Relaxin-encapsulated polymeric metformin nanoparticles remodel tumor immune microenvironment by reducing CAFs for efficient triple-negative breast cancer immunotherapy

IF 10.7 1区 医学 Q1 PHARMACOLOGY & PHARMACY Asian Journal of Pharmaceutical Sciences Pub Date : 2023-03-01 DOI:10.1016/j.ajps.2023.100796
Hongyan Zhang , Liying Chen , Yue Zhao , Ningchao Luo , Jingbin Shi , Shujun Xu , Lisha Ma , Menglin Wang , Mancang Gu , Chaofeng Mu , Yang Xiong
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引用次数: 2

Abstract

Cancer-associated fibroblasts (CAFs) are one of the most abundant stromal cells in the tumor microenvironment which mediate desmoplastic response and are the primary driver for an immunosuppressive microenvironment, leading to the failure of triple-negative breast cancer (TNBC) immunotherapy. Therefore, depleting CAFs may enhance the effect of immunotherapy (such as PD-L1 antibody). Relaxin (RLN) has been demonstrated to significantly improve transforming growth factor-β (TGF-β) induced CAFs activation and tumor immunosuppressive microenvironment. However, the short half-life and systemic vasodilation of RLN limit its in vivo efficacy. Here, plasmid encoding relaxin (pRLN) to locally express RLN was delivered with a new positively charged polymer named polymeric metformin (PolyMet), which could increase gene transfer efficiency significantly and have low toxicity that have been certified by our lab before. In order to improve the stability of pRLN in vivo, this complex was further formed lipid poly-γ-glutamic acid (PGA)/PolyMet-pRLN nanoparticle (LPPR). The particle size of LPPR was 205.5 ± 2.9 nm, and the zeta potential was +55.4 ± 1.6 mV. LPPR displayed excellent tumor penetrating efficacy and weaken proliferation of CAFs in 4T1luc/CAFs tumor spheres in vitro. In vivo, it could reverse aberrantly activated CAFs by decreasing the expression of profibrogenic cytokine and remove the physical barrier to reshape the tumor stromal microenvironment, which enabled a 2.2-fold increase in cytotoxic T cell infiltration within the tumor and a decrease in immunosuppressive cells infiltration. Thus, LPPR was observed retarded tumor growth by itself in the 4T1 tumor bearing-mouse, and the reshaped immune microenvironment further led to facilitate antitumor effect when it combined with PD-L1 antibody (aPD-L1). Altogether, this study presented a novel therapeutic approach against tumor stroma using LPPR to achieve a combination regimen with immune checkpoint blockade therapy against the desmoplastic TNBC model.

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松弛素包封的聚合二甲双胍纳米颗粒通过减少CAFs重塑肿瘤免疫微环境,用于有效的三阴性乳腺癌免疫治疗
癌相关成纤维细胞(CAFs)是肿瘤微环境中最丰富的基质细胞之一,介导促结缔组织增生反应,是免疫抑制微环境的主要驱动因素,导致癌症三阴性(TNBC)免疫治疗失败。因此,消耗CAFs可能会增强免疫疗法(如PD-L1抗体)的效果。松弛素(RLN)已被证明可显著改善转化生长因子-β(TGF-β)诱导的CAFs活化和肿瘤免疫抑制微环境。然而,RLN的半衰期短和全身血管舒张作用限制了其体内疗效。在这里,编码松弛素(pRLN)以局部表达RLN的质粒与一种名为聚合物二甲双胍(PolyMet)的新的带正电荷聚合物一起递送,该聚合物可以显著提高基因转移效率,并且具有低毒性,这已被我们的实验室证明。为了提高pRLN在体内的稳定性,进一步形成了脂质聚γ-谷氨酸(PGA)/PolyMet pRLN纳米粒子(LPPR)。LPPR的粒径为205.5±2.9nm,ζ电位为+55.4±1.6mV。LPPR在体外4T1luc/CAFs肿瘤球中表现出优异的肿瘤穿透能力和减弱CAFs的增殖。在体内,它可以通过降低促纤维化细胞因子的表达来逆转异常激活的CAFs,并消除物理屏障以重塑肿瘤基质微环境,从而使肿瘤内的细胞毒性T细胞浸润增加2.2倍,免疫抑制细胞浸润减少。因此,在4T1荷瘤小鼠中观察到LPPR自身延缓了肿瘤生长,并且当其与PD-L1抗体(aPD-L1)结合时,重塑的免疫微环境进一步促进了抗肿瘤作用。总之,本研究提出了一种新的治疗肿瘤间质的方法,使用LPPR来实现针对促结缔组织增生性TNBC模型的免疫检查点阻断治疗的联合方案。
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来源期刊
Asian Journal of Pharmaceutical Sciences
Asian Journal of Pharmaceutical Sciences Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
18.30
自引率
2.90%
发文量
11
审稿时长
14 days
期刊介绍: The Asian Journal of Pharmaceutical Sciences (AJPS) serves as the official journal of the Asian Federation for Pharmaceutical Sciences (AFPS). Recognized by the Science Citation Index Expanded (SCIE), AJPS offers a platform for the reporting of advancements, production methodologies, technologies, initiatives, and the practical application of scientific knowledge in the field of pharmaceutics. The journal covers a wide range of topics including but not limited to controlled drug release systems, drug targeting, physical pharmacy, pharmacodynamics, pharmacokinetics, pharmacogenomics, biopharmaceutics, drug and prodrug design, pharmaceutical analysis, drug stability, quality control, pharmaceutical engineering, and material sciences.
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