Phagocytosed Polyhedrin-Cytokine Cocrystal Nanoparticles Provide Sustained Secretion of Bioactive Cytokines from Macrophages

A. Wendler, N. James, Michael H. Jones, C. Pernstich
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引用次数: 5

Abstract

Many cells possess the ability to engulf and incorporate particles by phagocytosis. This active process is characteristic of microorganisms as well as higher order species. In mammals, monocytes, macrophages and microglia are among so-called professional phagocytes. In addition, cells such as fibroblast and chondrocytes are classified as non-professional phagocytes. Professional phagocytes play important roles in both the innate and adaptive immune response, wound healing and tissue homeostasis. Consequently, these cells are increasingly studied as targets and vectors of therapeutic intervention to treat a range of diseases. Professional phagocytes are notoriously difficult to transfect limiting their study and manipulation. Consequently, efforts have shifted towards the development of nanoparticles to deliver a cargo to phagocytic cells via phagocytosis. However, this approach carries significant technical challenges, particularly for protein cargos. We have focused on the development of nanoscale co-crystalline protein depots, known as PODS®, that contain protein cargos, including cytokines. Here, we show that PODS are readily phagocytosed by non-professional as well as professional phagocytic cells and have attributes, such as highly sustained release of cargo, that suggest potential utility for the study and exploitation of phagocytic cells for drug delivery. Monocytes and macrophages that ingest PODS retain normal characteristics including a robust chemotactic response. Moreover, the PODS-cytokine cargo is secreted by the loaded cell at a level sufficient to modulate the behavior of surrounding non-phagocytic cells. The results presented here demonstrate the potential of PODS nanoparticles as a novel molecular tool for the study and manipulation of phagocytic cells and for the development of Trojan horse immunotherapy strategies to treat cancer and other diseases.
吞噬多面蛋白-细胞因子共晶纳米颗粒提供巨噬细胞持续分泌生物活性细胞因子
许多细胞具有吞噬和吸收微粒的能力。这种活动过程是微生物和高等物种的特征。在哺乳动物中,单核细胞、巨噬细胞和小胶质细胞属于所谓的专业吞噬细胞。此外,成纤维细胞和软骨细胞等细胞被归类为非专业吞噬细胞。专业吞噬细胞在先天和适应性免疫反应、伤口愈合和组织稳态中发挥重要作用。因此,这些细胞越来越多地作为治疗干预的靶点和载体来研究,以治疗一系列疾病。众所周知,专业吞噬细胞很难转染,限制了它们的研究和操作。因此,人们的努力转向了纳米颗粒的开发,通过吞噬作用将货物运送到吞噬细胞。然而,这种方法具有重大的技术挑战,特别是对于蛋白质货物。我们专注于开发纳米级共晶蛋白仓库,即pod®,其中包含蛋白质货物,包括细胞因子。在这里,我们发现pod很容易被非专业吞噬细胞和专业吞噬细胞吞噬,并且具有诸如高度持续释放货物的特性,这表明研究和开发吞噬细胞用于药物递送的潜在效用。摄取pod的单核细胞和巨噬细胞保持正常特征,包括强大的趋化反应。此外,pod -细胞因子货物由负载细胞分泌,其水平足以调节周围非吞噬细胞的行为。本文的研究结果表明,pod纳米颗粒作为一种新的分子工具,具有研究和操纵吞噬细胞以及开发特洛伊木马免疫治疗策略以治疗癌症和其他疾病的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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