Key Laboratory of Photochemical Conversion and Optoelectronic Materials and CityU-CAS Joint Laboratory of Functional Materials and Devices, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China.
Key Laboratory of Photochemical Conversion and Optoelectronic Materials and CityU-CAS Joint Laboratory of Functional Materials and Devices, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China; Qingdao Casfuture Research Institute CO., LTD, PR China.
Acta Biomater. 2023 Mar 15;159:247-258. doi: 10.1016/j.actbio.2023.01.031. Epub 2023 Jan 29.
Development of novel broad-spectrum sterilization is an efficient strategy that can overcome drug resistance and avoid antibiotics abuse toward bacterial-infected diseases. Photothermal therapy (PTT) in the second near-infrared (NIR-II) therapeutic window with an increased tissue penetration and elevated maximal permissible exposure has attracted considerable attention in antibacterial applications. However, the lack of bacterial-targeted photothermal agents limits their further development. Herein, we developed three xanthene derivatives (CNs) with intense light harvesting ability around 1180 nm. Their bulky planar conformations facilitated the formation of H-aggregates with outstanding photothermal conversion ability and good photostability in the NIR-II therapeutic bio window. By manipulating side chains of CNs, their liposomes exhibited different surface charges, ranging from negative to positive. Remarkably, the intermolecular hydrogen bonding of CN3 dimer drived the positively charged xanthene skeleton exposed to the periphery, which endowed it natural bacterial targeting potency. Therefore, CN3 possessed a good NIR-II photothermal and broad-spectrum sterilization against Gram-positive and Gram-negative bacteria. The photothermal antibacterial activities for S. aureus and E. coli were 99.4% and 99.2%, respectively, promoting significant wound healing in bacteria-infected mice with superior biocompatibility. This structure-inherent bacterial targeting strategy as a proof-of-concept shows an efficient broad-spectrum bacterial inactivation, indicating more encouraging NIR-II photothermal antibacterial therapy. STATEMENT OF SIGNIFICANCE: Photothermal therapy (PTT) in the second near-infrared region (NIR-II, 1000-1700 nm) enables the treatment of deep inflammation more satisfactory due to higher tissue penetration depth. In this work, three new NIR-II xanthene derivatives (CNs) with intense light harvesting ability around 1180 nm were developed. CNs showed typical H-aggregated performance with bulky planar conformations and outstanding photothermal conversion ability. Density functional theory calculations revealed that the intermolecular hydrogen bonding of CN3 dimer drived the exposure of positively charged xanthene skeleton to periphery of dimer. Therefore, CN3 NPs possessed natural bacterial targeting potency and excellent NIR-II photothermal and broad-spectrum sterilization, and so as to significantly promote the wound healing of Gram-positive / negative bacteria infected mice.
新型广谱杀菌的开发是克服细菌耐药性和避免抗生素滥用于细菌感染疾病的有效策略。在第二近红外(NIR-II)治疗窗口中进行光热治疗(PTT),具有增加的组织穿透性和提高的最大允许暴露量,在抗菌应用中引起了相当大的关注。然而,缺乏细菌靶向光热剂限制了它们的进一步发展。在此,我们开发了三种具有 1180nm 左右强吸光能力的呫吨衍生物(CNs)。它们的庞大平面构象有利于形成具有出色光热转换能力和良好光稳定性的 H-聚集体,处于 NIR-II 治疗生物窗口。通过操纵 CNs 的侧链,它们的脂质体表现出不同的表面电荷,从负到正。值得注意的是,CN3 二聚体的分子间氢键驱动带正电荷的呫吨骨架暴露在外围,赋予其天然的细菌靶向能力。因此,CN3 具有良好的 NIR-II 光热和广谱杀菌活性,可对抗革兰氏阳性菌和革兰氏阴性菌。金黄色葡萄球菌和大肠杆菌的光热杀菌活性分别为 99.4%和 99.2%,在细菌感染的小鼠中具有优异的生物相容性,促进了显著的伤口愈合。这种结构固有的细菌靶向策略作为一个概念验证,显示了一种有效的广谱细菌失活作用,表明更有希望的 NIR-II 光热抗菌治疗。
近红外二区(NIR-II,1000-1700nm)的光热疗法(PTT)由于具有更高的组织穿透深度,可更满意地治疗深部炎症。在这项工作中,开发了三种新的 NIR-II 呫吨衍生物(CNs),它们在 1180nm 左右具有强烈的吸光能力。CNs 表现出典型的 H-聚集性能,具有庞大的平面构象和出色的光热转换能力。密度泛函理论计算表明,CN3 二聚体的分子间氢键驱动带正电荷的呫吨骨架暴露在二聚体的外围。因此,CN3 NPs 具有天然的细菌靶向能力和出色的 NIR-II 光热和广谱杀菌能力,从而显著促进革兰氏阳性/阴性细菌感染小鼠的伤口愈合。