章说明了铜绿细菌(Cupriavidus necator)菌株DSM 545将基于动物的CGP和SFAE分别转化为聚(3-羟基丁酸)(PHB)和聚(3-羟基丁酸-co-3-羟基戊酸酯)(PHBV)的生物技术转化。由两个伪mons Ps转换为由各种饱和和不饱和结构单元组成的mcl-PHA。香茅DSM 50332和Ps。还显示了叶绿素DSM 50083。连同生物过程的动力学,比较了这些结构多样的生物聚酯的分离样品的表征结果;数据表明,生物聚合物具有很高的通用性,使其可应用于塑料市场的各个领域。除了需要廉价的碳原料外,本文还指出了必须考虑的PHA生产链的更多热点,以降低PHA的总体生产成本并提高产品质量。特别讨论了多阶段连续种植生产设置带来的好处,即高产量生产具有预定组成和恒定质量的PHA。最后,总结了从生物质中回收环境和生态可持续PHA的当代方法。

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