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Anti-Inflammatory Strategy for M2 Microglial Polarization Using Retinoic Acid-Loaded Nanoparticles

机译:M2小胶质细胞极化使用维甲酸负载纳米粒子的抗炎策略。

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摘要

Inflammatory mechanisms triggered by microglial cells are involved in the pathophysiology of several brain disorders, hindering repair. Herein, we propose the use of retinoic acid-loaded polymeric nanoparticles (RA-NP) as a means to modulate microglia response towards an anti-inflammatory and neuroprotective phenotype (M2). RA-NP were first confirmed to be internalized by N9 microglial cells; nanoparticles did not affect cell survival at concentrations below 100 μg/mL. Then, immunocytochemical studies were performed to assess the expression of pro- and anti-inflammatory mediators. Our results show that RA-NP inhibited LPS-induced release of nitric oxide and the expression of inducible nitric oxide synthase and promoted arginase-1 and interleukin-4 production. Additionally, RA-NP induced a ramified microglia morphology (indicative of M2 state), promoting tissue viability, particularly neuronal survival, and restored the expression of postsynaptic protein-95 in organotypic hippocampal slice cultures exposed to an inflammatory challenge. RA-NP also proved to be more efficient than the free equivalent RA concentration. Altogether, our data indicate that RA-NP may be envisioned as a promising therapeutic agent for brain inflammatory diseases.
机译:小胶质细胞触发的炎性机制参与了几种脑部疾病的病理生理,阻碍了修复。在这里,我们建议使用视黄酸负载的聚合物纳米粒子(RA-NP)作为一种手段来调节小胶质细胞对抗炎和神经保护表型(M2)的反应。首先确认RA-NP被N9小胶质细胞内在化;低于100μg/ mL的纳米颗粒不会影响细胞存活。然后,进行免疫细胞化学研究以评估促炎和抗炎介质的表达。我们的结果表明,RA-NP抑制LPS诱导的一氧化氮释放和诱导型一氧化氮合酶的表达,并促进精氨酸酶1和白介素4的产生。此外,RA-NP诱导了分支的小胶质细胞形态(指示M2状态),促进了组织活力,特别是神经元存活,并在暴露于炎性挑战的器官型海马切片培养物中恢复了突触后蛋白95的表达。 RA-NP也被证明比自由当量RA浓度更有效。总而言之,我们的数据表明RA-NP可以被设想为有前景的脑炎性疾病的治疗剂。

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