负载LL37抗菌肽壳聚糖纳米颗粒的制备与表征:一种抗菌缓释系统。

IF 4.7 3区 工程技术 Q1 POLYMER SCIENCE
Polymers Pub Date : 2025-07-07 DOI:10.3390/polym17131884
Fazilet Canatan Ergün, Meltem Demirel Kars, Gökhan Kars
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引用次数: 0

摘要

通过离子凝胶法合成的CSNPs由于其生物相容性、易于制造和可调的特性,在制药、纳米技术和聚合物科学等多个领域成为一个有前途的纳米平台。本研究的重点是开发和表征负载ll37的csnp,旨在提高抗菌效果,同时保持生物相容性。本研究通过评估不同浓度(7.5、15和30µg/mL)下抗菌肽LL37的包封效率(%EE),开创了一种系统的负载优化方法,从而确定了在保持控释特性的同时最大限度地结合肽的配方。多浓度分析为多肽输送系统的开发建立了新的方法学基准。为此,通过调整壳聚糖浓度、pH和稳定剂等参数,对csnp的大小和稳定性进行了优化。LL37是一种有效的抗菌肽,在7.5、15和30µg/mL的浓度下被成功地包封到csnp中,得到了具有良好理化性质的制剂。动态光散射(DLS)和Zeta粒度分析表明,空白csnp的平均粒径为180.40±2.16 nm, ZP为+40.57±1.82 mV, PDI为0.289。相比之下,15- ll37 - csnp的尺寸增加了210.9±2.59 nm, zeta电位增加了+51.21±0.93 mV,表明稳定性和相互作用电位得到了改善。场发射扫描电镜(FE-SEM)分析显示纳米颗粒呈圆形。LL37的释放速率呈浓度依赖性,最符合一级动力学模型。使用XTT测定的细胞相容性评估证实,空白和负载ll37的csnp在浓度范围内(150µg/mL至0.29µg/mL)对角质形成细胞细胞没有细胞毒性。值得注意的是,负载ll37的csnp对大肠杆菌和金黄色葡萄球菌具有显著的抗菌活性,其中15-LL37-CSNP制剂的效果更佳。总之,这些发现突出了ll37 - csnp作为一种多功能抗菌递送系统在药物递送、伤口愈合和组织工程中的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and Characterization of LL37 Antimicrobial-Peptide-Loaded Chitosan Nanoparticles: An Antimicrobial Sustained Release System.

CSNPs synthesized via the ionic gelation method have emerged as a promising nanoplatform in diverse fields such as pharmaceuticals, nanotechnology, and polymer science due to their biocompatibility, ease of fabrication, and tunable properties. This study focuses on the development and characterization of LL37-loaded CSNPs, designed to enhance antibacterial efficacy while maintaining biocompatibility. This study pioneers a systematic loading optimization approach by evaluating the encapsulation efficiency (%EE) of antimicrobial peptide LL37 across multiple concentrations (7.5, 15, and 30 µg/mL), thereby identifying the formulation that maximizes peptide incorporation while preserving controlled release characteristics. The multi-concentration analysis establishes a new methodological benchmark for peptide delivery system development. To achieve this, CSNPs were optimized for size and stability by adjusting parameters such as the chitosan concentration, pH, and stabilizer. LL37, a potent antimicrobial peptide, was successfully encapsulated into CSNPs at concentrations of 7.5, 15, and 30 µg/mL, yielding formulations with favorable physicochemical properties. Dynamic light scattering (DLS) and Zeta sizer analyses revealed that blank CSNPs exhibited an average particle size of 180.40 ± 2.16 nm, a zeta potential (ZP) of +40.57 ± 1.82 mV, and a polydispersity index (PDI) of 0.289. In contrast, 15-LL37-CSNPs demonstrated an increased size of 210.9 ± 2.59 nm with an enhanced zeta potential of +51.21 ± 0.93 mV, indicating an improved stability and interaction potential. Field emission scanning electron microscopy (FE-SEM) analyses exhibited the round shaped morphology of nanoparticles. The release profile of LL37 exhibited a concentration-dependent rate and showed the best fit with the first-order kinetic model. Cytocompatibility assessments using the XTT assay confirmed that both blank and LL37-loaded CSNPs did not exhibit cytotoxicity on keratinocyte cells across a range of concentrations (150 µg/mL to 0.29 µg/mL). Notably, LL37-loaded CSNPs demonstrated significant antibacterial activity against E. coli and S. aureus, with the 15-LL37-CSNP formulation exhibiting superior efficacy. Overall, these findings highlight the potential of LL37-CSNPs as a versatile antibacterial delivery system with applications in drug delivery, wound healing, and tissue engineering.

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来源期刊
Polymers
Polymers POLYMER SCIENCE-
CiteScore
8.00
自引率
16.00%
发文量
4697
审稿时长
1.3 months
期刊介绍: Polymers (ISSN 2073-4360) is an international, open access journal of polymer science. It publishes research papers, short communications and review papers. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Polymers provides an interdisciplinary forum for publishing papers which advance the fields of (i) polymerization methods, (ii) theory, simulation, and modeling, (iii) understanding of new physical phenomena, (iv) advances in characterization techniques, and (v) harnessing of self-assembly and biological strategies for producing complex multifunctional structures.
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