Campagnolo Luisa, Lacconi Valentina, Filippi Joanna, Martinelli Eugenio
Department of Biomedicine and Prevention, University of Rome Tor Vergata, Rome, Italy.
Department of Electronic Engineering, University of Rome Tor Vergata, Rome, Italy.
Front Toxicol. 2024 Sep 18;6:1470439. doi: 10.3389/ftox.2024.1470439. eCollection 2024.
More than two decades ago, the advent of Nanotechnology has marked the onset of a new and critical field in science and technology, highlighting the importance of multidisciplinary approaches to assess and model the potential human hazard of newly developed advanced materials in the nanoscale, the nanomaterials (NMs). Nanotechnology is, by definition, a multidisciplinary field, that integrates knowledge and techniques from physics, chemistry, biology, materials science, and engineering to manipulate matter at the nanoscale, defined as anything comprised between 1 and 100 nm. The emergence of nanotechnology has undoubtedly led to significant innovations in many fields, from medical diagnostics and targeted drug delivery systems to advanced materials and energy solutions. However, the unique properties of nanomaterials, such as the increased surface to volume ratio, which provides increased reactivity and hence the ability to penetrate biological barriers, have been also considered as potential risk factors for unforeseen toxicological effects, stimulating the scientific community to investigate to which extent this new field of applications could pose a risk to human health and the environment.
二十多年前,纳米技术的出现标志着科技领域一个新的关键领域的开端,凸显了采用多学科方法来评估和模拟新开发的纳米级先进材料(即纳米材料,NMs)对人类潜在危害的重要性。从定义上讲,纳米技术是一个多学科领域,它整合了物理、化学、生物学、材料科学和工程学的知识与技术,以操控纳米尺度的物质,纳米尺度被定义为1到100纳米之间的任何物质。纳米技术的出现无疑在许多领域带来了重大创新,从医学诊断和靶向给药系统到先进材料和能源解决方案。然而,纳米材料的独特性质,如表面积与体积比的增加,这会提高反应活性并因此增强穿透生物屏障的能力,也被视为可能产生不可预见毒理学效应的潜在风险因素,促使科学界去研究这一新的应用领域对人类健康和环境可能造成风险的程度。