Targeting of M2 macrophages with IL-13-functionalized liposomal prednisolone inhibits melanoma angiogenesis in vivo.

IF 3.6 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Liposome Research Pub Date : 2024-12-01 Epub Date: 2024-02-20 DOI:10.1080/08982104.2024.2315452
Alina Sesarman, Lavinia Luput, Valentin-Florian Rauca, Laura Patras, Emilia Licarete, Marta-Szilvia Meszaros, Bogdan Razvan Dume, Giorgiana Negrea, Vlad-Alexandru Toma, Dana Muntean, Alina Porfire, Manuela Banciu
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引用次数: 0

Abstract

The intricate cooperation between cancer cells and nontumor stromal cells within melanoma microenvironment (MME) enables tumor progression and metastasis. We previously demonstrated that the interplay between tumor-associated macrophages (TAMs) and melanoma cells can be disrupted by using long-circulating liposomes (LCLs) encapsulating prednisolone phosphate (PLP) (LCL-PLP) that inhibited tumor angiogenesis coordinated by TAMs. In this study, our goal was to improve LCL specificity for protumor macrophages (M2-like (i.e., TAMs) macrophages) and to induce a more precise accumulation at tumor site by loading PLP into IL-13-conjugated liposomes (IL-13-LCL-PLP), since IL-13 receptor is overexpressed in this type of macrophages. The IL-13-LCL-PLP liposomal formulation was obtained by covalent attachment of thiolated IL-13 to maleimide-functionalized LCL-PLP. C57BL/6 mice bearing B16.F10 s.c melanoma tumors were used to investigate the antitumor action of LCL-PLP and IL-13-LCL-PLP. Our results showed that IL-13-LCL-PLP formulation remained stable in biological fluids after 24h and it was preferentially taken up by M2 polarized macrophages. IL-13-LCL-PLP induced strong tumor growth inhibition compared to nonfunctionalized LCL-PLP at the same dose, by altering TAMs-mediated angiogenesis and oxidative stress, limiting resistance to apoptosis and invasive features in MME. These findings suggest IL-13-LCL-PLP might become a promising delivery platform for chemotherapeutic agents in melanoma.

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用 IL-13 功能化脂质体泼尼松龙靶向 M2 巨噬细胞可抑制体内黑色素瘤血管生成。
黑色素瘤微环境(MME)中的癌细胞和非肿瘤基质细胞之间错综复杂的合作促成了肿瘤的发展和转移。我们以前曾证实,使用包裹磷酸泼尼松龙(PLP)的长循环脂质体(LCL)可以破坏肿瘤相关巨噬细胞(TAMs)和黑色素瘤细胞之间的相互作用,从而抑制由TAMs协调的肿瘤血管生成。在这项研究中,我们的目标是提高LCL对原发肿瘤巨噬细胞(M2样(即TAMs)巨噬细胞)的特异性,并通过将PLP装入IL-13结合脂质体(IL-13-LCL-PLP),诱导其在肿瘤部位更精确地聚集,因为IL-13受体在这类巨噬细胞中过度表达。IL-13-LCL-PLP脂质体制剂是通过将硫醇化的IL-13与马来酰亚胺功能化的LCL-PLP共价连接而获得的。研究人员用携带 B16.F10 s.c 黑色素瘤的 C57BL/6 小鼠来研究 LCL-PLP 和 IL-13-LCL-PLP 的抗肿瘤作用。结果表明,IL-13-LCL-PLP制剂在24小时后仍能在生物液体中保持稳定,并优先被M2极化巨噬细胞吸收。与相同剂量的非功能化LCL-PLP相比,IL-13-LCL-PLP通过改变TAMs介导的血管生成和氧化应激,限制MME的抗凋亡和侵袭特征,从而诱导强烈的肿瘤生长抑制。这些研究结果表明,IL-13-LCL-PLP 有可能成为黑色素瘤化疗药物的一种前景广阔的递送平台。
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来源期刊
Journal of Liposome Research
Journal of Liposome Research 生物-生化与分子生物学
CiteScore
10.50
自引率
2.30%
发文量
24
审稿时长
3 months
期刊介绍: The Journal of Liposome Research aims to publish original, high-quality, peer-reviewed research on the topic of liposomes and related systems, lipid-based delivery systems, lipid biology, and both synthetic and physical lipid chemistry. Reviews and commentaries or editorials are generally solicited and are editorially reviewed. The Journal also publishes abstracts and conference proceedings including those from the International Liposome Society. The scope of the Journal includes: Formulation and characterisation of systems Formulation engineering of systems Synthetic and physical lipid chemistry Lipid Biology Biomembranes Vaccines Emerging technologies and systems related to liposomes and vesicle type systems Developmental methodologies and new analytical techniques pertaining to the general area Pharmacokinetics, pharmacodynamics and biodistribution of systems Clinical applications. The Journal also publishes Special Issues focusing on particular topics and themes within the general scope of the Journal.
期刊最新文献
Liposomal propranolol for treatment of infantile hemangioma at compounding pharmacies. Remote loading in liposome: a review of current strategies and recent developments. Targeting of M2 macrophages with IL-13-functionalized liposomal prednisolone inhibits melanoma angiogenesis in vivo. Design, optimization, characterization, and in vitro evaluation of metformin-loaded liposomes for triple negative breast cancer treatment. Review of recent preclinical and clinical research on ligand-targeted liposomes as delivery systems in triple negative breast cancer therapy.
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