Romano Miriam, González Gómez Manuel Antonio, Santonicola Pamela, Aloi Noemi, Offer Svenja, Pantzke Jana, Raccosta Samuele, Longo Valeria, Surpi Alessandro, Alacqua Silvia, Zampi Giuseppina, Dediu Valentin Alek, Michalke Bernhard, Zimmerman Ralf, Manno Mauro, Piñeiro Yolanda, Colombo Paolo, Di Schiavi Elia, Rivas José, Bergese Paolo, Di Bucchianico Sebastiano
Department of Molecular and Translational Medicine, University of Brescia, Brescia25123, Italy.
Center for Colloid and Surface Science (CSGI), Florence50019, Italy.
ACS Biomater Sci Eng. 2023 Jan 9;9(1):303-317. doi: 10.1021/acsbiomaterials.2c00946. Epub 2022 Dec 9.
Superparamagnetic iron oxide nanoparticles (SPIONs) have gained increasing interest in nanomedicine, but most of those that have entered the clinical trials have been withdrawn due to toxicity concerns. Therefore, there is an urgent need to design low-risk and biocompatible SPION formulations. In this work, we present an original safe-by-design nanoplatform made of silica nanoparticles loaded with SPIONs and decorated with polydopamine (SPIONs@SiO2-PDA) and the study of its biocompatibility performance by an ad hoc thorough in vitro to in vivo nanotoxicological methodology. The results indicate that the SPIONs@SiO-PDA have excellent colloidal stability in serum-supplemented culture media, even after long-term (24 h) exposure, showing no cytotoxic or genotoxic effects in vitro and ex vivo. Physiological responses, evaluated in vivo using as the animal model, showed no impact on fertility and embryonic viability, induction of an oxidative stress response, and a mild impact on animal locomotion. These tests indicate that the synergistic combination of the silica matrix and PDA coating we developed effectively protects the SPIONs, providing enhanced colloidal stability and excellent biocompatibility.
超顺磁性氧化铁纳米颗粒(SPIONs)在纳米医学领域越来越受到关注,但由于毒性问题,大多数进入临床试验的此类颗粒已被撤回。因此,迫切需要设计低风险且具有生物相容性的SPION制剂。在这项工作中,我们展示了一种通过设计实现安全的新型纳米平台,该平台由负载SPIONs并装饰有多巴胺的二氧化硅纳米颗粒(SPIONs@SiO2-PDA)组成,并通过专门设计的全面体外至体内纳米毒理学方法研究其生物相容性性能。结果表明,SPIONs@SiO-PDA在补充血清的培养基中具有出色的胶体稳定性,即使经过长期(24小时)暴露也是如此,在体外和离体实验中均未表现出细胞毒性或遗传毒性作用。使用动物模型在体内评估的生理反应表明,对生育能力和胚胎活力没有影响,未诱导氧化应激反应,对动物运动有轻微影响。这些测试表明,我们开发的二氧化硅基质和PDA涂层的协同组合有效地保护了SPIONs,提供了增强的胶体稳定性和出色的生物相容性。