Department of Physical Therapy, College of Healthcare Medical Science & Engineering, Inje University, Gimhae, Gyeong-nam 50834, Republic of Korea.
Biohealth Products Research Center (BPRC), Inje University, Gimhae, Gyeong-nam 50834, Republic of Korea.
ACS Appl Mater Interfaces. 2023 Dec 6;15(48):55466-55485. doi: 10.1021/acsami.3c13594. Epub 2023 Nov 22.
Despite the effectiveness and selectivity of natural enzymes, their instability has paved the way for developing nanozymes with high peroxidase activity using a straightforward technique, thereby expanding their potential for multifunctional applications. Herein, meso-copper-Prussian blue microcubes (Meso-Cu-PBMCs) nanozymes were successfully prepared via a cost-effective hydrothermal route. It was found that the Cu-PBMCs nanozymes, with three-dimensional (3D) mesoporous cubic morphologies, exhibited an excellent peroxidase-like property. Based on the high affinity of Meso-Cu-PBMCs toward HO ( = 0.226 μM) and TMB ( = 0.407 mM), a colorimetric sensor for HO detection was constructed. On account of the high catalytic activity, affinity, and cascade strategy, the Meso-Cu-PBMCs nanozyme generated rapid multicolor displays at varying HO concentrations. Under optimized conditions, the proposed sensor exhibits a preferable sensitivity of 18.14 μA μM, a linear range of 10 nM-25 mM, and a detection limit of 6.36 nM (S/N = 10). The reliability of the sensor was verified by detecting HO in spiked human blood serum and milk samples, as well as by detecting HO generated from the neuron cell SH-SY5Y. Besides, the Meso-Cu-PBMCs nanozyme facilitated the catalysis of HO in cancer cells, generating OH radicals that induce the death of cancer cells (HCT-116 colon cancer cells), which holds substantial potential for application in chemodynamic therapy (CDT). This proposed strategy holds promise for simple, rapid, inexpensive, and effective intracellular biosensing and offers a novel approach to improve CDT efficacy.
尽管天然酶具有有效性和选择性,但它们的不稳定性为开发具有高过氧化物酶活性的纳米酶铺平了道路,使用简单的技术,从而扩大了它们在多功能应用中的潜力。在此,通过一种具有成本效益的水热路线成功制备了中孔铜-普鲁士蓝微立方(Meso-Cu-PBMCs)纳米酶。研究发现,具有三维(3D)介孔立方形态的 Cu-PBMCs 纳米酶表现出优异的过氧化物酶样性质。基于 Meso-Cu-PBMCs 对 HO(=0.226 μM)和 TMB(=0.407 mM)的高亲和力,构建了用于 HO 检测的比色传感器。由于 Meso-Cu-PBMCs 纳米酶具有高催化活性、亲和力和级联策略,因此在不同 HO 浓度下可快速产生多色显示。在优化条件下,所提出的传感器表现出较好的灵敏度为 18.14 μA μM,线性范围为 10 nM-25 mM,检测限为 6.36 nM(S/N=10)。该传感器通过检测人血血清和牛奶样品中的 HO 以及检测神经元细胞 SH-SY5Y 中产生的 HO 来验证了其可靠性。此外,Meso-Cu-PBMCs 纳米酶促进了 HO 在癌细胞中的催化,产生了诱导癌细胞死亡的 OH 自由基(HCT-116 结肠癌细胞),这为化学动力学治疗(CDT)的应用提供了很大的潜力。该策略具有简单、快速、廉价和有效的细胞内生物传感的潜力,并为提高 CDT 效果提供了一种新方法。