Almeida Ana F, Miranda Margarida S, Vinhas Adriana, Rodrigues Márcia T, Gomes Manuela E
3B's Research Group, I3Bs - Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, AvePark, Parque de Ciência e Tecnologia, Zona Industrial da Gandra, Barco, Guimarães 4805-017, Portugal.
ICVS/3B's-PT Government Associate Laboratory, Braga, Guimarães 4710-057, Portugal.
ACS Appl Mater Interfaces. 2023 Aug 1. doi: 10.1021/acsami.2c22505.
In recent years, nanotechnology-based microRNA (miR) therapeutic platforms have shown great promise for immunotherapy and tissue regeneration, despite the unmet challenge of achieving efficient and safe delivery of miRs. The transport of miRs offers precision and regulatory value for a myriad of biological processes and pathways, including the control of macrophage (Mφ) functions and, consequently, the inflammatory cascades Mφ are involved in. Thus, enforcement of Mφ can boost the regenerative process and provide new solutions for diverse chronic pathologies. In this study, we sought to develop a magnetically guided transporter to deliver an miR-155 antagonist to M1-primed Mφ. Furthermore, we determined its modulatory effect in reprogramming Mφ from inflammatory to pro-regenerative phenotypes, with the aim of tissue healing and regenerative medicine approaches. This strategy combines contactless and high-precision control of Mφ, anticipating new functional miR carriers for targeted strategies controlled by extracorporeal action. The magnetoplexes SPION@PEI-miR were efficiently delivered into Mφ without compromising cell viability and successfully induced miR-mediated gene silencing by enhancing the expression of anti-inflammatory markers (IL4 and IL10) and the production of M2φ-related markers (CD206 and IL4). Given its multimodal features, SPION@PEI-miR represents a simple, safe, and nonviral theranostic platform that enables imaging, tracking, and miR delivery with modulatory effects on immune cells.
近年来,基于纳米技术的微小RNA(miR)治疗平台在免疫治疗和组织再生方面展现出巨大潜力,尽管在实现miR的高效安全递送方面仍面临挑战。miR的转运为众多生物过程和信号通路提供了精确性和调控价值,包括对巨噬细胞(Mφ)功能的控制,进而对Mφ参与的炎症级联反应产生影响。因此,增强Mφ功能可促进再生过程,并为多种慢性疾病提供新的解决方案。在本研究中,我们试图开发一种磁导向转运体,将miR-155拮抗剂递送至M1极化的Mφ。此外,我们确定了其在将Mφ从炎症表型重编程为促再生表型方面的调节作用,旨在用于组织愈合和再生医学方法。该策略结合了对Mφ的非接触式和高精度控制,有望开发出用于体外控制靶向策略的新型功能性miR载体。磁性复合物SPION@PEI-miR能够有效地递送至Mφ而不影响细胞活力,并通过增强抗炎标志物(IL4和IL10)的表达以及M2φ相关标志物(CD206和IL)的产生,成功诱导miR介导的基因沉默。鉴于其多模态特性,SPION@PEI-miR代表了一个简单、安全且非病毒的诊疗平台,能够实现成像、追踪以及对免疫细胞具有调节作用的miR递送。