Christian Doppler Laboratory for Innovative Pichia pastoris host and vector systems, Institute of Molecular Biotechnology, Graz University of Technology, Graz, A-8010, Austria.
Christian Doppler Laboratory for Innovative Pichia Pastoris Host and Vector Systems, Department of Chemical, Biological and Environmental Engineering, Universitat Autònoma de Barcelona, Cerdanyola del Vallès, Bellaterra, 08193, Spain.
Microb Cell Fact. 2024 Apr 20;23(1):116. doi: 10.1186/s12934-024-02368-3.
Most recombinant Komagataella phaffii (Pichia pastoris) strains for protein production are generated by genomic integration of expression cassettes. The clonal variability in gene copy numbers, integration loci and consequently product titers limit the aptitude for high throughput applications in drug discovery, enzyme engineering or most comparative analyses of genetic elements such as promoters or secretion signals. Circular episomal plasmids with an autonomously replicating sequence (ARS), an alternative which would alleviate some of these limitations, are inherently unstable in K. phaffii. Permanent selection pressure, mostly enabled by antibiotic resistance or auxotrophy markers, is crucial for plasmid maintenance and hardly scalable for production. The establishment and use of extrachromosomal ARS plasmids with key genes of the glycerol metabolism (glycerol kinase 1, GUT1, and triosephosphate isomerase 1, TPI1) as selection markers was investigated to obtain a system with high transformation rates that can be directly used for scalable production processes in lab scale bioreactors.
In micro-scale deep-well plate experiments, ARS plasmids employing the Ashbya gossypii TEF1 (transcription elongation factor 1) promoter to regulate transcription of the marker gene were found to deliver high transformation efficiencies and the best performances with the reporter protein (CalB, lipase B of Candida antarctica) for both, the GUT1- and TPI1-based, marker systems. The GUT1 marker-bearing strain surpassed the reference strain with integrated expression cassette by 46% upon re-evaluation in shake flask cultures regarding CalB production, while the TPI1 system was slightly less productive compared to the control. In 5 L bioreactor methanol-free fed-batch cultivations, the episomal production system employing the GUT1 marker led to 100% increased CalB activity in the culture supernatant compared to integration construct.
For the first time, a scalable and methanol-independent expression system for recombinant protein production for K. phaffii using episomal expression vectors was demonstrated. Expression of the GUT1 selection marker gene of the new ARS plasmids was refined by employing the TEF1 promoter of A. gossypii. Additionally, the antibiotic-free marker toolbox for K. phaffii was expanded by the TPI1 marker system, which proved to be similarly suited for the use in episomal plasmids as well as integrative expression constructs for the purpose of recombinant protein production.
大多数用于蛋白质生产的重组 Komagataella phaffii(巴斯德毕赤酵母)菌株是通过基因组整合表达盒产生的。基因拷贝数、整合位点的克隆变异性以及因此产生的产物滴度限制了高通量药物发现、酶工程或大多数遗传元件(如启动子或分泌信号)的比较分析的应用能力。具有自主复制序列 (ARS) 的环状附加体质粒是一种可以缓解这些限制的替代方案,但在 K. phaffii 中固有地不稳定。永久选择压力,主要由抗生素抗性或营养缺陷型标记物提供,对于质粒维持至关重要,并且对于生产几乎不可扩展。本研究调查了使用甘油代谢(甘油激酶 1,GUT1 和磷酸丙糖异构酶 1,TPI1)关键基因作为选择标记的额外染色体 ARS 质粒的建立和使用,以获得一种具有高转化效率的系统,可直接用于实验室规模生物反应器中的可扩展生产过程。
在微尺度深孔板实验中,发现使用 Ashbya gossypii TEF1(转录延伸因子 1)启动子来调节标记基因转录的 ARS 质粒可提供高转化效率,并为基于 GUT1 和 TPI1 的标记系统的报告蛋白(CalB,南极假丝酵母脂肪酶 B)提供最佳性能。在摇瓶培养中重新评估时,携带 GUT1 标记的菌株在 CalB 生产方面比带有整合表达盒的参考菌株高出 46%,而 TPI1 系统的产量略低于对照。在 5L 生物反应器无甲醇分批补料培养中,使用 GUT1 标记的附加体生产系统导致培养上清液中的 CalB 活性比整合构建体增加 100%。
首次展示了用于 K. phaffii 重组蛋白生产的可扩展且不依赖甲醇的表达系统,该系统使用附加体表达载体。通过使用 A. gossypii 的 TEF1 启动子,对新 ARS 质粒的 GUT1 选择标记基因进行了表达优化。此外,通过 TPI1 标记系统扩展了 K. phaffii 的无抗生素标记工具包,该标记系统同样适用于附加体质粒以及用于重组蛋白生产的整合表达构建体。