3D-printed surface coated with natural photosensitizer for photodynamic inactivation of methicillin-resistant Staphylococcus aureus using visible light.

IF 2.4 4区 医学 Q3 ENGINEERING, BIOMEDICAL Lasers in Medical Science Pub Date : 2025-02-24 DOI:10.1007/s10103-025-04378-y
Paulo Jaeder Moraes Cervi, Manoela Laflôr Nene, Robson Dias Wouters, William Leonardo da Silva, Lourdes Maria Muraro Favarin, Mirkos Ortiz Martins, Bruno Stefanello Vizzotto
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Abstract

The use of polylactic acid (PLA) coated with photosensitizer (PS) and activated by visible light could represent a novel, inexpensive, and eco-friendly self-sterilizing material to produce customized biomedical devices with antimicrobial properties. The rise of antibiotic resistance highlights the urgent need for alternative antimicrobial strategies, like Methicillin-resistant Staphylococcus aureus (MRSA), which represents a major global health concern, responsible for severe invasive diseases to minor skin infections and asymptomatic nasal colonization. Antimicrobial photodynamic inactivation (aPDI) has emerged as a promising technique, using the synergistic effects of light, oxygen, and a photosensitizer to generate reactive oxygen species (ROS) that eradicate bacteria. Brazil's rich biodiversity offers a reservoir of natural compounds, such as Eugenia uniflora (EU) extract, which has demonstrated effective antimicrobial activity when used in aPDI. This study explored the development of a 3D-printed self-sterilizing surface by combining aPDI and EU extract to combat MRSA. Polylactic acid (PLA) discs were impregnated with EU extract and evaluated for their ability to reduce MRSA colonies under visible light, assessing bacterial growth at 0, 8, and 24 h. Results showed significant reductions in MRSA colonies under visible light after 8 h (~ 50%), which were enhanced at 24 h (~ 70%). ROS involvement was confirmed, with EDTA and azide restoring ~ 50% of bacterial growth, implicating metal ions and singlet oxygen in the mechanism. DNA damage assays revealed heightened genotoxic effects under light exposure, as shown by DNA smearing. This innovative approach underscores the potential of EU coated 3D-printed surfaces in reducing nosocomial infections. Further studies will examine ROS generation and antibiofilm capabilities.

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3d打印表面涂有天然光敏剂,用于可见光下耐甲氧西林金黄色葡萄球菌的光动力失活。
使用涂有光敏剂(PS)并由可见光激活的聚乳酸(PLA)可以代表一种新型、廉价、环保的自杀菌材料,用于生产具有抗菌性能的定制生物医学设备。抗生素耐药性的上升突出表明迫切需要其他抗微生物策略,如耐甲氧西林金黄色葡萄球菌(MRSA),这是一个主要的全球卫生问题,导致严重的侵袭性疾病,轻微的皮肤感染和无症状的鼻腔定植。抗菌光动力失活(aPDI)是一种很有前途的技术,利用光、氧和光敏剂的协同作用产生活性氧(ROS)来消灭细菌。巴西丰富的生物多样性提供了天然化合物的储存库,例如Eugenia uniflora (EU)提取物,在aPDI中使用时已显示出有效的抗菌活性。本研究探索了结合aPDI和EU提取物的3d打印自杀菌表面的开发,以对抗MRSA。用EU提取物浸渍聚乳酸(PLA)膜片,评估其在可见光下减少MRSA菌落的能力,评估0、8和24小时的细菌生长情况。结果显示,在可见光下,8小时后MRSA菌落显著减少(~ 50%),24小时后MRSA菌落增加(~ 70%)。研究证实了活性氧的参与,EDTA和叠氮化物恢复了50%的细菌生长,暗示了金属离子和单线态氧参与了这一机制。DNA损伤分析显示,如DNA涂片所示,光照下基因毒性作用增强。这种创新的方法强调了欧盟涂层3d打印表面在减少医院感染方面的潜力。进一步的研究将检验活性氧的生成和抗生物膜的能力。
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来源期刊
Lasers in Medical Science
Lasers in Medical Science 医学-工程:生物医学
CiteScore
4.50
自引率
4.80%
发文量
192
审稿时长
3-8 weeks
期刊介绍: Lasers in Medical Science (LIMS) has established itself as the leading international journal in the rapidly expanding field of medical and dental applications of lasers and light. It provides a forum for the publication of papers on the technical, experimental, and clinical aspects of the use of medical lasers, including lasers in surgery, endoscopy, angioplasty, hyperthermia of tumors, and photodynamic therapy. In addition to medical laser applications, LIMS presents high-quality manuscripts on a wide range of dental topics, including aesthetic dentistry, endodontics, orthodontics, and prosthodontics. The journal publishes articles on the medical and dental applications of novel laser technologies, light delivery systems, sensors to monitor laser effects, basic laser-tissue interactions, and the modeling of laser-tissue interactions. Beyond laser applications, LIMS features articles relating to the use of non-laser light-tissue interactions.
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