Wang Stephanie X, Waite J Herbert
Department of Chemistry & Biochemistry, University of California Santa Barbara, Santa Barbara, CA, USA.
Department of Molecular, Cell & Developmental Biology, University of California Santa Barbara, Santa Barbara, CA, USA.
Nat Rev Chem. 2025 Mar;9(3):159-172. doi: 10.1038/s41570-024-00673-4. Epub 2025 Jan 15.
Catechol-functionalized proteins in mussel holdfasts are essential for underwater adhesion and cohesion and have inspired countless synthetic polymeric materials and devices. However, as catechols are prone to oxidation, long-term performance and stability of these inventions awaits effective antioxidation strategies. In mussels, catechol-mediated interactions are stabilized by 'built-in' homeostatic redox reservoirs that restore catechols oxidized to quinones. Mussel byssus has a typical 'core-shell' architecture in which the core is a degradable fibrous block copolymer consisting of collagen and fibroin coated by robust protein networks stabilized by bis-catecholato-metal and tris-catecholato-metal ion complexes. The coating is well-adapted to protect the core against abrasion, hydrolysis and microbial attack, but it is not impervious to oxidative damage, which, during function, is promptly repaired by redox poise via coacervated catechol-rich and thiol-rich reducing interlayers and inclusions. However, when the e and H equivalents from these reducing reservoirs are depleted, coating damage accumulates, leading to exposure of the vulnerable core to environmental attack. Heeding and translating these strategies is essential for deploying catechols with longer service lifetimes and designing more sustainable next-generation polymeric adhesives.
贻贝固着器中儿茶酚功能化的蛋白质对于水下黏附和内聚至关重要,并启发了无数合成聚合物材料和装置的研发。然而,由于儿茶酚易于氧化,这些发明的长期性能和稳定性有待有效的抗氧化策略来实现。在贻贝中,儿茶酚介导的相互作用通过“内置”的稳态氧化还原库得以稳定,这些库可将氧化为醌的儿茶酚还原。贻贝足丝具有典型的“核壳”结构,其中核是由胶原蛋白和丝素蛋白组成的可降解纤维状嵌段共聚物,由双儿茶酚金属和三儿茶酚金属离子络合物稳定的坚固蛋白质网络包裹。该涂层能很好地保护核心免受磨损、水解和微生物攻击,但它并非完全抗氧化损伤,在功能过程中,氧化损伤会通过富含儿茶酚和富含硫醇的凝聚还原中间层和内含物的氧化还原平衡迅速修复。然而,当这些还原库中的电子和氢当量耗尽时,涂层损伤会累积,导致脆弱的核心暴露于环境攻击之下。借鉴并转化这些策略对于部署使用寿命更长的儿茶酚以及设计更具可持续性的下一代聚合物粘合剂至关重要。