Phosphatidylserine and/or Sialic Acid Modified Liposomes Increase Uptake by Tumor-associated Macrophages and Enhance the Anti-tumor Effect.

IF 3.4 4区 医学 Q2 PHARMACOLOGY & PHARMACY AAPS PharmSciTech Pub Date : 2024-06-04 DOI:10.1208/s12249-024-02837-3
Zihan Xu, Jie Li, Na Yan, Xinrong Liu, Yihui Deng, Yanzhi Song
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Abstract

DOX liposomes have better therapeutic effects and lower toxic side effects. The targeting ability of liposomes is one of the key factors affecting the therapeutic effect of DOX liposomes. This study developed two types of targeted liposomes. Sialic acid (SA)-modified liposomes were designed to target the highly expressed Siglec-1 receptor on tumor-associated macrophages surface. Phosphatidylserine (PS)-modified liposomes were designed to promote phagocytosis by monocyte-derived macrophages through PS apoptotic signaling. In order to assess and compare the therapeutic potential of different targeted pathways in the context of anti-tumor treatment, we compared four phosphatidylserine membrane materials (DOPS, DSPS, DPPS and DMPS) and found that liposomes prepared using DOPS as material could significantly improve the uptake ability of RAW264.7 cells for DOX liposomes. On this basis, normal DOX liposomes (CL-DOX) and SA-modified DOX liposomes (SAL-DOX), PS-modified DOX liposomes (PS-CL-DOX), SA and PS co-modified DOX liposomes (PS-SAL-DOX) were prepared. The anti-tumor cells function of each liposome on S180 and RAW264.7 in vitro was investigated, and it was found that SA on the surface of liposomes can increase the inhibitory effect. In vivo efficacy results exhibited that SAL-DOX and PS-CL-DOX were superior to other groups in terms of ability to inhibit tumor growth and tumor inhibition index, among which SAL-DOX had the best anti-tumor effect. Moreover, SAL-DOX group mice had high expression of IFN-γ as well as IL-12 factors, which could significantly inhibit mice tumor growth, improve the immune microenvironment of the tumor site, and have excellent targeted delivery potential.

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磷脂酰丝氨酸和/或ialic酸修饰脂质体可增加肿瘤相关巨噬细胞的吸收并增强抗肿瘤效果
DOX 脂质体具有更好的治疗效果和更低的毒副作用。脂质体的靶向能力是影响 DOX 脂质体治疗效果的关键因素之一。本研究开发了两种靶向脂质体。针对肿瘤相关巨噬细胞表面高表达的Siglec-1受体,设计了硅唾液酸(SA)修饰脂质体。磷脂酰丝氨酸(PS)修饰脂质体旨在通过PS凋亡信号促进单核巨噬细胞的吞噬作用。为了评估和比较不同靶向途径在抗肿瘤治疗中的治疗潜力,我们比较了四种磷脂酰丝氨酸膜材料(DOPS、DSPS、DPPS和DMPS),发现以DOPS为材料制备的脂质体能显著提高RAW264.7细胞对DOX脂质体的摄取能力。在此基础上,制备了普通 DOX 脂质体(CL-DOX)和 SA 改性 DOX 脂质体(SAL-DOX)、PS 改性 DOX 脂质体(PS-CL-DOX)、SA 和 PS 共改性 DOX 脂质体(PS-SAL-DOX)。研究发现,脂质体表面的SA能增强对S180和RAW264.7的抑制作用。体内药效结果表明,SAL-DOX 和 PS-CL-DOX 在抑制肿瘤生长的能力和肿瘤抑制指数方面均优于其他组别,其中 SAL-DOX 的抗肿瘤效果最好。此外,SAL-DOX组小鼠的IFN-γ和IL-12因子表达较高,能显著抑制小鼠肿瘤生长,改善肿瘤部位的免疫微环境,具有良好的靶向给药潜力。
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来源期刊
AAPS PharmSciTech
AAPS PharmSciTech 医学-药学
CiteScore
6.80
自引率
3.00%
发文量
264
审稿时长
2.4 months
期刊介绍: AAPS PharmSciTech is a peer-reviewed, online-only journal committed to serving those pharmaceutical scientists and engineers interested in the research, development, and evaluation of pharmaceutical dosage forms and delivery systems, including drugs derived from biotechnology and the manufacturing science pertaining to the commercialization of such dosage forms. Because of its electronic nature, AAPS PharmSciTech aspires to utilize evolving electronic technology to enable faster and diverse mechanisms of information delivery to its readership. Submission of uninvited expert reviews and research articles are welcomed.
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