Gunatilake Udara Bimendra, Pérez-López Briza, Urpi Maria, Prat-Trunas Judit, Carrera-Cardona Gerard, Félix Gautier, Sene Saad, Beaudhuin Mickaël, Dupin Jean-Charles, Allouche Joachim, Guari Yannick, Larionova Joulia, Baldrich Eva
ICGM, University of Montpellier, CNRS, ENSCM, 34000 Montpellier, France.
Diagnostic Nanotools Group, Hospital Vall d'Hebron Institut de Recerca (VHIR), 08035 Barcelona, Spain.
Nanomaterials (Basel). 2024 Dec 29;15(1):41. doi: 10.3390/nano15010041.
Prussian blue nanoparticles (PBNPs) have been identified as a promising candidate for biomimetic peroxidase (POD)-like activity, specifically due to the metal centres (Fe/Fe) of Prussian blue (PB), which have the potential to function as catalytically active centres. The decoration of PBNPs with desired functional polymers (such as amino- or carboxylate-based) primarily facilitates the subsequent linkage of biomolecules to the nanoparticles for their use in biosensor applications. Thus, the elucidation of the catalytic POD mimicry of these systems is of significant scientific interest but has not been investigated in depth yet. In this report, we studied a series of poly(ethyleneimine) (PEI)-mediated PBNPs (PB/PEI NPs) prepared using various synthesis protocols. The resulting range of particles with varying size (~19-92 nm) and shape combinations were characterised in order to gain insights into their physicochemical properties. The POD-like nanozyme activity of these nanoparticles was then investigated by utilising a 3,3',5,5'-tetramethylbenzidine (TMB)/HO system, with the catalytic performance of the natural enzyme horseradish peroxidase (HRP) serving as a point of comparison. It was shown that most PB/PEI NPs displayed higher catalytic activity than the PBNPs, with higher activity observed in particles of smaller size, higher Fe content, and higher Fe/Fe ratio. Furthermore, the nanoparticles demonstrated enhanced chemical stability in the presence of acid, sodium azide, or high concentrations of HO when compared to HRP, confirming the viability of PB/PEI NPs as a promising nanozymatic material. This study disseminates fundamental knowledge on PB/PEI NPs and their POD-like activities, which will facilitate the selection of an appropriate particle type for future biosensor applications.
普鲁士蓝纳米颗粒(PBNPs)已被确定为具有仿生过氧化物酶(POD)样活性的有前途的候选物,特别是由于普鲁士蓝(PB)的金属中心(Fe/Fe),其有可能作为催化活性中心发挥作用。用所需的功能聚合物(如氨基或羧酸盐基)修饰PBNPs主要有助于生物分子随后与纳米颗粒连接,以便用于生物传感器应用。因此,阐明这些系统的催化POD模拟具有重大的科学意义,但尚未深入研究。在本报告中,我们研究了一系列使用各种合成方案制备的聚(乙烯亚胺)(PEI)介导的PBNPs(PB/PEI NPs)。对所得的具有不同尺寸(约19-92nm)和形状组合的颗粒范围进行了表征,以深入了解其物理化学性质。然后利用3,3',-四甲基联苯胺(TMB)/H₂O₂系统研究了这些纳米颗粒的POD样纳米酶活性,并将天然酶辣根过氧化物酶(HRP)的催化性能作为比较点。结果表明,大多数PB/PEI NPs显示出比PBNPs更高的催化活性,在尺寸较小、铁含量较高和Fe/Fe比更高的颗粒中观察到更高的活性。此外,与HRP相比,纳米颗粒在酸、叠氮化钠或高浓度H₂O₂存在下表现出增强的化学稳定性,证实了PB/PEI NPs作为一种有前途的纳米酶材料的可行性。本研究传播了关于PB/PEI NPs及其POD样活性的基础知识,这将有助于为未来的生物传感器应用选择合适的颗粒类型。