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改变具有改性聚合物特性的体内巨噬细胞反应。

Altering in vivo macrophage responses with modified polymer properties.

机构信息

Department of Materials Science & Engineering, Iowa State University, Ames, IA 50011, USA.

Department of Chemical & Biological Engineering, Iowa State University, Ames, IA 50011, USA.

出版信息

Biomaterials. 2015 Jul;56:187-97. doi: 10.1016/j.biomaterials.2015.03.042. Epub 2015 Apr 17.

Abstract

Macrophage reprogramming has long been the focus of research in disease therapeutics and biomaterial implantation. With different chemical and physical properties of materials playing a role in macrophage polarization, it is important to investigate and categorize the activation effects of material parameters both in vitro and in vivo. In this study, we have investigated the effects of material surface chemistry on in vivo polarization of macrophages. The library of materials used here include poly(N-isopropylacrylamide-co-acrylic acid) (p(NIPAm-co-AAc)) nanoparticles (∼600 nm) modified with various functional groups. This study also focuses on the development of a quantitative structure-activity relationship method (QSAR) as a predictive tool for determining the macrophage polarization in response to particular biomaterial surface chemistries. Here, we successfully use in vivo imaging and histological analysis to identify the macrophage response and activation. We demonstrate the ability to induce a spectrum of macrophage phenotypes with a change in material functionality as well as identify certain material parameters that seem to correlate with each phenotype. This suggests the potential to develop materials for a variety of applications and predict the outcome of macrophage activation in response to new surface chemistries.

摘要

巨噬细胞重编程一直是疾病治疗学和生物材料植入研究的重点。由于材料的不同化学和物理性质在巨噬细胞极化中发挥作用,因此研究和分类材料参数在体外和体内的激活效果非常重要。在这项研究中,我们研究了材料表面化学对体内巨噬细胞极化的影响。这里使用的材料库包括用各种官能团修饰的聚(N-异丙基丙烯酰胺-co-丙烯酸)(p(NIPAm-co-AAc))纳米粒子(∼600nm)。本研究还侧重于开发定量构效关系方法(QSAR)作为一种预测工具,用于确定特定生物材料表面化学引起的巨噬细胞极化。在这里,我们成功地使用体内成像和组织学分析来识别巨噬细胞的反应和激活。我们证明了通过改变材料功能来诱导一系列巨噬细胞表型的能力,并确定了某些似乎与每种表型相关的材料参数。这表明有可能开发出用于各种应用的材料,并预测对新表面化学的巨噬细胞激活的结果。

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