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Model-Based Complete Enzymatic Production of 3,6-Anhydro-L-galactose from Red Algal Biomass

机译:基于模型的3,6-羟基-1-半乳糖的基于模型完全酶促产生来自红藻生物量的

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摘要

3,6-Anhydro-L-galactose (L-AHG) is a bioactive constituent of agar polysaccharides. To be used as a cosmetic or pharmaceutical ingredient, L-AHG is more favorably prepared by enzymatic saccharification of agar using a combination of agarolytic enzymes. Determining the optimum enzyme combination from the natural repertoire is a bottleneck for designing an efficient enzymatic-hydrolysis process. We consider all theoretical enzymatic-saccharification routes in the natural agarolytic pathway of a marine bacterium, Saccharophagus degradans 2-40. Among these routes, three representative routes were determined by removing redundant enzymatic reactions. We simulated each L-AHG production route with simple kinetic models and validated the reaction feasibility with an experimental procedure. The optimal enzyme mixture (with 67.3% maximum saccharification yield) was composed of endotype beta-agarase, exotype beta-agarase, agarooligosaccharolytic beta-galactosidase, and alpha-neoagarobiose hydrolase. This approach will reduce the time and effort needed for developing a coherent enzymatic process to produce L-AHG on a mass scale.
机译:3,6- Anhydro-L-半乳糖(L-AHG)是琼脂多糖的生物活性组分。用作化妆品或药物成分,通过使用琼脂酸酶的组合酶的酶促糖化更有利地制备L-AHG。确定来自天然曲目的最佳酶组合是用于设计有效酶水解过程的瓶颈。我们认为海洋细菌天然琼脂酸型途径的所有理论酶 - 糖化途径,Sacchrophagus降解2-40。在这些路线中,通过去除冗余酶促反应来确定三个代表性路线。我们用简单的动力学模型模拟了每个L-AHG生产路线,并用实验程序验证了反应可行性。最佳酶混合物(最大糖化产率为67.3%)由子型β-琼脂酶,外曲面β-琼脂糖酶,琼脂糖苷溶液β-半乳糖苷酶和α-新蛋白酶水解酶组成。这种方法将减少开发连贯的酶促过程所需的时间和精力,以在大规模规模上产生L-AHG。

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