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多种酶在有机-无机杂化DNA花上的DNA定向共固定化。

DNA-directed coimmobilization of multiple enzymes on organic-inorganic hybrid DNA flowers.

作者信息

Li Yali, Wang Jing, Huang Fenghong, Zhang Yufei, Zheng Mingming

机构信息

Insititute of Food & Nutrition Science and Technology, Shandong Academy of Agricultural Sciences, Jinan, China.

Oil Crops Research Institute, Chinese Academy of Agricultural Sciences, Hubei Key Laboratory of Lipid Chemistry and Nutrition, Key Laboratory of Oilseeds Processing, Ministry of Agriculture, Wuhan, China.

出版信息

Front Bioeng Biotechnol. 2022 Aug 10;10:951394. doi: 10.3389/fbioe.2022.951394. eCollection 2022.

Abstract

The artificial multienzyme systems developed by mimicking nature has attracted much interest. However, precisely controlled compositions and ratios of multienzymatic co-immobilization systems are still limited by the indistinguishable nature of enzymes. Herein, a strategy for fabricating DNA-directed immobilization of horseradish peroxidase (HRP) and glucose oxidase (GOx) on hybrid DNA nanoflowers (GOx-HRP@hDFs) is presented. The preparation of micron-sized hybrid DNA flowers (hDFs) begins with the predetermined repeatable polymer-like DNA sequences which contained two strands. The hDFs structure is generated through one-pot rolling circle amplification (RCA) and self-assembly with magnesium pyrophosphate inorganic crystals. Based on the rigid-base pairing, GOx and HRP conjugated with sequences complementary to strands would be anchored to the predesigned locations, respectively. By adjusting the loading amount/ratio of enzymes properly, the maximal catalytic efficiency can be precisely regulated. The reaction activity of GOx-HRP@hDFs was 7.4 times higher than that of the free GOx-HRP under the optimal mole ratio (GOx/HRP 4:1). In addition, this multienzyme catalyst system exhibits excellent precision, specificity, reproducibility, and long-term storage stability when applied to real human blood samples. The preceding results validate that GOx-HRP@hDFs are promising candidates for personal diabetes detection.

摘要

通过模仿自然开发的人工多酶系统引起了广泛关注。然而,多酶共固定化系统精确控制的组成和比例仍受酶难以区分特性的限制。在此,提出了一种在杂交DNA纳米花(GOx-HRP@hDFs)上构建DNA定向固定辣根过氧化物酶(HRP)和葡萄糖氧化酶(GOx)的策略。微米级杂交DNA花(hDFs)的制备始于包含两条链的预定可重复聚合物样DNA序列。hDFs结构通过一锅滚环扩增(RCA)和与焦磷酸镁无机晶体的自组装产生。基于刚性碱基配对,与链互补序列共轭的GOx和HRP将分别锚定到预先设计的位置。通过适当调整酶的负载量/比例,可以精确调节最大催化效率。在最佳摩尔比(GOx/HRP 4:1)下,GOx-HRP@hDFs的反应活性比游离GOx-HRP高7.4倍。此外,当应用于实际人体血液样本时,这种多酶催化剂系统表现出优异的精确性、特异性、可重复性和长期储存稳定性。上述结果证实GOx-HRP@hDFs是用于个人糖尿病检测的有前途的候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4b9/9400012/167c786df3e1/fbioe-10-951394-g001.jpg

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