College of Biological Science and Engineering, Shaanxi University of Technology, Hanzhong 723001, Shaanxi Province, China.
Qinba Mountain Area Collaborative Innovation Center of Bioresources Comprehensive Development, Hanzhong 723001, Shaanxi Province, China.
Cells. 2023 Feb 22;12(5):693. doi: 10.3390/cells12050693.
Previous studies have shown that BmSPI39, a serine protease inhibitor of silkworm, can inhibit virulence-related proteases and the conidial germination of insect pathogenic fungi, thereby enhancing the antifungal capacity of . The recombinant BmSPI39 expressed in has poor structural homogeneity and is prone to spontaneous multimerization, which greatly limits its development and application. To date, the effect of multimerization on the inhibitory activity and antifungal ability of BmSPI39 remains unknown. It is urgent to explore whether a BmSPI39 tandem multimer with better structural homogeneity, higher activity and a stronger antifungal ability can be obtained by protein engineering. In this study, the expression vectors of BmSPI39 homotype tandem multimers were constructed using the isocaudomer method, and the recombinant proteins of tandem multimers were obtained by prokaryotic expression. The effects of BmSPI39 multimerization on its inhibitory activity and antifungal ability were investigated by protease inhibition and fungal growth inhibition experiments. In-gel activity staining and protease inhibition assays showed that tandem multimerization could not only greatly improve the structural homogeneity of the BmSPI39 protein, but also significantly increase its inhibitory activity against subtilisin and proteinase K. The results of conidial germination assays showed that tandem multimerization could effectively enhance the inhibitory ability of BmSPI39 on the conidial germination of . A fungal growth inhibition assay showed that BmSPI39 tandem multimers had certain inhibitory effects on both and . The inhibitory ability of BmSPI39 against these the above two fungi could be enhanced by tandem multimerization. In conclusion, this study successfully achieved the soluble expression of tandem multimers of the silkworm protease inhibitor BmSPI39 in and confirmed that tandem multimerization can improve the structural homogeneity and antifungal ability of BmSPI39. This study will not only help to deepen our understanding of the action mechanism of BmSPI39, but also provide an important theoretical basis and new strategy for cultivating antifungal transgenic silkworms. It will also promote its exogenous production and development and application in the medical field.
先前的研究表明,家蚕丝氨酸蛋白酶抑制剂 BmSPI39 可以抑制与毒力相关的蛋白酶和昆虫病原真菌的孢子萌发,从而增强真菌的抗真菌能力。在中表达的重组 BmSPI39 结构均一性差,容易自发形成多聚体,这极大地限制了其发展和应用。迄今为止,多聚化对 BmSPI39 的抑制活性和抗真菌能力的影响尚不清楚。迫切需要探索是否可以通过蛋白质工程获得具有更好结构均一性、更高活性和更强抗真菌能力的 BmSPI39 串联多聚体。在本研究中,使用同尾酶方法构建了 BmSPI39 同源串联多聚体的表达载体,并通过原核表达获得了串联多聚体的重组蛋白。通过蛋白酶抑制和真菌生长抑制实验研究了 BmSPI39 多聚化对其抑制活性和抗真菌能力的影响。胶内活性染色和蛋白酶抑制实验表明,串联多聚化不仅可以极大地提高 BmSPI39 蛋白的结构均一性,而且可以显著增加其对枯草杆菌蛋白酶和蛋白酶 K 的抑制活性。孢子萌发实验结果表明,串联多聚化可以有效地增强 BmSPI39 对 的孢子萌发的抑制能力。真菌生长抑制实验表明,BmSPI39 串联多聚体对 和 均具有一定的抑制作用。串联多聚化可以增强 BmSPI39 对这两种真菌的抑制能力。综上所述,本研究成功地实现了家蚕蛋白酶抑制剂 BmSPI39 串联多聚体在 中的可溶性表达,并证实了串联多聚化可以提高 BmSPI39 的结构均一性和抗真菌能力。本研究不仅有助于加深我们对 BmSPI39 作用机制的理解,还为培育抗真菌转基因蚕提供了重要的理论基础和新策略。它还将促进其在医学领域的外源生产和发展及应用。