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Integrated lipase production and in situ biodiesel synthesis in a recombinant Pichia pastoris yeast: an efficient dual biocatalytic system composed of cell free enzymes and whole cell catalysts

机译:重组巴斯德毕赤酵母中的脂肪酶生产和原位生物柴油合成:由无细胞酶和全细胞催化剂组成的高效双重生物催化系统

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Background Lipase-catalyzed biotransformation of acylglycerides or fatty acids into biodiesel via immobilized enzymes or whole cell catalysts has been considered as one of the most promising methods to produce renewable and environmentally friendly alternative liquid fuels, thus being extensively studied so far. In all previously pursued approaches, however, lipase enzymes are prepared in an independent process separated from enzymatic biodiesel production, which would unavoidably increase the cost and energy consumption during industrial manufacture of this cost-sensitive energy product. Therefore, there is an urgent need to develop novel cost-effective biocatalysts and biocatalytic processes with genuine industrial feasibility. Result Inspired by the consolidated bioprocessing of lignocellulose to generate bioethanol, an integrated process with coupled lipase production and in situ biodiesel synthesis in a recombinant P. pastoris yeast was developed in this study. The novel and efficient dual biocatalytic system based on Thermomyces lanuginosus lipase took advantage of both cell free enzymes and whole cell catalysts. The extracellular and intracellular lipases of growing yeast cells were simultaneously utilized to produce biodiesel from waste cooking oils in situ and in one pot. This integrated system effectively achieved 58% and 72% biodiesel yield via concurrent esterified-transesterified methanolysis and stepwise hydrolysis-esterification at 3:1 molar ratio between methanol and waste cooking oils, respectively. Further increasing the molar ratio of methanol to waste cooking oils to 6:1 led to an 87% biodiesel yield using the stepwise strategy. Both water tolerance and methanol tolerance of this novel system were found to be significantly improved compared to previous non-integrated biodiesel production processes using separately prepared immobilized enzymes or whole cell catalysts. Conclusion We have proposed a new concept of integrated biodiesel production. This integrated system couples lipase production to lipase-catalyzed biodiesel synthesis in one pot. The proof-of-concept was established through construction of a recombinant P. pastoris yeast strain that was able to grow, overexpress T. lanuginosus lipase, and efficiently catalyze biodiesel production from fed waste cooking oils and methanol simultaneously. This simplified single-step process represents a significant advance toward achieving economical production of biodiesel at industrial scale via a ‘green’ biocatalytic route.
机译:背景技术通过固定化酶或全细胞催化剂,脂肪酶催化酰基甘油酯或脂肪酸向生物柴油的生物转化已被认为是生产可再生和环境友好的替代液体燃料的最有前途的方法之一,因此迄今为止已被广泛研究。然而,在所有先前寻求的方法中,脂肪酶是在独立于酶生物柴油生产的独立过程中制备的,这将不可避免地增加在工业上生产这种对成本敏感的能量产品的成本和能耗。因此,迫切需要开发具有真正工业可行性的新型成本有效的生物催化剂和生物催化方法。结果在木质素纤维素的整合生物处理过程中产生生物乙醇的启发下,本研究开发了重组脂肪酵母中结合脂肪酶生产和原位生物柴油合成的集成过程。基于羊毛嗜热菌脂肪酶的新型高效双重生物催化系统利用了无细胞酶和全细胞催化剂的优势。同时,利用生长中的酵母细胞的细胞外和细胞内脂肪酶,从原地和一锅中的废食用油中生产生物柴油。该集成系统通过同时进行的酯化-酯交换化甲醇分解和逐步的水解-酯化(甲醇与废食用油之间的摩尔比为3:1)有效地实现了58%和72%的生物柴油收率。使用逐步策略,将甲醇与废食用油的摩尔比进一步提高至6:1,可实现87%的生物柴油收率。与以前使用单独制备的固定化酶或全细胞催化剂的非集成生物柴油生产工艺相比,该新型系统的耐水性和甲醇耐受性均得到了显着提高。结论我们提出了生物柴油综合生产的新概念。该集成系统可在一锅中将脂肪酶的生产与脂肪酶催化的生物柴油合成相结合。通过构建重组巴斯德毕赤酵母酵母菌株来建立概念验证,该菌株能够生长,过度表达兰氏单胞菌脂肪酶,并有效地催化从进食的食用食用油和甲醇中同时生产生物柴油。这种简化的单步过程代表着通过“绿色”生物催化途径实现工业规模经济生产生物柴油的重大进步。

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