载入丁香(Syzygium aromaticum L.)提取物作为抗癌剂的纳米生物聚合物载体的合成与表征:体外研究。

IF 3.6 4区 医学 Q2 ENGINEERING, BIOMEDICAL Journal of Biomaterials Science, Polymer Edition Pub Date : 2024-07-26 DOI:10.1080/09205063.2024.2381372
Mehdi Ansari, Elmira Ravan Avard, Fariba Sharififar, Neda Mohamadi
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引用次数: 0

摘要

本研究旨在设计一种由壳聚糖/β-环糊精/三聚磷酸钠/海藻酸盐(CS/βCD/TPP/AL)和丁香提取物(CE)组成的新型药物纳米粒子(NP),以发挥其潜在的抗癌作用。丁香提取物采用两种提取方法制备:80% MeOH 水醇浸渍法(MAC)和超临界流体法(SCF)。MACCE 和 SCFCE CE NPs 的粒径分别为 71 nm 和 20 nm,呈不规则球形。纳米载体的夹持效率超过 90%。6 小时后,MACCE-NPs 和 SCFCE-NPs 分别释放出 18.35% 和 10.12% 的提取物。使用 SCFCE-NPs 处理 48 小时后,HeLa、U87 和 KB 细胞系的细胞存活率分别降至 54%、7% 和 12%;使用 MACCE-NPs 处理 48 小时后,细胞存活率分别降至 75%、8% 和 17%,与对照组相比明显降低。结论是,含有 CE 的 NPs 由于能更好地穿透细胞而表现出更高的毒性。
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Synthesis and characterization of nano-biopolymer carriers loaded with clove (Syzygium aromaticum L.) extract as an anticancer agent: an in vitro study.

The objective of this work was to design a new drug nanoparticle (NP) composed of chitosan/β-cyclodextrin/sodium tripolyphosphate/alginate (CS/βCD/TPP/AL) loaded with a clove extract (CE) for potential anticancer effects. The extract was prepared by two extraction methods: hydroalcoholic maceration (MAC) with 80% MeOH and supercritical fluid (SCF). The MACCE and SCFCE CE NPs had particle sizes of 71 nm and 20 nm, respectively with irregular spherical shapes. The nanocarriers achieved entrapment efficiencies of over 90%. MACCE-NPs and SCFCE-NPs released 18.35% and 10.12% of the extract after 6 h, respectively. Cell viability decreased to 54%, 7%, and 12% in HeLa, U87, and KB cell lines, respectively, after a 48-hour treatment with SCFCE-NPs and 75%, 8%, and 17% after treatment with MACCE-NPs, significantly reduced compared to the control. It is concluded that NPs containing CE exhibit a higher degree of toxicity due to better penetration into cells.

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来源期刊
Journal of Biomaterials Science, Polymer Edition
Journal of Biomaterials Science, Polymer Edition 工程技术-材料科学:生物材料
CiteScore
7.10
自引率
5.60%
发文量
117
审稿时长
1.5 months
期刊介绍: The Journal of Biomaterials Science, Polymer Edition publishes fundamental research on the properties of polymeric biomaterials and the mechanisms of interaction between such biomaterials and living organisms, with special emphasis on the molecular and cellular levels. The scope of the journal includes polymers for drug delivery, tissue engineering, large molecules in living organisms like DNA, proteins and more. As such, the Journal of Biomaterials Science, Polymer Edition combines biomaterials applications in biomedical, pharmaceutical and biological fields.
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