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游离多柔比星、脂质体包裹多柔比星及脂质体共包裹阿仑膦酸钠和多柔比星(PLAD)对小鼠纤维肉瘤模型肿瘤免疫微环境的比较效应

英文原题:Comparative effects of free doxorubicin, liposome encapsulated doxorubicin and liposome co-encapsulated alendronate and doxorubicin (PLAD) on the tumor immunologic milieu in a mouse fibrosarcoma model.

查看英文原题

Comparative effects of free doxorubicin, liposome encapsulated doxorubicin and liposome co-encapsulated alendronate and doxorubicin (PLAD) on the tumor immunologic milieu in a mouse fibrosarcoma model.

PubMed 2022/09/01(内容时间) Nanotheranostics

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中文摘要

我们此前已表明,阿仑膦酸钠(一种氨基双膦酸盐)在重新配制成脂质体后,可显著增强细胞毒性化疗的疗效,并有助于将免疫抑制性肿瘤微环境重塑为免疫允许性环境,从而提高抗癌疗效。此外,我们此前已表明,阿仑膦酸钠强大的金属螯合特性可用于脂质体生物分布的核成像。为进一步提高抗癌疗效,已开发出一种共包封阿仑膦酸钠和多柔比星的聚乙二醇化脂质体制剂(PLAD)。在本研究中,我们在小鼠纤维肉瘤模型中考察了 PLAD 对肿瘤免疫微环境的影响,该模型的肿瘤微环境被大量肿瘤相关巨噬细胞(TAM)浸润,而 TAM 与不良预后和治疗耐药相关。

在皮下植入 WEHI-164 纤维肉瘤细胞的 Balb/c 小鼠中进行了多柔比星生物分布、肿瘤免疫微环境表征、细胞多柔比星摄取及肿瘤生长研究,小鼠经静脉给予 PLAD、聚乙二醇化脂质体多柔比星(PLD)、游离多柔比星或溶媒。

PLAD 递送导致肿瘤中多柔比星水平较高,比游离多柔比星治疗小鼠高 20 至 30 倍,且非显著性地高于 PLD 治疗小鼠。与 PLD 相比,PLAD 还导致脾脏摄取增加,血浆水平略低。重要的是,我们的结果表明,PLAD 以及程度较轻的 PLD 将细胞药物摄取转向 TAM 和单核细胞样髓源性抑制细胞(MDSC),而中性粒细胞样 MDSC 或淋巴样细胞中无药物摄取。游离阿霉素的细胞药物摄取低于可检测水平。PLAD,以及程度较轻的PLD,还诱导肿瘤浸润性TAM、MDSC、Treg、NKT和NK细胞的数量和功能发生显著变化,这些变化与肿瘤微环境中抗肿瘤免疫应答增强相一致。相比之下,游离阿霉素诱导肿瘤微环境发生中度变化,这些变化可能促进(Treg减少)或不利于抗肿瘤免疫应答(M1 TAM和NK细胞减少)。这些免疫调节效应反映在治疗研究中,该研究显示PLAD和PLD抑制肿瘤生长并显著延长生存期,而游离阿霉素几乎没有或没有抗癌活性。

我们表明,阿霉素的脂质体递送不仅改变药代动力学,还显著改变药物载体的免疫调节活性。此外,我们的数据支持PLAD纳米诊疗平台进一步增强某些免疫变化,这些变化可能与其细胞毒性化疗效应产生协同作用。

展开英文摘要原文

Background: We have previously shown that alendronate, an amino-bisphosphonate, when reformulated in liposomes, can significantly enhance the efficacy of cytotoxic chemotherapies and help remodel the immunosuppressive tumor microenvironment towards an immune-permissive milieu resulting in increased anticancer efficacy.

In addition, we have previously shown that the strong metal-chelating properties of alendronate can be exploited for nuclear imaging of liposomal biodistribution. To further improve anticancer efficacy, a pegylated liposome formulation co-encapsulating alendronate and doxorubicin (PLAD) has been developed. In this study, we examined the effects of PLAD on the tumor immunologic milieu in a mouse fibrosarcoma model in which the tumor microenvironment is heavily infiltrated with tumor-associated macrophages (TAM) that are associated with poor prognosis and treatment resistance.

Methods: Doxorubicin biodistribution, characterization of the tumor immunologic milieu, cellular doxorubicin uptake, and tumor growth studies were performed in Balb/c mice bearing subcutaneously implanted WEHI-164 fibrosarcoma cells treated intravenously with PLAD, pegylated liposomal doxorubicin (PLD), free doxorubicin, or vehicle.

Results: PLAD delivery resulted in a high level of tumor doxorubicin that was 20 to 30-fold greater than in free doxorubicin treated mice, and non-significantly higher than in PLD treated mice. PLAD also resulted in increased uptake in spleen and slightly lower plasma levels as compared to PLD.

Importantly, our results showed that PLAD, and to a lesser extent PLD, shifted cellular drug uptake to TAM and to monocytic myeloid-derived suppressor cells (MDSC), while there was no drug uptake in neutrophilic MDSC or lymphoid cells. Free doxorubicin cellular drug uptake was below detectable levels. PLAD, and to a lesser extent PLD, also induced significant changes in number and functionality of tumor-infiltrating TAM, MDSC, Treg, NKT, and NK cells that are consistent with enhanced antitumor immune responses in the tumor microenvironment.

In contrast, free doxorubicin induced moderate changes in the tumor microenvironment that could promote (decreased Treg) or be detrimental to antitumor immune responses (decreased M1 TAM and NK cells).

These immune modulatory effects are reflected in the therapeutic study which showed that PLAD and PLD inhibited tumor growth and significantly prolonged survival, while free doxorubicin showed little or no anticancer activity. Conclusion: We show that liposomal delivery of doxorubicin not only alters pharmacokinetics, but also dramatically changes the immune modulatory activity of the drug cargo.

In addition, our data support that the PLAD nanotheranostic platform further enhances some immune changes that may act in synergy with its cytotoxic chemotherapy effects.

论文信息

作者
Islam MR、Patel J、Back PI、Shmeeda H、Adamsky K、Yang H、Alvarez C、Gabizon AA
单位
Department of Immunotherapeutics and Biotechnology, Texas Tech University Health Sciences Center School of Pharmacy, Abilene, TX, USA.United States
文献类型
非美国政府资助研究
期刊
Nanotheranostics2022
原文标识
PubMed 36105861 · DOI 10.7150/ntno.75045