Lin Xiangna, Ding Weiqiu, Zheng Shaoyan, Wu Lianna, Chen Xue, Xie Chunfang, Liu Daling, Yao Dongsheng
Institute of Biomedicine, Jinan University, Guangzhou City, 510632, Guangdong Province, China.
National Engineering Research Center of Genetic Medicine, Jinan University, Guangzhou City, 510632, Guangdong Province, China.
Microb Cell Fact. 2024 Jul 24;23(1):206. doi: 10.1186/s12934-024-02435-9.
Pichia pastoris (Komagataella phaffii) is a promising production host, but the usage of methanol limits its application in the medicine and food industries.
To improve the constitutive expression of heterologous proteins in P. pastoris, four new potential transcription regulators (Loc1p, Msn2p, Gsm1p, Hot1p) of the glyceraldehyde triphosphate dehydrogenase promoter (pGAP) were revealed in this study by using cellulase E4 as reporter gene. On this basis, a series of P. pastoris strains with knockout or overexpression of transcription factors were constructed and the deletion of transcription factor binding sites on pGAP was confirmed. The results showed that Loc1p and Msn2p can inhibit the activity of pGAP, while Gsm1p and Hot1p can enhance the activity of pGAP; Loc1p, Gsm1p and Hot1p can bind directly to pGAP, while Msn2p must be treated to expose the C-terminal domain to bind to pGAP. Moreover, manipulating a single transcription factor led to a 0.96-fold to 2.43-fold increase in xylanase expression. In another model protein, aflatoxin oxidase, knocking out Loc1 based on AFO-∆Msn2 strain resulted in a 0.63-fold to 1.4-fold increase in expression. It can be demonstrated that the combined use of transcription factors can further improve the expression of exogenous proteins in P. pastoris.
These findings will contribute to the construction of pGAP-based P. pastoris systems towards high expression of heterologous proteins, hence improving the application potential of yeast.
巴斯德毕赤酵母(Komagataella phaffii)是一种很有前景的生产宿主,但甲醇的使用限制了其在医药和食品工业中的应用。
为了提高异源蛋白在巴斯德毕赤酵母中的组成型表达,本研究以纤维素酶E4为报告基因,揭示了甘油醛-3-磷酸脱氢酶启动子(pGAP)的四个新的潜在转录调节因子(Loc1p、Msn2p、Gsm1p、Hot1p)。在此基础上,构建了一系列转录因子敲除或过表达的巴斯德毕赤酵母菌株,并证实了pGAP上转录因子结合位点的缺失。结果表明,Loc1p和Msn2p可抑制pGAP的活性,而Gsm1p和Hot1p可增强pGAP的活性;Loc1p、Gsm1p和Hot1p可直接与pGAP结合,而Msn2p必须经过处理以暴露其C端结构域才能与pGAP结合。此外,操纵单个转录因子可使木聚糖酶表达提高0.96倍至2.43倍。在另一种模型蛋白黄曲霉毒素氧化酶中,基于AFO-∆Msn2菌株敲除Loc1导致表达提高0.63倍至1.4倍。可以证明,转录因子的联合使用可进一步提高外源蛋白在巴斯德毕赤酵母中的表达。
这些发现将有助于构建基于pGAP的巴斯德毕赤酵母系统以实现异源蛋白的高表达,从而提高酵母的应用潜力。