Werlang Caroline Andrea, Sahoo Jugal Kishore, Cárcarmo-Oyarce Gerado, Stevens Corey, Uzun Deniz, Putnik Rachel, Hasturk Onur, Choi Jaewon, Kaplan David L, Ribbeck Katharina
Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Department of Biomedical Engineering, Science and Technology Center, Tufts University, Medford, Massachusetts 02155, United States.
J Am Chem Soc. 2024 Dec 18;146(50):34661-34668. doi: 10.1021/jacs.4c12945. Epub 2024 Dec 9.
Mucins are key components of innate immune defense and possess remarkable abilities to manage pathogenic microbes while supporting beneficial ones and maintaining microbial homeostasis at mucosal surfaces. Their unique properties have garnered significant interest in developing mucin-inspired materials as novel therapeutic strategies for selectively controlling pathogens without disrupting the overall microbial ecology. However, natural mucin production is challenging to scale, driving the need for simpler materials that reproduce mucin's bioactivity. In this work, we generated silk-based glycopolymers with different monosaccharides (GalNAc, GlcNAc, NeuNAc, GlcN, and GalN) and different grafting densities. Using the oral cavity as a model system, we treated cultures of pathogenic and commensal with our glycopolymers, finding that silk-tethered GalNAc uniquely prevented biofilm formation without affecting overall bacterial growth of either species. This relatively simple material reproduced mucin's virulence-neutralizing effects while maintaining biocompatibility. These mucin-inspired materials represent a valuable tool for preventing infection-related harm and offer a strategy for the domestication of pathogens in other environments.
粘蛋白是先天性免疫防御的关键组成部分,具有显著的能力来管理致病微生物,同时支持有益微生物并维持粘膜表面的微生物稳态。它们的独特性质引起了人们对开发受粘蛋白启发的材料作为新型治疗策略的浓厚兴趣,这种策略能够在不破坏整体微生物生态的情况下选择性地控制病原体。然而,天然粘蛋白的生产难以扩大规模,这促使人们需要更简单的材料来重现粘蛋白的生物活性。在这项工作中,我们制备了具有不同单糖(N-乙酰半乳糖胺、N-乙酰葡萄糖胺、唾液酸、葡糖胺和半乳糖胺)和不同接枝密度的丝基糖聚合物。以口腔为模型系统,我们用我们的糖聚合物处理致病性和共生性细菌培养物,发现与丝相连的N-乙酰半乳糖胺能独特地阻止生物膜形成,而不影响这两种细菌的总体生长。这种相对简单的材料重现了粘蛋白的中和毒力作用,同时保持了生物相容性。这些受粘蛋白启发的材料是预防感染相关危害的宝贵工具,并为在其他环境中驯化病原体提供了一种策略。