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A novel, lactase-based selection and strain improvement strategy for recombinant protein expression in Kluyveromyces lactis

机译:一种基于乳糖酶的新型选择和菌株改良策略,用于乳酸克鲁维酵母中的重组蛋白表达

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Background The Crabtree-negative yeast species Kluyveromyces lactis has been established as an attractive microbial expression system for recombinant proteins at industrial scale. Its LAC genes allow for utilization of the inexpensive sugar lactose as a sole source of carbon and energy. Lactose efficiently induces the LAC4 promoter, which can be used to drive regulated expression of heterologous genes. So far, strain manipulation of K. lactis by homologous recombination was hampered by the high rate of non-homologous end-joining. Results Selection for growth on lactose was applied to target the insertion of heterologous genes downstream of the LAC4 promoter into the K. lactis genome and found to yield high numbers of positive transformants. Concurrent reconstitution of the β-galactosidase gene indicated the desired integration event of the expression cassette, and β-galactosidase activity measurements were used to monitor gene expression for strain improvement and fermentation optimization. The system was particularly improved by usage of a cell lysis resistant strain, VAK367-D4, which allowed for protein accumulation in long-term fermentation. Further optimization was achieved by increased gene dosage of KlGAL4 encoding the activator of lactose and galactose metabolic genes that led to elevated transcription rates. Pilot experiments were performed with strains expressing a single-chain antibody fragment (scFvox) and a viral envelope protein (BVDV-E2), respectively. scFvox was shown to be secreted into the culture medium in an active, epitope-binding form indicating correct processing and protein folding; the E2 protein could be expressed intracellularly. Further data on the influence of protein toxicity on batch fermentation and potential post-transcriptional bottlenecks in protein accumulation were obtained. Conclusions A novel Kluyveromyces lactis host-vector system was developed that places heterologous genes under the control of the chromosomal LAC4 promoter and that allows monitoring of its transcription rates by β-galactosidase measurement. The procedure is rapid and efficient, and the resulting recombinant strains contain no foreign genes other than the gene of interest. The recombinant strains can be grown non-selectively in rich medium and stably maintained even when the gene product exerts protein toxicity.
机译:背景技术Crabtree阴性酵母菌乳酸克鲁维酵母已被建立为工业规模重组蛋白的有吸引力的微生物表达系统。它的LAC基因允许利用廉价的糖乳糖作为碳和能量的唯一来源。乳糖可有效诱导LAC4启动子,该启动子可用于驱动异源基因的调控表达。迄今为止,高同源性的非同源末端连接阻碍了通过同源重组对乳酸克鲁维酵母的菌株操作。结果应用在乳糖上生长的选择用于靶向将LAC4启动子下游的异源基因插入乳酸克鲁维酵母基因组中,并发现产生大量阳性转化体。同时重建β-半乳糖苷酶基因表明表达盒具有所需的整合事件,并且使用β-半乳糖苷酶活性测量来监测基因表达以改善菌株和优化发酵。该系统通过使用抗细胞裂解菌株VAK367-D4进行了特别改进,该菌株可在长期发酵中积累蛋白质。通过增加编码乳糖和半乳糖代谢基因激活剂的KlGAL4的基因剂量(导致转录速率提高),可以实现进一步的优化。分别用表达单链抗体片段(scFv ox )和病毒包膜蛋白(BVDV-E2)的菌株进行了试点实验。已显示scFv ox 以活性的表位结合形式分泌到培养基中,表明正确的加工和蛋白质折叠。 E2蛋白可以在细胞内表达。获得了有关蛋白质毒性对分批发酵的影响以及蛋白质积累中潜在的转录后瓶颈的进一步数据。结论开发了一种新颖的乳酸克鲁维酵母宿主载体系统,该系统可将异源基因置于染色体LAC4启动子的控制下,并可以通过β-半乳糖苷酶测量来监测其转录速率。该过程是快速且有效的,并且所得重组菌株除了目的基因外不包含外源基因。重组菌株可以在丰富的培养基中非选择性生长,即使基因产物产生蛋白质毒性,也可以稳定地维持。

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