首页> 外文期刊>Biotechnology and Bioengineering >High-level production and covalent immobilization of Providencia rettgeri penicillin G acylase (PAC) from recombinant Pichia pastoris for the development of a novel and stable biocatalyst of industrial applicability
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High-level production and covalent immobilization of Providencia rettgeri penicillin G acylase (PAC) from recombinant Pichia pastoris for the development of a novel and stable biocatalyst of industrial applicability

机译:从重组毕赤酵母中大量生产和共价固定瑞氏菌青霉素G酰基转移酶(PAC),以开发新型稳定的工业应用生物催化剂

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A complete, integrated process for the production of an innovative formulation of penicillin G acylase from Providencia rettgeri (rPAC(P).(rett)) of industrial applicability is reported. In order to improve the yield of rPAC, the clone LN5.5, carrying four copies of pac gene integrated into the genome of Pichia pastoris, was constructed. The proteinase activity of the recombinant strain was reduced by knockout of the PEN gene encoding for proteinase A, resulting in an increased rPAC(P.rett) activity of approximately 40% (3.8 U/mL vs. 2.7 U/mL produced by LN5.5 in flask). A high cell density fermentation process was established with a 5-day methanol induction phase and a final PAC activity of up to 27 U/mL. A single step rPAC(P.rett) purification was also developed with an enzyme activity yield of approximately 95%. The novel features of the rPAC(P.rett) expressed in P. pastoris were fully exploited and emphasized through the covalent immobilization of rPAC(P.rett). The enzyme was immobilized on a series of structurally correlated methacrylic polymers, specifically designed and produced for optimizing rPAC(P.rett) performances in both hydrolytic and synthetic processes. Polymers presenting aminic functionalities were the most efficient, leading to formulations with higher activity and stability (half time stability > 3 years and specific activity ranging from 237 to 477 U/g (dry) based on benzylpenicillin hydrolysis). The efficiency of the immobilized rPAC(P.rett) was finally evaluated by studying the kinetically controlled synthesis of P-lactam antibiotics (cephalexin) and estimating the synthesis/hydrolysis ratio (S/H), which is a crucial parameter for the feasibility of the process. (c) 2005 Wiley Periodicals, Inc.
机译:据报道,从工业上可利用的普罗维登斯氏菌生产青霉素G酰基转移酶的创新配方的完整的综合过程(rPAC(P)。(rett))。为了提高rPAC的产量,构建了克隆LN5.5,其携带整合到巴斯德毕赤酵母基因组中的四个拷贝的pac基因。通过敲除编码蛋白酶A的PEN基因,重组菌株的蛋白酶活性降低,导致rPAC(P.rett)活性提高了约40%(3.8 U / mL对LN5产生的2.7 U / mL)。 5瓶)。建立了高细胞密度发酵过程,甲醇诱导期为5天,最终PAC活性高达27 U / mL。还开发了一步法rPAC(P.rett)纯化,酶活性产率约为95%。 rPAC(P.rett)在巴斯德毕赤酵母中表达的新特征已被充分利用,并通过rPAC(P.rett)的共价固定化得到了强调。该酶被固定在一系列结构相关的甲基丙烯酸聚合物上,这些聚合物是专门设计和生产的,用于优化水解和合成过程中的rPAC(P.rett)性能。具有胺官能团的聚合物是最有效的,从而导致制剂具有更高的活性和稳定性(基于苄青霉素水解的半衰期稳定性> 3年,比活性范围为237至477 U / g(干))。最后通过研究动力学控制的P-内酰胺类抗生素(头孢氨苄)的合成并估算合成/水解比(S / H)来评估固定化rPAC(P.rett)的效率,这是决定其可行性的关键参数。过程。 (c)2005年Wiley Periodicals,Inc.

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