Wilmar International Limited, WIL@NUS Corporate Laboratory, Centre for Translational Medicine, National University of Singapore, Singapore, Singapore.
Wilmar International Limited, Wilmar (Shanghai) Biotechnology Research and Development Center Co. Ltd., Shanghai, China.
BMC Genomics. 2022 Jan 12;23(1):48. doi: 10.1186/s12864-022-08292-3.
Proteases catalyze the hydrolysis of peptide bonds of proteins, thereby improving dietary protein digestibility, nutrient availability, as well as flavor and texture of fermented food and feed products. The lactobacilli Lactiplantibacillus plantarum (formerly Lactobacillus plantarum) and Pediococcus acidilactici are widely used in food and feed fermentations due to their broad metabolic capabilities and safe use. However, extracellular protease activity in these two species is low. Here, we optimized protease expression and secretion in L. plantarum and P. acidilactici via a genetic engineering strategy.
To this end, we first developed a versatile and stable plasmid, pUC256E, which can propagate in both L. plantarum and P. acidilactici. We then confirmed expression and secretion of protease PepG1 as a functional enzyme in both strains with the aid of the previously described L. plantarum-derived signal peptide LP_0373. To further increase secretion of PepG1, we carried out a genome-wide experimental screening of signal peptide functionality. A total of 155 predicted signal peptides originating from L. plantarum and 110 predicted signal peptides from P. acidilactici were expressed and screened for extracellular proteolytic activity in the two different strains, respectively. We identified 12 L. plantarum signal peptides and eight P. acidilactici signal peptides that resulted in improved yield of secreted PepG1. No significant correlation was found between signal peptide sequence properties and its performance with PepG1.
The vector developed here provides a powerful tool for rapid experimental screening of signal peptides in both L. plantarum and P. acidilactici. Moreover, the set of novel signal peptides identified was widely distributed across strains of the same species and even across some closely related species. This indicates their potential applicability also for the secretion of other proteins of interest in other L. plantarum or P. acidilactici host strains. Our findings demonstrate that screening a library of homologous signal peptides is an attractive strategy to identify the optimal signal peptide for the target protein, resulting in improved protein export.
蛋白酶催化蛋白质肽键的水解,从而提高膳食蛋白质的消化率、营养物质的可用性以及发酵食品和饲料产品的风味和质地。乳杆菌属植物乳杆菌(以前称为植物乳杆菌)和戊糖片球菌是广泛用于食品和饲料发酵的,因为它们具有广泛的代谢能力和安全使用。然而,这两种菌的细胞外蛋白酶活性较低。在这里,我们通过遗传工程策略优化了植物乳杆菌和戊糖片球菌的蛋白酶表达和分泌。
为此,我们首先开发了一种多功能且稳定的质粒 pUC256E,该质粒可在植物乳杆菌和戊糖片球菌中繁殖。然后,我们借助先前描述的植物乳杆菌衍生的信号肽 LP_0373,证实了蛋白酶 PepG1 在这两种菌株中的表达和分泌作为一种功能酶。为了进一步提高 PepG1 的分泌量,我们进行了信号肽功能的全基因组实验筛选。总共表达并筛选了来自植物乳杆菌的 155 个预测信号肽和来自戊糖片球菌的 110 个预测信号肽,以分别在这两种不同的菌株中获得细胞外蛋白酶活性。我们鉴定了 12 个植物乳杆菌信号肽和 8 个戊糖片球菌信号肽,它们使分泌的 PepG1 产量提高。没有发现信号肽序列特性与其与 PepG1 性能之间存在显著相关性。
这里开发的载体为植物乳杆菌和戊糖片球菌中信号肽的快速实验筛选提供了一个强大的工具。此外,所鉴定的新信号肽在同一物种的菌株中广泛分布,甚至在一些密切相关的物种中也有分布。这表明它们也有可能用于其他植物乳杆菌或戊糖片球菌宿主菌株中其他感兴趣的蛋白质的分泌。我们的研究结果表明,筛选同源信号肽文库是一种有吸引力的策略,可以确定目标蛋白质的最佳信号肽,从而提高蛋白质的输出。