Liaocheng University, Shandong 252059, China.
Department of Biotechnology, School of Sciences, JECRC University, Sitapura Extension, Jaipur 303905, Rajasthan, India.
ACS Appl Bio Mater. 2024 Feb 19;7(2):727-751. doi: 10.1021/acsabm.3c00940. Epub 2024 Jan 3.
The immune system usually provides a defense against invading pathogenic microorganisms and any other particulate contaminants. Nonetheless, it has been recently reported that nanomaterials can evade the immune system and modulate immunological responses due to their unique physicochemical characteristics. Consequently, nanomaterial-based activation of immune components, i.e., neutrophils, macrophages, and other effector cells, may induce inflammation and alter the immune response. Here, it is essential to distinguish the acute and chronic modulations triggered by nanomaterials to determine the possible risks to human health. Nanomaterials size, shape, composition, surface charge, and deformability are factors controlling their uptake by immune cells and the resulting immune responses. The exterior corona of molecules adsorbed over nanomaterials surfaces also influences their immunological effects. Here, we review current nanoengineering trends for targeted immunomodulation with an emphasis on the design, safety, and potential toxicity of nanomaterials. First, we describe the characteristics of engineered nanomaterials that trigger immune responses. Then, the biocompatibility and immunotoxicity of nanoengineered particles are debated, because these factors influence applications. Finally, future nanomaterial developments in terms of surface modifications, synergistic approaches, and biomimetics are discussed.
免疫系统通常可以抵御入侵的致病微生物和任何其他颗粒污染物。然而,最近有报道称,由于纳米材料具有独特的物理化学特性,它们可以逃避免疫系统并调节免疫反应。因此,基于纳米材料的免疫成分(即中性粒细胞、巨噬细胞和其他效应细胞)的激活可能会引发炎症并改变免疫反应。在这里,有必要区分纳米材料引发的急性和慢性调节,以确定其对人类健康的潜在风险。纳米材料的尺寸、形状、组成、表面电荷和可变形性是控制其被免疫细胞摄取和产生免疫反应的因素。吸附在纳米材料表面的分子的外部冠也会影响它们的免疫效应。在这里,我们综述了用于靶向免疫调节的当前纳米工程趋势,重点讨论了纳米材料的设计、安全性和潜在毒性。首先,我们描述了引发免疫反应的工程纳米材料的特性。然后,讨论了纳米工程颗粒的生物相容性和免疫毒性,因为这些因素会影响应用。最后,讨论了表面修饰、协同方法和仿生学方面的未来纳米材料发展。