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Effects of Mesoporous Silica Coating and Post-Synthetic Treatment on the Transverse Relaxivity of Iron Oxide Nanoparticles

机译:介孔二氧化硅涂层和后合成处理对氧化铁纳米粒子横向弛豫的影响

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摘要

Mesoporous silica nanoparticles have the capacity to load and deliver therapeutic cargo and incorporate imaging modalities, making them prominent candidates for theranostic devices. One of the most widespread imaging agents utilized in this and other theranostic platforms is nanoscale superparamagnetic iron oxide. Although several core-shell magnetic mesoporous silica nanoparticles presented in the literature have provided high T2 contrast in vitro and in vivo, there is ambiguity surrounding which parameters lead to enhanced contrast. Additionally, there is a need to understand the behavior of these imaging agents over time in biologically relevant environments. Herein, we present a systematic analysis of how the transverse relaxivity (r2) of magnetic mesoporous silica nanoparticles is influenced by nanoparticle diameter, iron oxide nanoparticle core synthesis, and the use of a hydrothermal treatment. This work demonstrates that samples which did not undergo a hydrothermal treatment experienced a drop in r2 (75% of original r2 within 8 days of water storage), while samples with hydrothermal treatment maintained roughly the same r2 for over 30 days in water. Our results suggest that iron oxide oxidation is the cause of the r2 loss, and this oxidation can be prevented both during synthesis and storage by the use of deoxygenated conditions during nanoparticle synthesis. The hydrothermal treatment also provides colloidal stability, even in acidic and highly salted solutions, and a resistance against acid degradation of the iron oxide nanoparticle core. The results of this study show the promise of multifunctional mesoporous silica nanoparticles but will also likely inspire further investigation into multiples types of theranostic devices, taking into consideration their behavior over time and in relevant biological environments.
机译:介孔二氧化硅纳米颗粒具有装载和递送治疗性货物的能力,并具有成像方式,使其成为治疗学设备的主要候选者。在该和其他治疗学平台中使用的最广泛的成像剂之一是纳米级超顺磁性氧化铁。尽管文献中提出的几种核-壳磁性介孔二氧化硅纳米粒子在体外和体内均提供了高T2对比度,但围绕哪些参数导致对比度增强仍存在歧义。另外,需要了解这些成像剂在生物学相关环境中随时间的行为。本文中,我们对磁性介孔二氧化硅纳米粒子的横向弛豫度(r2)如何受到纳米粒子直径,氧化铁纳米粒子核心合成以及水热处理的使用产生影响的系统分析。这项工作表明,未经水热处理的样品的r2下降(储水8天之内原始r2的75%),而经过水热处理的样品在水中保持超过30天的r2大致相同。我们的结果表明,氧化铁的氧化是r2损失的原因,在纳米颗粒合成过程中使用脱氧条件可以在合成和存储过程中防止这种氧化。即使在酸性和高盐溶液中,水热处理也提供了胶体稳定性,并具有抗氧化铁纳米颗粒核的酸降解的能力。这项研究的结果表明了多功能介孔二氧化硅纳米粒子的前景,但考虑到它们在一段时间内以及在相关生物环境中的行为,也可能会激发对多种类型的诊断仪的进一步研究。

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