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辣根过氧化物酶纳米花@碳纳米管杂化纳米生物催化剂的原位合成及其催化活性的极大增强。

In Situ Synthesis of Horseradish Peroxidase Nanoflower@Carbon Nanotube Hybrid Nanobiocatalysts with Greatly Enhanced Catalytic Activity.

机构信息

Department of Analytical Chemistry, Faculty of Pharmacy, Erciyes University, Kayseri 38039, Turkey.

Department of Nanotechnology Engineering, Abdullah Gül University, Kayseri 38080, Turkey.

出版信息

Langmuir. 2023 Apr 4;39(13):4819-4828. doi: 10.1021/acs.langmuir.3c00260. Epub 2023 Mar 21.

Abstract

Organic-inorganic hybrid nanoflowers (NFs) consisting of horseradish peroxidase (HRP) and copper II (Cu) are successfully synthesized with the involvement of carbon nanotubes (CNTs) by in situ and post-modification methods. Catalytic activities of in situ synthesized HRP-NF@CNT (HRP-NF@CNT-Is) and post-modification-synthesized HRP-NF@CNTs (HRP-NF@CNT-Pm) are systematically examined. The 30 mg CNTs incorporated HRP-NF@CNT-Is (HRP-NF@CNT-30Is) exhibits greatly increased catalytic activity and stability toward 3,3',5,5'-tetramethylbenzidine (TMB), thanks to the synergistic effect between HRP-NF and CNTs and the peroxidase-like activity of CNTs in the presence of hydrogen peroxide (HO). While HRP-NF@CNT-30Is retains almost 85% of its initial activity even after 10 cycles, HRP-NF (without CNTs) loses half of its initial activity at the same experimental conditions. We study how two experimental parameters, the pH values and temperatures, influence the catalytic activity of HRP-NF@CNT-30Is, in addition to the fact that HRP-NF@CNT-30Is is employed to detect the presence of HO and glutathione (GSH) with colorimetric and spectrophotometric readouts. For instance, HRP-NF@CNT-30Is is used to sensitively detect HO in the range of 20 to 300 μM with an LOD of 2.26 μM. The catalytic activity of HRP-NF@CNT-30Is is suppressed in the presence of GSH, and then an obvious color change from blue to nearly colorless is observed. Using this strategy, GSH is also sensitively determined in the range of 20-200 μM with an LOD of 11.2 μM. We expect that HRP-NF@CNTs can be used as a promising and novel nanobiocatalyst for various biomedical and industrial applications in the near future.

摘要

采用原位和后修饰方法,成功地合成了由辣根过氧化物酶(HRP)和铜 II(Cu)组成的有机-无机杂化纳米花(NFs),其中涉及到碳纳米管(CNTs)。系统地研究了原位合成的 HRP-NF@CNT(HRP-NF@CNT-Is)和后修饰合成的 HRP-NF@CNTs(HRP-NF@CNT-Pm)的催化活性。由于 HRP-NF 与 CNTs 之间的协同效应以及 CNTs 在存在过氧化氢(HO)时的过氧化物酶样活性,加入 30mg CNTs 的 HRP-NF@CNT-Is(HRP-NF@CNT-30Is)对 3,3',5,5'-四甲基联苯胺(TMB)表现出极大的催化活性和稳定性。而在相同的实验条件下,没有 CNTs 的 HRP-NF 失去了其初始活性的一半。我们研究了两个实验参数,即 pH 值和温度,如何影响 HRP-NF@CNT-30Is 的催化活性,此外,我们还使用 HRP-NF@CNT-30Is 进行了比色和分光光度法检测 HO 和谷胱甘肽(GSH)的存在。例如,HRP-NF@CNT-30Is 用于在 20 至 300 μM 的范围内灵敏检测 HO,LOD 为 2.26 μM。在 GSH 的存在下,HRP-NF@CNT-30Is 的催化活性受到抑制,然后观察到从蓝色到几乎无色的明显颜色变化。使用这种策略,在 20-200 μM 的范围内,可以灵敏地测定 GSH,LOD 为 11.2 μM。我们期望 HRP-NF@CNTs 在不久的将来可以作为一种有前途的新型纳米生物催化剂,用于各种生物医学和工业应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7317/10077815/2fc796ea436b/la3c00260_0002.jpg

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