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.
Appl Microbiol Biotechnol. 2022 Jan;106(2):647-661. doi: 10.1007/s00253-022-11761-0. Epub 2022 Jan 12.
Filamentous fungi are extensively used as an important expression host for the production of a variety of essential industrial proteins. They have significant promise as an expression system for protein synthesis due to their inherent superior secretory capabilities. The purpose of this study was to develop a novel expression system by utilizing a Penicillium oxalicum strain that possesses a high capacity for protein secretion. The expression of glycoside hydrolases in P. oxalicum was evaluated in a cleaner extracellular background where the formation of two major amylases was inhibited. Four glycoside hydrolases (CBHI, Amy15B, BGL1, and Cel12A) were expressed under the highly constitutive promoter PubiD. It was found that the proteins exhibited high purity in the culture supernatant after cultivation with starch. Two inducible promoters, Pamy15A and PempA, under the activation of the transcription factor AmyR were used as elements in the construction of versatile vectors. When using the cellobiohydrolase CBHI as the extracellular quantitative reporter, the empA promoter screened from the AmyR-overexpressing strain was shown to be superior to the amy15A promoter based on RNA-sequencing data. Therefore, we designed an expression system consisting of a cleaner background host strain and an adjustable promoter. This system enables rapid and high-throughput evaluation of glycoside hydrolases from filamentous fungi.Key points• A new protein expression system derived from Penicillium oxalicum has been developed.• The expression platform is capable of secreting recombinant proteins with high purity.• The adjustable promoter may allow for further optimization of recombinant protein synthesis.
丝状真菌被广泛用作生产各种必需工业蛋白的重要表达宿主。由于其固有的优越分泌能力,它们作为蛋白质合成的表达系统具有很大的潜力。本研究旨在开发一种新的表达系统,利用一种具有高蛋白分泌能力的草酸青霉菌株。在一个清洁的细胞外背景下评估了糖苷水解酶在草酸青霉中的表达,该背景抑制了两种主要淀粉酶的形成。在高度组成型启动子 PubiD 的控制下,表达了四种糖苷水解酶(CBHI、Amy15B、BGL1 和 Cel12A)。研究发现,在用淀粉培养后,这些蛋白质在培养上清液中表现出很高的纯度。使用转录因子 AmyR 激活的两个诱导型启动子 Pamy15A 和 PempA 作为构建多功能载体的元件。当使用细胞外定量报告酶 CBHI 时,根据 RNA-seq 数据,从 AmyR 过表达菌株中筛选出的 empA 启动子优于 amy15A 启动子。因此,我们设计了一个由清洁背景宿主菌株和可调启动子组成的表达系统。该系统能够快速、高通量地评估丝状真菌的糖苷水解酶。关键点• 开发了一种新的源自草酸青霉的蛋白质表达系统。• 表达平台能够分泌高纯度的重组蛋白。• 可调启动子可能允许进一步优化重组蛋白的合成。