Kundong He, Yu Wang, Weizhi Tian, Quanfei Li, Qian Chen, Peng Lei, Yian Gu, Liang Sun, Qinghua Hu, Yijing Zhan, Hong Xu, Yong Chen, Rui Wang
Mussel foot proteins (Mfps) are a class of specialized adhesive proteins synthesized by marine mussels. Among these, type 3 mussel foot protein (Mfp-3) has tremendous application potential as a cosmetic and medical raw material, owing to its excellent antioxidant and anti-inflammatory properties. However, the low efficiency of the natural extraction method (only 1 mg of protein can be obtained from 10,000 mussels) has hindered the industrial application. Heterologous expression via genetic recombination offers a reliable alternative. However, a major challenge is that recombinant expression frequently results in misfolded, biologically inactive protein aggregates. In this study, we identified endogenous molecular chaperones in Mytilus galloprovincialis and successfully constructed a strain that co-expresses Mfp-3 and these chaperone proteins, thereby achieving the soluble expression of Mfp-3. Furthermore, through optimization of fermentation conditions, the soluble yield of Mfp-3 in high-density fermentation using a 5-l fermenter reached 713 mg/L. Meanwhile, following in vitro tyrosinase modification, the L-3,4-dihydroxyphenylalanine (DOPA) content of Mfp-3 reached 4.45%, corresponding to a modification rate of 22.26%. On this basis, this study also demonstrated that soluble Mfp-3 possesses excellent cell migration-promoting ability. Moreover, it exhibited superior biological activity in the treatment of atopic dermatitis by reducing levels of pro-inflammatory cytokines and immunoglobulins. This research provides a new strategy for the production of soluble Mfp-3 in Escherichia coli and offers a reference for the large-scale production of soluble Mfps.