Thakur Anindita, Singh Shivani, Ganesan Ramakrishnan, Ray Dutta Jayati
Department of Biological Sciences, Birla Institute of Technology and Science (BITS), Pilani, Hyderabad Campus, Jawahar Nagar, Kapra Mandal, Medchal District, Hyderabad, Telangana, 500078, India.
Department of Chemistry, Birla Institute of Technology and Science (BITS), Pilani, Hyderabad Campus, Jawahar Nagar, Kapra Mandal, Medchal District, Hyderabad, Telangana, 500078, India.
Small Methods. 2025 Mar;9(3):e2401574. doi: 10.1002/smtd.202401574. Epub 2024 Nov 27.
The resuscitation of bacteria through biofilms presents a critical challenge in controlling microbial pathogenesis and addressing antimicrobial resistance. Continuous antibiofilm activity, particularly on frequently contacted surfaces, is therefore critical. In this study, a scalable is introduced, one-step fabrication of FeO/AgBr nanoimprints using a polymerizable sol-gel (PSG) approach to create functional nanostructured thin films with strong antimicrobial properties. FeO, a visible-light photocatalyst, is coupled with AgBr, a photosensitizer and dark-active antimicrobial, forming a heterojunction that demonstrated potent antibacterial activity against Escherichia coli and Pseudomonas putida under both dark and light conditions. The heterojunctions exhibit significant biofilm inhibition in the dark, particularly against the robust biofilm-forming P. putida, while visible light irradiation ensures complete biofilm clearance. These surfaces also achieve optimal reactive oxygen species (ROS) production, selectively targeting bacteria without compromising the integrity of mammalian cells. The biocompatibility is confirmed through MTT, TBARS, and apoptosis assays, demonstrating the non-cytotoxic nature of the substrates. Moreover, the surfaces enable cell patterning and recovery of mammalian cells from microbial contamination, highlighting their potential in creating bacterial-free environments for cell culture. This innovative method offers a promising route to next-generation, self-cleaning antimicrobial coatings, combining continuous biofilm inhibition with excellent biocompatibility and scalability.
通过生物膜复苏细菌对控制微生物发病机制和应对抗菌耐药性提出了严峻挑战。因此,持续的抗生物膜活性,尤其是在经常接触的表面上,至关重要。在本研究中,引入了一种可扩展的方法,即使用可聚合溶胶 - 凝胶(PSG)方法一步制备FeO/AgBr纳米压印,以创建具有强大抗菌性能的功能性纳米结构薄膜。可见光光催化剂FeO与光敏剂及暗活性抗菌剂AgBr相结合,形成异质结,在黑暗和光照条件下均对大肠杆菌和恶臭假单胞菌表现出强大的抗菌活性。这些异质结在黑暗中对生物膜有显著抑制作用,尤其是对形成强大生物膜的恶臭假单胞菌,而可见光照射可确保生物膜完全清除。这些表面还能实现最佳的活性氧(ROS)生成,选择性地靶向细菌而不损害哺乳动物细胞的完整性。通过MTT、TBARS和凋亡试验证实了其生物相容性,表明底物具有无细胞毒性的特性。此外,这些表面能够实现细胞图案化并从微生物污染中恢复哺乳动物细胞,突出了它们在创建无细菌细胞培养环境方面的潜力。这种创新方法为下一代自清洁抗菌涂层提供了一条有前景的途径,将持续的生物膜抑制与出色的生物相容性和可扩展性相结合。