Enhanced anticancer effect of lysozyme-functionalized metformin-loaded shellac nanoparticles on a 3D cell model: role of the nanoparticle and payload concentrations.

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Biomaterials Science Pub Date : 2024-07-31 DOI:10.1039/d4bm00692e
Anheng Wang, Leigh A Madden, Vesselin N Paunov
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Abstract

Here we used a 3D human hepatic tumour cell culture model to assess the in vitro efficacy of "active" metformin-loaded nanoparticles (NPs) as anticancer therapeutics. The metformin nanocarrier design was repurposed from previous studies targeting bacterial and fungal biofilms with antimicrobials loaded in protease-coated nanoparticles. These active nanocarriers were constructed with shellac cores loaded with metformin as the anticancer agent and featured a surface coating of the cationic protease lysozyme. The lysozyme's role as a nanocarrier surface coating is to partially digest the extracellular matrix (ECM) of the 3D tumour cell culture which increases its porosity and the nanocarrier penetration. Hep-G2 hepatic 3D clusteroids were formed using a water-in-water (w/w) Pickering emulsion based on an aqueous two-phase system (ATPS). Our specific metformin nano-formulation, comprising 0.25 wt% lysozyme-coated, 0.4 wt% metformin-loaded, 0.2 wt% shellac NPs sterically stabilized with 0.25 wt% Poloxamer 407, demonstrated significantly enhanced anticancer efficiency on 3D hepatic tumour cell clusteroids. We examined the role of the lysozyme surface functionality of the metformin nanocarriers in their ability to kill both 2D and 3D hepatic tumour cell cultures. The anticancer efficiency at high metformin payloads was compared with that at a high concentration of nanocarriers with a lower metformin payload. It was discovered that the high metformin payload NPs were more efficient than the lower metformin payload NPs with a higher nanocarrier concentration. This study introduces a reliable in vitro model for potential targeting of solid tumours with smart nano-therapeutics, presenting a viable alternative to animal testing for evaluating anticancer nanotechnologies.

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溶菌酶功能化二甲双胍负载贝壳粉纳米粒子对三维细胞模型的增强抗癌作用:纳米粒子和有效载荷浓度的作用。
在这里,我们使用三维人类肝肿瘤细胞培养模型来评估作为抗癌疗法的 "活性 "二甲双胍负载纳米颗粒(NPs)的体外疗效。二甲双胍纳米载体的设计是从以前针对细菌和真菌生物膜的研究中改造而来,在蛋白酶包被的纳米颗粒中装载抗菌剂。这些活性纳米载体由装载二甲双胍作为抗癌剂的贝壳杉核构建而成,表面涂有阳离子蛋白酶溶菌酶。溶菌酶作为纳米载体表面涂层的作用是部分消化三维肿瘤细胞培养物的细胞外基质(ECM),从而增加其孔隙度和纳米载体的渗透性。Hep-G2 肝三维簇状细胞是利用基于水液两相体系(ATPS)的水包水(w/w)皮克林乳液形成的。我们的特定二甲双胍纳米制剂由 0.25 wt% 的溶菌酶包被、0.4 wt% 的二甲双胍负载、0.2 wt% 的虫胶 NPs 和 0.25 wt% 的 Poloxamer 407 立体稳定剂组成,在三维肝肿瘤细胞簇状体上的抗癌效率显著提高。我们研究了二甲双胍纳米载体的溶菌酶表面功能在杀死二维和三维肝肿瘤细胞培养物中的作用。我们比较了高二甲双胍有效载荷与低二甲双胍有效载荷的高浓度纳米载体的抗癌效率。结果发现,在纳米载体浓度较高的情况下,高二甲双胍有效载荷的 NPs 比低二甲双胍有效载荷的 NPs 更有效。这项研究介绍了一种可靠的体外模型,用于利用智能纳米疗法靶向实体瘤,为评估抗癌纳米技术提供了一种可行的动物试验替代方法。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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