Hosseinpour Sepanta, Dai Huan, Walsh Laurence J, Xu Chun
School of Dentistry, The University of Queensland, Herston, QLD 4006, Australia.
Nanomaterials (Basel). 2023 May 29;13(11):1755. doi: 10.3390/nano13111755.
Nanoparticles can play valuable roles in delivering nucleic acids, including microRNAs (miRNA), which are small, non-coding RNA segments. In this way, nanoparticles may exert post-transcriptional regulatory influences on various inflammatory conditions and bone disorders. This study used biocompatible, core-cone-structured, mesoporous silica nanoparticles (MSN-CC) to deliver miRNA-26a to macrophages in order to influence osteogenesis in vitro. The loaded nanoparticles (MSN-CC-miRNA-26) showed low-level toxicity towards macrophages (RAW 264.7 cells) and were internalized efficiently, causing the reduced expression of pro-inflammatory cytokines, as seen via real-time PCR and cytokine immunoassays. The conditioned macrophages created a favorable osteoimmune environment for MC3T3-E1 preosteoblasts, driving osteogenic differentiation with enhanced osteogenic marker expression, alkaline phosphatase (ALP) production, extracellular matrix formation, and calcium deposition. An indirect co-culture system revealed that direct osteogenic induction and immunomodulation by MSN-CC-miRNA-26a synergistically increased bone production due to the crosstalk between MSN-CC-miRNA-26a-conditioned macrophages and MSN-CC-miRNA-26a-treated preosteoblasts. These findings demonstrate the value of nanoparticle delivery of miR-NA-26a using MSN-CC for suppressing the production of pro-inflammatory cytokines with macrophages and for driving osteogenic differentiation in preosteoblasts via osteoimmune modulation.
纳米颗粒在递送核酸(包括微小RNA,即miRNA,其为短小的非编码RNA片段)方面可发挥重要作用。通过这种方式,纳米颗粒可能对各种炎症状态和骨骼疾病产生转录后调控影响。本研究使用生物相容性的、具有核-锥结构的介孔二氧化硅纳米颗粒(MSN-CC)将miRNA-26a递送至巨噬细胞,以在体外影响成骨作用。负载的纳米颗粒(MSN-CC-miRNA-26)对巨噬细胞(RAW 264.7细胞)显示出低水平毒性,并且能被有效内化,通过实时PCR和细胞因子免疫测定可见其导致促炎细胞因子表达降低。经处理的巨噬细胞为MC3T3-E1前成骨细胞创造了有利的骨免疫环境,通过增强成骨标志物表达、碱性磷酸酶(ALP)产生、细胞外基质形成和钙沉积来驱动成骨分化。间接共培养系统显示,由于MSN-CC-miRNA-26a处理的巨噬细胞与MSN-CC-miRNA-26a处理的前成骨细胞之间的相互作用,MSN-CC-miRNA-26a的直接成骨诱导和免疫调节协同增加了骨生成。这些发现证明了使用MSN-CC进行miR-NA-26a的纳米颗粒递送在抑制巨噬细胞促炎细胞因子产生以及通过骨免疫调节驱动前成骨细胞成骨分化方面的价值。