Wang Meng, Li Wen-Wei, Cao Zhe, Sun Jianong, Xiong Jiang, Tao Si-Qin, Lv Tinghong, Gao Kun, Luo Shangwen, Dong Shi-Hui
State Key Laboratory of Applied Organic Chemistry, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, China.
Acta Pharm Sin B. 2024 Jun;14(6):2773-2785. doi: 10.1016/j.apsb.2024.02.016. Epub 2024 Feb 26.
Although sulfonation plays crucial roles in various biological processes and is frequently utilized in medicinal chemistry to improve water solubility and chemical diversity of drug leads, it is rare and underexplored in ribosomally synthesized and post-translationally modified peptides (RiPPs). Biosynthesis of RiPPs typically entails modification of hydrophilic residues, which substantially increases their chemical stability and bioactivity, albeit at the expense of reducing water solubility. To explore sulfonated RiPPs that may have improved solubility, we conducted co-occurrence analysis of RiPP class-defining enzymes and sulfotransferase (ST), and discovered two distinctive biosynthetic gene clusters (BGCs) encoding both lanthipeptide synthetase (LanM) and ST. Upon expressing these BGCs, we characterized the structures of novel sulfonated lanthipeptides and determined the catalytic details of LanM and ST. We demonstrate that SslST-catalyzed sulfonation is leader-independent but relies on the presence of A ring formed by LanM. Both LanM and ST are promiscuous towards residues in the A ring, but ST displays strict regioselectivity toward Tyr5. The recognition of cyclic peptide by ST was further discussed. Bioactivity evaluation underscores the significance of the ST-catalyzed sulfonation. This study sets up the starting point to engineering the novel lanthipeptide STs as biocatalysts for hydrophobic lanthipeptides improvement.
尽管磺化在各种生物过程中发挥着关键作用,并且在药物化学中经常被用于提高药物先导物的水溶性和化学多样性,但在核糖体合成及翻译后修饰肽(RiPPs)中却很少见且未被充分探索。RiPPs的生物合成通常需要对亲水性残基进行修饰,这在很大程度上提高了它们的化学稳定性和生物活性,尽管是以降低水溶性为代价。为了探索可能具有改善溶解性的磺化RiPPs,我们对RiPP类定义酶和磺基转移酶(ST)进行了共现分析,并发现了两个独特的生物合成基因簇(BGCs),它们编码羊毛硫肽合成酶(LanM)和ST。在表达这些BGCs后,我们对新型磺化羊毛硫肽的结构进行了表征,并确定了LanM和ST的催化细节。我们证明SslST催化的磺化不依赖于前导肽,但依赖于LanM形成的A环的存在。LanM和ST对A环中的残基都具有选择性,但ST对Tyr5表现出严格的区域选择性。我们进一步讨论了ST对环肽的识别。生物活性评估强调了ST催化磺化的重要性。这项研究为将新型羊毛硫肽STs工程化为改善疏水性羊毛硫肽的生物催化剂奠定了基础。