State Key Laboratory of Developmental Biology of Freshwater Fish, Hunan Provincial Key Laboratory for Microbial Molecular Biology, College of Life Science, Hunan Normal University, Changsha, China.
Faculty of Science and Medicine, University of Fribourg, Chemin du Musée 5, 1700 Fribourg, Switzerland.
Enzyme Microb Technol. 2023 Jan;162:110150. doi: 10.1016/j.enzmictec.2022.110150. Epub 2022 Oct 26.
Filamentous fungi are widely used in the field of recombinant protein expression due to their well-established protein modification systems and excellent secretion capacities. Although Penicillium oxalicum has been developed as an expression host, its potential for efficient and convenient protein production has not been fully exploited. In this study, we obtained an engineered strain by dominant activation of the G protein PGA3 using a point-mutation method based on the low extracellular background P. oxalicum host Δ13A-OamyR. This genetically modified strain, OamyR-QL, with faster cell growth and a more efficient Pamy15A promoter, will be used to construct a novel expression system. The relevant genes and pathways involved in the response to the G protein dominant activation in the engineered strain were revealed by RNA sequencing. Moreover, the transcription activator AmyR was overexpressed in OamyR-QL, resulting in a dramatically enhanced efficiency of the Pamy15A promoter. The construction of an efficient, low-background system by utilizing the G protein-AmyR regulatory pathway provides not only a theoretical reference for the genetic engineering of other filamentous fungal strains, but also a preferable option for the efficient and high purity expression of recombinant proteins in filamentous fungi.
丝状真菌由于其成熟的蛋白质修饰系统和出色的分泌能力,被广泛应用于重组蛋白表达领域。尽管草酸青霉已被开发为表达宿主,但它在高效和便捷的蛋白质生产方面的潜力尚未得到充分开发。在本研究中,我们通过基于低细胞外背景的 P. oxalicum 宿主 Δ13A-OamyR 的点突变方法,对 G 蛋白 PGA3 进行显性激活,获得了一株工程菌株。该基因修饰菌株 OamyR-QL 具有更快的细胞生长速度和更高效的 Pamy15A 启动子,将用于构建一种新型表达系统。通过 RNA 测序揭示了工程菌株中对 G 蛋白显性激活反应的相关基因和途径。此外,在 OamyR-QL 中过表达转录激活因子 AmyR,导致 Pamy15A 启动子的效率显著提高。利用 G 蛋白-AmyR 调控途径构建高效、低背景系统,不仅为其他丝状真菌菌株的遗传工程提供了理论参考,也为丝状真菌中重组蛋白的高效、高纯度表达提供了一种优选方案。