Departments of Pathology & Pediatrics at Northwestern University Feinberg School of Medicine, Chicago, IL, United States.
Division of Nephrology, Department of Medicine, Duke University School of Medicine, Durham, NC, United States.
Front Immunol. 2020 May 20;11:945. doi: 10.3389/fimmu.2020.00945. eCollection 2020.
Innovative approaches in nanoparticle design have facilitated the creation of new formulations of nanoparticles that are capable of selectively calibrating the immune response. These nanomaterials may be engineered to interact with specific cellular and molecular targets. Recent advancements in nanoparticle synthesis have enabled surface functionalization of particles that mimic the diversity of ligands on the cell surface. Platforms synthesized using these design principles, called "biomimetic" nanoparticles, have achieved increasingly sophisticated targeting specificity and cellular trafficking capabilities. This holds great promise for next generation therapies that seek to achieve immune tolerance. In this review, we discuss the importance of physical design parameters including size, shape, and biomimetic surface functionalization, on the biodistribution, safety and efficacy of biologic nanoparticles. We will also explore potential applications for immune tolerance for organ or stem cell transplantation.
创新的纳米颗粒设计方法促进了新型纳米颗粒制剂的开发,这些制剂能够有选择性地调节免疫反应。这些纳米材料可以设计成与特定的细胞和分子靶点相互作用。最近,纳米颗粒合成方面的进展使得能够对颗粒进行表面功能化,从而模拟细胞表面配体的多样性。使用这些设计原则合成的平台被称为“仿生”纳米颗粒,已经实现了越来越复杂的靶向特异性和细胞内运输能力。这为寻求实现免疫耐受的下一代治疗方法带来了巨大的希望。在这篇综述中,我们讨论了物理设计参数(包括大小、形状和仿生表面功能化)对生物纳米颗粒的生物分布、安全性和疗效的重要性。我们还将探讨免疫耐受在器官或干细胞移植中的潜在应用。