通过自适应感染微环境重塑治疗增强空间畸变和优化共轭微孔聚合物多方面杀菌活性的同分异构体策略

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Xinmiao Zhang, Zengshan Zhang, Jun Wang, Aili Zheng, Lin Xiao, Xu Sun, Jinhong Zhang, Chunzhen Zhao*, Yonghui Li* and Baolong Zhou*, 
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引用次数: 0

摘要

在这里,我们开发了一种立体化学工程策略,利用结构异构来创建多功能非抗生素杀菌剂。该方法可以通过调节共轭微孔聚合物(cmp)的位阻来精确控制抗菌活性。通过对同分异构体(neo-iso和para-iso)中活性基团的空间排列进行策略性管理,我们成功合成了两种具有三酶模拟活性的fe -酞菁基cmp (iso-CMP-1和iso-CMP-2):过氧化物酶(POD)、氧化酶(OXD)和过氧化氢酶(CAT)。这两种材料在伤口愈合的不同阶段都具有很强的抗菌素治疗适应性。这些材料的扩展π共轭结构产生了宽带光谱吸收和增强的光子捕获效率,从而协同提高了光热和光动力性能。对比分析表明,新异位构型具有较高的位阻,导致结构扭曲,防止酞菁π-π堆积,增强了拟酶活性。在机械上,新异立体化学构型与准异立体化学构型相比,诱导了明显的结构畸变,这破坏了酞菁π-π堆积,同时放大了过氧化物酶的活性。isocmp表现出氧适应性光动力功能,在氧气充足的条件下同时进行I型和II型光动力治疗(PDT),但在缺氧环境中选择性地激活I型途径,克服O2浓度限制。isocmp系统通过时空程序化的模拟酶级联来协调一个自我维持的氧代谢循环。具体来说,类似oxd的能力催化O2产生杀菌超氧自由基(O2•-),同时产生H2O2,尤其是在感染早期。然后,cat样活性将积累的H2O2转化为O2,从而恢复组织氧合并重新点燃II型PDT。此外,pod样活性将残余H2O2转化为O2•-,与光热和PDT治疗协同作用,有效抑制细菌生长和生物膜形成,加速伤口愈合。这种逻辑嵌入式设计将静态材料转化为智能治疗系统,其中细菌发病机制直接激发自适应抗菌反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Isomerism as a Facile Strategy for Enhancing Spatial Distortion and Optimizing Multifaceted Sterilizing Activities of Conjugated Microporous Polymers via Self-Adaptive Infectious Microenvironment Remodeling Therapy

Isomerism as a Facile Strategy for Enhancing Spatial Distortion and Optimizing Multifaceted Sterilizing Activities of Conjugated Microporous Polymers via Self-Adaptive Infectious Microenvironment Remodeling Therapy

Here, we have developed a stereochemical engineering strategy utilizing structural isomerism to create multifunctional nonantibiotic biocides. This method allows for precise control of antimicrobial activity by adjusting the steric hindrance in conjugated microporous polymers (CMPs). By strategically managing the spatial arrangement of reactive groups in isomeric configurations (neo-iso and para-iso), we successfully synthesized two isomeric Fe-phthalocyanine-based CMPs (iso-CMP-1 and iso-CMP-2) with triple-enzyme-mimetic activities: peroxidase (POD), oxidase (OXD), and catalase (CAT). Both materials are highly adaptable for antibacterial therapy during different stages of wound healing. The extended π-conjugation architectures of these materials engender broad-band spectral absorption and enhanced photon capture efficiency, thereby synergistically augmenting both photothermal and photodynamic performance. A comparative analysis showed the neo-iso configuration, with higher steric congestion, causes structural distortion, preventing phthalocyanine π–π stacking, and amplifying enzyme-mimetic activities. Mechanistically, the neo-iso stereochemical configuration induces a much pronounced structural distortion compared to the para-iso, which disrupts phthalocyanine π–π stacking while amplifying peroxidase-mimetic activity. The iso-CMPs demonstrate oxygen-adaptive photodynamic functionality, which simultaneously performs Type I and Type II photodynamic therapy (PDT) under oxygen-sufficient conditions but selectively activates Type I pathways in oxygen-deficient environments, overcoming O2 concentration limitations. The iso-CMP system orchestrates a self-sustaining oxygen metabolic cycle through spatiotemporally programmed enzyme-mimetic cascades. Specifically, the OXD-like capacity catalyzes O2 to generate bactericidal superoxide radicals (O2•–) and concurrently produces H2O2, especially during the early infection stage. Then, the CAT-like activity converts the accumulated H2O2 into O2, which restores tissue oxygenation and reignites Type II PDT. Furthermore, the POD-like activity processes residual H2O2 into O2•–, which synergizes with photothermal and PDT therapy, effectively suppresses bacterial growth and biofilm formation, and accelerating wound healing. This logic-embedded design transforms static materials into smart therapeutic systems, where bacterial pathogenesis directly fuels self-adaptive antimicrobial responses.

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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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