Department of Medical Chemistry, University of Szeged, Szeged 6720, Hungary.
Department of Organic Chemistry, University of Debrecen, Debrecen 4010, Hungary.
J Nat Prod. 2023 Apr 28;86(4):782-790. doi: 10.1021/acs.jnatprod.2c00954. Epub 2023 Feb 27.
Emerging fungal infections require new, more efficient antifungal agents and therapies. AFP, a protein from with four disulfide bonds, is a promising candidate because it selectively inhibits the growth of filamentous fungi. In this work, the reduced form of AFP was prepared using native chemical ligation. The native protein was synthesized via oxidative folding with uniform protection for cysteine thiols. AFP's biological activity depends heavily on the pattern of natural disulfide bonds. Enzymatic digestion and MS analysis provide proof for interlocking disulfide topology () that was previously assumed. With this knowledge, a semi-orthogonal thiol protection method was designed. By following this strategy, out of a possible 105, only 6 disulfide isomers formed and 1 of them proved to be identical with the native protein. This approach allows the synthesis of analogs for examining structure-activity relationships and, thus, preparing AFP variants with higher antifungal activity.
新兴的真菌感染需要新的、更有效的抗真菌药物和疗法。AFP 是一种具有四个二硫键的蛋白质,是一种很有前途的候选药物,因为它选择性地抑制丝状真菌的生长。在这项工作中,使用天然化学连接制备了还原型 AFP。该天然蛋白通过氧化折叠合成,半胱氨酸巯基得到均匀保护。AFP 的生物学活性在很大程度上取决于天然二硫键的模式。酶消化和 MS 分析为先前假设的互锁二硫键拓扑结构提供了证据。有了这些知识,设计了一种半正交的巯基保护方法。按照这个策略,在可能的 105 种中二硫键异构体中,只有 6 种形成,其中 1 种与天然蛋白相同。这种方法允许合成类似物来检查结构-活性关系,从而制备具有更高抗真菌活性的 AFP 变体。